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the_stack_data/125141375.c |
//{{BLOCK(win_screen_es)
//======================================================================
//
// win_screen_es, 256x256@8,
// + palette 256 entries, not compressed
// + 132 tiles (t|f|p reduced) not compressed
// + regular map (flat), not compressed, 32x32
// Total size: 512 + 8448 + 2048 = 11008
//
// Time-stamp: 2019-07-03, 15:35:32
// Exported by Cearn's GBA Image Transmogrifier, v0.8.3
// ( http://www.coranac.com/projects/#grit )
//
//======================================================================
const unsigned short win_screen_esTiles[4224] __attribute__((aligned(4)))=
{
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0x0000,0x0101,0x0101,0x0101,0x0000,0x0000,0x0000,0x0000,
0x0101,0x0000,0x0000,0x0101,0x0101,0x0000,0x0000,0x0101,
0x0101,0x0000,0x0000,0x0101,0x0101,0x0000,0x0000,0x0101,
0x0101,0x0000,0x0000,0x0101,0x0101,0x0000,0x0000,0x0101,
0x0101,0x0000,0x0000,0x0101,0x0000,0x0000,0x0000,0x0000,
0x0101,0x0101,0x0001,0x0000,0x0101,0x0101,0x0001,0x0000,
0x0101,0x0101,0x0001,0x0000,0x0101,0x0101,0x0001,0x0000,
0x0101,0x0101,0x0001,0x0000,0x0101,0x0101,0x0001,0x0000,
0x0101,0x0101,0x0001,0x0000,0x0000,0x0000,0x0000,0x0000,
0x0101,0x0101,0x0101,0x0101,0x0101,0x0101,0x0101,0x0101,
0x0101,0x0101,0x0101,0x0101,0x0101,0x0101,0x0101,0x0101,
0x0101,0x0101,0x0101,0x0101,0x0101,0x0101,0x0101,0x0101,
0x0101,0x0101,0x0101,0x0101,0x0000,0x0000,0x0000,0x0000,
0x0101,0x0001,0x0000,0x0000,0x0101,0x0001,0x0000,0x0000,
0x0101,0x0001,0x0000,0x0000,0x0101,0x0101,0x0101,0x0101,
0x0101,0x0101,0x0101,0x0101,0x0101,0x0101,0x0101,0x0101,
0x0101,0x0101,0x0101,0x0101,0x0000,0x0000,0x0000,0x0000,
0x0101,0x0101,0x0101,0x0000,0x0101,0x0101,0x0101,0x0000,
0x0101,0x0101,0x0101,0x0000,0x0101,0x0000,0x0000,0x0000,
0x0101,0x0000,0x0000,0x0000,0x0101,0x0000,0x0000,0x0000,
0x0101,0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,
0x0000,0x0000,0x0100,0x0101,0x0000,0x0000,0x0100,0x0101,
0x0000,0x0000,0x0100,0x0101,0x0000,0x0000,0x0100,0x0101,
0x0000,0x0000,0x0100,0x0101,0x0000,0x0000,0x0100,0x0101,
0x0000,0x0000,0x0100,0x0101,0x0000,0x0000,0x0000,0x0000,
0x0101,0x0101,0x0101,0x0001,0x0101,0x0101,0x0101,0x0001,
0x0101,0x0101,0x0101,0x0001,0x0101,0x0101,0x0101,0x0101,
0x0101,0x0101,0x0101,0x0101,0x0101,0x0101,0x0101,0x0101,
0x0101,0x0101,0x0101,0x0101,0x0000,0x0000,0x0000,0x0000,
0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,
0x0000,0x0000,0x0000,0x0000,0x0101,0x0101,0x0101,0x0101,
0x0101,0x0101,0x0101,0x0101,0x0101,0x0101,0x0101,0x0101,
0x0101,0x0101,0x0101,0x0101,0x0000,0x0000,0x0000,0x0000,
0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,
0x0000,0x0000,0x0000,0x0000,0x0101,0x0000,0x0100,0x0101,
0x0101,0x0000,0x0100,0x0101,0x0101,0x0000,0x0100,0x0101,
0x0101,0x0000,0x0100,0x0101,0x0000,0x0000,0x0000,0x0000,
0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,
0x0000,0x0000,0x0000,0x0000,0x0101,0x0101,0x0001,0x0000,
0x0101,0x0101,0x0001,0x0000,0x0101,0x0101,0x0001,0x0000,
0x0101,0x0101,0x0001,0x0000,0x0000,0x0000,0x0000,0x0000,
0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,
0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,
0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,
0x0000,0x0000,0x0000,0x0000,0x0000,0x1B0D,0x1B1B,0x000D,
0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,
0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,
0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,
0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,0x0400,
0x0000,0x0000,0x0000,0x0600,0x0000,0x0000,0x0A00,0x1403,
0x0000,0x0D00,0x1417,0x1414,0x0000,0x1810,0x1414,0x1414,
0x0400,0x1408,0x1414,0x1414,0x1215,0x1414,0x1414,0x1414,
0x140F,0x1414,0x1414,0x1414,0x1414,0x1414,0x1414,0x1414,
0x190F,0x1414,0x1414,0x1908,0x1414,0x1414,0x1414,0x1414,
0x1414,0x1414,0x1414,0x1414,0x1414,0x1414,0x1414,0x1414,
0x1414,0x1414,0x1414,0x1414,0x1414,0x1414,0x1414,0x1414,
0x1414,0x1414,0x1414,0x1414,0x0814,0x1717,0x1717,0x0817,
0x0C09,0x0000,0x0000,0x0000,0x1414,0x060B,0x0000,0x0000,
0x1414,0x1414,0x0716,0x0000,0x1414,0x1414,0x0314,0x000D,
0x1414,0x1414,0x1414,0x0712,0x1414,0x1414,0x1414,0x0B14,
0x1414,0x1414,0x1414,0x1414,0x1414,0x1414,0x1414,0x1414,
0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,
0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,
0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,
0x0002,0x0000,0x0000,0x0000,0x1E14,0x0000,0x0000,0x0000,
0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,
0x0100,0x0101,0x0101,0x0101,0x0100,0x0001,0x0000,0x0100,
0x0100,0x0001,0x0000,0x0100,0x0100,0x0001,0x0000,0x0100,
0x0100,0x0001,0x0000,0x0100,0x0100,0x0101,0x0101,0x0101,
0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,
0x0000,0x0101,0x0101,0x0101,0x0001,0x0101,0x0000,0x0000,
0x0001,0x0101,0x0000,0x0000,0x0001,0x0101,0x0000,0x0000,
0x0001,0x0101,0x0000,0x0100,0x0000,0x0101,0x0101,0x0101,
0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,
0x0001,0x0100,0x0101,0x0101,0x0101,0x0100,0x0001,0x0000,
0x0101,0x0100,0x0001,0x0000,0x0101,0x0100,0x0001,0x0000,
0x0101,0x0100,0x0101,0x0101,0x0000,0x0100,0x0001,0x0000,
0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,
0x0101,0x0001,0x0100,0x0101,0x0000,0x0000,0x0101,0x0000,
0x0000,0x0000,0x0101,0x0000,0x0000,0x0000,0x0101,0x0000,
0x0101,0x0000,0x0100,0x0101,0x0000,0x0000,0x0000,0x0000,
0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,
0x0101,0x0000,0x0000,0x0101,0x0100,0x0001,0x0000,0x0000,
0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,
0x0101,0x0001,0x0000,0x0000,0x0000,0x0101,0x0000,0x0000,
0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,
0x0101,0x0101,0x0001,0x0100,0x0101,0x0001,0x0000,0x0101,
0x0101,0x0001,0x0000,0x0101,0x0101,0x0001,0x0000,0x0101,
0x0101,0x0001,0x0000,0x0101,0x0101,0x0001,0x0000,0x0101,
0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,
0x0101,0x0101,0x0001,0x0100,0x0000,0x0000,0x0101,0x0100,
0x0000,0x0000,0x0101,0x0100,0x0000,0x0000,0x0101,0x0100,
0x0000,0x0000,0x0101,0x0100,0x0000,0x0000,0x0101,0x0100,
0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,
0x0001,0x0000,0x0100,0x0001,0x0101,0x0001,0x0100,0x0001,
0x0101,0x0101,0x0100,0x0001,0x0101,0x0101,0x0101,0x0001,
0x0101,0x0101,0x0101,0x0001,0x0001,0x0101,0x0101,0x0001,
0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,
0x0000,0x0101,0x0101,0x0000,0x0100,0x0101,0x0100,0x0001,
0x0101,0x0000,0x0000,0x0101,0x0101,0x0000,0x0000,0x0101,
0x0101,0x0000,0x0000,0x0101,0x0101,0x0101,0x0101,0x0101,
0x0000,0x0000,0x0000,0x1600,0x0000,0x0000,0x0000,0x1407,
0x0000,0x0000,0x0000,0x141F,0x0000,0x0000,0x0000,0x1411,
0x0000,0x0000,0x0000,0x1405,0x0000,0x0000,0x0000,0x1417,
0x0000,0x0000,0x0000,0x1417,0x0000,0x0000,0x0000,0x1405,
0x1414,0x1414,0x1414,0x1414,0x1414,0x1414,0x1414,0x1414,
0x1414,0x1414,0x1414,0x1414,0x1414,0x1414,0x1414,0x0617,
0x1414,0x1414,0x1414,0x0009,0x1414,0x1414,0x1414,0x0016,
0x1414,0x1414,0x1414,0x0016,0x1414,0x1414,0x1414,0x0016,
0x0314,0x0000,0x0000,0x1400,0x1D1C,0x0400,0x0D1D,0x2000,
0x0000,0x1300,0x1A14,0x0000,0x0400,0x0B16,0x1714,0x0013,
0x0C00,0x1414,0x1414,0x0017,0x0C00,0x1414,0x1414,0x0017,
0x1E00,0x1D1D,0x1D1D,0x001A,0x0000,0x0000,0x0000,0x0000,
0x1414,0x1414,0x1414,0x1414,0x140B,0x1414,0x1414,0x1414,
0x1411,0x1414,0x1414,0x1414,0x0610,0x1419,0x1414,0x1414,
0x0000,0x1405,0x1414,0x1414,0x0000,0x1417,0x1414,0x1414,
0x0000,0x1417,0x1414,0x1414,0x0000,0x1417,0x1414,0x1414,
0x1114,0x0000,0x0000,0x0000,0x1814,0x0000,0x0000,0x0000,
0x1414,0x000C,0x0000,0x0000,0x1414,0x0013,0x0000,0x0000,
0x1414,0x001C,0x0000,0x0000,0x1414,0x000F,0x0000,0x0000,
0x1414,0x000F,0x0000,0x0000,0x1414,0x001C,0x0000,0x0000,
0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,
0x0000,0x0100,0x0101,0x0101,0x0000,0x0100,0x0001,0x0000,
0x0000,0x0100,0x0001,0x0000,0x0000,0x0100,0x0001,0x0000,
0x0000,0x0100,0x0001,0x0000,0x0000,0x0100,0x0101,0x0101,
0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,
0x0101,0x0000,0x0000,0x0101,0x0100,0x0001,0x0100,0x0101,
0x0100,0x0001,0x0101,0x0000,0x0100,0x0001,0x0101,0x0000,
0x0100,0x0001,0x0101,0x0000,0x0101,0x0000,0x0101,0x0101,
0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,
0x0101,0x0000,0x0100,0x0101,0x0100,0x0001,0x0100,0x0001,
0x0000,0x0101,0x0100,0x0001,0x0000,0x0101,0x0100,0x0001,
0x0000,0x0101,0x0100,0x0001,0x0101,0x0101,0x0100,0x0101,
0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,
0x0101,0x0101,0x0000,0x0000,0x0000,0x0100,0x0001,0x0100,
0x0000,0x0100,0x0001,0x0101,0x0000,0x0100,0x0001,0x0101,
0x0000,0x0101,0x0001,0x0101,0x0101,0x0001,0x0000,0x0101,
0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,
0x0101,0x0101,0x0000,0x0000,0x0101,0x0100,0x0001,0x0000,
0x0000,0x0000,0x0101,0x0000,0x0000,0x0000,0x0101,0x0000,
0x0000,0x0000,0x0101,0x0000,0x0101,0x0101,0x0101,0x0000,
0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,
0x0101,0x0101,0x0101,0x0001,0x0101,0x0000,0x0000,0x0101,
0x0101,0x0000,0x0000,0x0101,0x0101,0x0000,0x0000,0x0101,
0x0101,0x0000,0x0100,0x0101,0x0101,0x0101,0x0101,0x0000,
0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,
0x0100,0x0101,0x0101,0x0101,0x0100,0x0001,0x0000,0x0000,
0x0100,0x0001,0x0000,0x0000,0x0100,0x0001,0x0000,0x0000,
0x0100,0x0101,0x0101,0x0101,0x0100,0x0001,0x0000,0x0000,
0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,
0x0001,0x0100,0x0101,0x0101,0x0000,0x0000,0x0100,0x0101,
0x0000,0x0000,0x0100,0x0101,0x0000,0x0000,0x0100,0x0101,
0x0000,0x0000,0x0100,0x0101,0x0000,0x0000,0x0100,0x0101,
0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,
0x0101,0x0100,0x0001,0x0000,0x0000,0x0100,0x0101,0x0001,
0x0000,0x0100,0x0101,0x0101,0x0000,0x0100,0x0101,0x0101,
0x0000,0x0100,0x0101,0x0101,0x0000,0x0100,0x0001,0x0101,
0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,
0x0100,0x0001,0x0100,0x0101,0x0100,0x0001,0x0000,0x0100,
0x0100,0x0001,0x0000,0x0100,0x0101,0x0001,0x0000,0x0100,
0x0101,0x0001,0x0000,0x0100,0x0101,0x0001,0x0000,0x0100,
0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,
0x0101,0x0101,0x0000,0x0100,0x0101,0x0000,0x0000,0x0101,
0x0101,0x0000,0x0100,0x0001,0x0101,0x0000,0x0100,0x0001,
0x0101,0x0000,0x0100,0x0001,0x0101,0x0000,0x0100,0x0001,
0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,
0x0101,0x0101,0x0000,0x0100,0x0001,0x0100,0x0001,0x0000,
0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,
0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,
0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,
0x0101,0x0101,0x0101,0x0000,0x0100,0x0101,0x0000,0x0000,
0x0100,0x0101,0x0000,0x0100,0x0100,0x0101,0x0000,0x0100,
0x0100,0x0101,0x0000,0x0100,0x0100,0x0101,0x0000,0x0100,
0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,
0x0100,0x0101,0x0001,0x0000,0x0101,0x0001,0x0101,0x0000,
0x0001,0x0000,0x0100,0x0001,0x0001,0x0000,0x0100,0x0001,
0x0001,0x0000,0x0100,0x0001,0x0101,0x0101,0x0101,0x0001,
0x0100,0x0001,0x0000,0x0000,0x0100,0x0001,0x0000,0x0000,
0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,
0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,
0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,
0x0000,0x0101,0x0100,0x0101,0x0000,0x0101,0x0000,0x0100,
0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,
0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,
0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,
0x0001,0x0100,0x0001,0x0000,0x0101,0x0100,0x0101,0x0101,
0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,
0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,
0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,
0x0000,0x0000,0x0101,0x0000,0x0101,0x0001,0x0100,0x0101,
0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,
0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,
0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,
0x0000,0x0101,0x0000,0x0000,0x0101,0x0001,0x0000,0x0101,
0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,
0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,
0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,
0x0101,0x0001,0x0000,0x0101,0x0101,0x0101,0x0001,0x0100,
0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,
0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,
0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,
0x0000,0x0000,0x0101,0x0100,0x0101,0x0101,0x0001,0x0100,
0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,
0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,
0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,
0x0001,0x0000,0x0101,0x0001,0x0001,0x0000,0x0100,0x0001,
0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,
0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,
0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,
0x0101,0x0000,0x0000,0x0101,0x0101,0x0000,0x0000,0x0101,
0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,
0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,
0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,
0x0000,0x0000,0x0000,0x1411,0x0000,0x0000,0x0000,0x141F,
0x0000,0x0000,0x0000,0x1407,0x0000,0x0000,0x0000,0x1600,
0x0000,0x0000,0x0000,0x0400,0x0000,0x0000,0x0000,0x0000,
0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,
0x1414,0x1414,0x1414,0x0016,0x1414,0x1414,0x1414,0x0016,
0x1414,0x1414,0x1414,0x0009,0x1414,0x1414,0x1414,0x1612,
0x1414,0x1414,0x1414,0x1414,0x140F,0x1414,0x1414,0x1414,
0x1215,0x1414,0x1414,0x1414,0x0400,0x1408,0x1414,0x1414,
0x0400,0x1717,0x1717,0x0002,0x0C00,0x1414,0x1414,0x000E,
0x0D00,0x1414,0x1414,0x0009,0x0E16,0x1414,0x1414,0x1612,
0x1414,0x1414,0x1414,0x1414,0x1414,0x1414,0x1414,0x1414,
0x1414,0x1414,0x1414,0x1414,0x1414,0x1414,0x1414,0x1414,
0x0000,0x1417,0x1414,0x1414,0x0000,0x1417,0x1414,0x1414,
0x0000,0x140E,0x1414,0x1414,0x1616,0x1418,0x1414,0x1414,
0x1414,0x1414,0x1414,0x1414,0x1414,0x1414,0x1414,0x1414,
0x1414,0x1414,0x1414,0x0B14,0x1414,0x1414,0x1414,0x0712,
0x1414,0x0013,0x0000,0x0000,0x1414,0x000C,0x0000,0x0000,
0x1814,0x0000,0x0000,0x0000,0x1114,0x0000,0x0000,0x0000,
0x1E14,0x0000,0x0000,0x0000,0x0002,0x0000,0x0000,0x0000,
0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,
0x0000,0x0100,0x0001,0x0000,0x0000,0x0100,0x0001,0x0000,
0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,
0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,
0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,
0x0000,0x0000,0x0101,0x0000,0x0000,0x0000,0x0101,0x0000,
0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,
0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,
0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,
0x0000,0x0101,0x0100,0x0001,0x0000,0x0101,0x0100,0x0001,
0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,
0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,
0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,
0x0101,0x0101,0x0000,0x0101,0x0000,0x0101,0x0001,0x0101,
0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,
0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,
0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,
0x0101,0x0100,0x0101,0x0001,0x0101,0x0000,0x0100,0x0101,
0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,
0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,
0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,
0x0100,0x0001,0x0000,0x0000,0x0100,0x0101,0x0101,0x0101,
0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,
0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,
0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,
0x0000,0x0000,0x0100,0x0101,0x0001,0x0100,0x0101,0x0101,
0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,
0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,
0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,
0x0000,0x0100,0x0001,0x0000,0x0101,0x0100,0x0001,0x0000,
0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,
0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,
0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,
0x0101,0x0001,0x0000,0x0100,0x0100,0x0001,0x0100,0x0101,
0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,
0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,
0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,
0x0101,0x0000,0x0000,0x0101,0x0101,0x0101,0x0000,0x0100,
0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,
0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,
0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,
0x0001,0x0100,0x0001,0x0000,0x0101,0x0101,0x0000,0x0100,
0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,
0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,
0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,
0x0100,0x0101,0x0000,0x0100,0x0101,0x0101,0x0101,0x0100,
0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,
0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,
0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,
0x0001,0x0000,0x0100,0x0001,0x0001,0x0000,0x0100,0x0001,
0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,
0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,
0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,
0x0000,0x1810,0x1414,0x1414,0x0000,0x0D00,0x1417,0x1414,
0x0000,0x0000,0x0A00,0x1403,0x0000,0x0000,0x0000,0x0600,
0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,
0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,
0x1414,0x1414,0x1414,0x1414,0x1414,0x1414,0x1414,0x1414,
0x1414,0x1414,0x1414,0x1414,0x1916,0x1414,0x1414,0x1914,
0x0000,0x1B0D,0x101B,0x000D,0x0000,0x0000,0x0000,0x0000,
0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,
0x1414,0x1414,0x0314,0x000D,0x1414,0x1414,0x0716,0x0000,
0x1414,0x060B,0x0000,0x0000,0x0C09,0x0000,0x0000,0x0000,
0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,
0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,
};
const unsigned short win_screen_esMap[1024] __attribute__((aligned(4)))=
{
0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,
0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,
0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,
0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,
0x0000,0x0000,0x0001,0x0002,0x0003,0x0000,0x0004,0x0401,
0x0000,0x0404,0x0000,0x0403,0x0005,0x0006,0x0002,0x0007,
0x0407,0x0002,0x0404,0x0000,0x0006,0x0002,0x0002,0x0008,
0x0002,0x0002,0x0002,0x0009,0x0002,0x0007,0x0000,0x0000,
0x0000,0x000A,0x000B,0x000C,0x000D,0x000E,0x000F,0x0010,
0x0008,0x0011,0x0012,0x0013,0x0014,0x0015,0x0016,0x0017,
0x0018,0x0019,0x001A,0x001B,0x001C,0x0419,0x001D,0x001E,
0x001F,0x000C,0x000C,0x0020,0x0021,0x0022,0x0000,0x0000,
0x0000,0x0818,0x0023,0x0024,0x0413,0x0013,0x0025,0x0026,
0x0027,0x0028,0x0029,0x0021,0x002A,0x0C29,0x002B,0x0021,
0x002C,0x002D,0x002E,0x002F,0x0000,0x0030,0x0031,0x0000,
0x0028,0x082B,0x0032,0x0030,0x0031,0x0000,0x0000,0x0000,
0x0000,0x0C07,0x0033,0x0034,0x0035,0x0435,0x0036,0x0037,
0x0437,0x0038,0x0C07,0x0039,0x003A,0x003B,0x0000,0x003C,
0x080A,0x003D,0x0034,0x003E,0x0000,0x003F,0x003B,0x0000,
0x0040,0x0041,0x0041,0x0042,0x0043,0x0000,0x0000,0x0000,
0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,
0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,
0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,
0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,
0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,
0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,
0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,
0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,
0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,
0x0000,0x0000,0x0000,0x0044,0x0000,0x0000,0x0000,0x0000,
0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,
0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,
0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,
0x0000,0x0045,0x0046,0x0047,0x0048,0x0049,0x0000,0x0000,
0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,
0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,
0x004A,0x004B,0x004C,0x004D,0x004E,0x004F,0x0050,0x0051,
0x0052,0x1053,0x1054,0x1055,0x1056,0x1057,0x0058,0x0059,
0x005A,0x005B,0x005C,0x0000,0x005D,0x005E,0x005F,0x0060,
0x0061,0x0062,0x0063,0x0064,0x0065,0x005D,0x0000,0x0000,
0x0066,0x0067,0x0068,0x0069,0x006A,0x006B,0x006C,0x006D,
0x006E,0x106F,0x1070,0x0071,0x1072,0x1073,0x0074,0x0075,
0x0076,0x0077,0x0075,0x0000,0x0078,0x0079,0x007A,0x007B,
0x007C,0x007D,0x007E,0x007F,0x0080,0x0078,0x0000,0x0000,
0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,
0x0000,0x0000,0x1081,0x1082,0x1083,0x0000,0x0000,0x0000,
0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,
0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,
0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,
0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,
0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,
0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,
0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,
0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,
0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,
0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,
0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,
0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,
0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,
0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,
0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,
0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,
0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,
0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,
0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,
0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,
0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,
0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,
0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,
0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,
0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,
0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,
0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,
0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,
0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,
0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,
0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,
0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,
0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,
0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,
0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,
0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,
0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,
0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,
0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,
0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,
0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,
0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,
0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,
0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,
0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,
0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,
0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,
0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,
0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,
0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,
0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,
0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,
0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,
0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,
0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,
0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,
0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,
0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,
0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,
0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,
0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,
0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,
0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,
0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,
0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,
0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,
0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,
0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,
0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,
0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,
0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,
0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,
0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,
0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,
0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,
0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,
0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,
0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,
0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,
0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,
0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,
0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,
};
const unsigned short win_screen_esPal[256] __attribute__((aligned(4)))=
{
0x0000,0x7FFF,0x4000,0x6C00,0x1400,0x5800,0x2800,0x0800,
0x7800,0x4C00,0x3000,0x6400,0x2000,0x1000,0x5C00,0x5000,
0x1800,0x4400,0x7000,0x3800,0x7C00,0x0400,0x5400,0x6000,
0x7400,0x6800,0x2400,0x1C00,0x4800,0x3400,0x0C00,0x2C00,
0x3C00,0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,
0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,
0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,
0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,
0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,
0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,
0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,
0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,
0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,
0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,
0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,
0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,
0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,
0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,
0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,
0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,
0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,
0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,
0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,
0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,
0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,
0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,
0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,
0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,
0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,
0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,
0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,
0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,0x0000,
};
//}}BLOCK(win_screen_es)
|
the_stack_data/476807.c | #include <stdio.h>
#include <stdlib.h>
#include <time.h>
#define MAXSIZE 20
#define OK 1
#define ERROR 0
// A stack by array
typedef int Status;
typedef int ElemType;
typedef struct {
ElemType data[MAXSIZE];
int top;
} Stack;
Status Push(Stack *S, ElemType e);
Status Pop(Stack *S, ElemType *e);
void InitStack(Stack *S);
void ShowStack(Stack *S);
int main(){
Stack s;
int x;
InitStack(&s);
Push(&s, 1);
Push(&s, 2);
Push(&s, 3);
ShowStack(&s);
Pop(&s, &x);
ShowStack(&s);
printf("%d", x);
}
Status Push(Stack *S, ElemType e) {
if (S->top == MAXSIZE - 1) {
return ERROR;
}
S->top++;
S->data[S->top] = e;
return OK;
}
Status Pop(Stack *S, ElemType *e) {
if (S->top == -1) {
return ERROR;
}
*e = S->data[S->top];
S->top--;
return OK;
}
void InitStack(Stack *S) {
S->top = -1;
}
void ShowStack(Stack *S) {
for (int i = 0; i <= S->top; i++) {
printf("%d:\t%d\n", i,S->data[i]);
}
}
|
the_stack_data/58125.c | /*
* POK header
*
* The following file is a part of the POK project. Any modification should
* be made according to the POK licence. You CANNOT use this file or a part
* of a file for your own project.
*
* For more information on the POK licence, please see our LICENCE FILE
*
* Please follow the coding guidelines described in doc/CODING_GUIDELINES
*
* Copyright (c) 2007-2020 POK team
*/
#ifdef POK_NEEDS_ARINC653_PROCESS
#include <core/dependencies.h>
#include <arinc653/arincutils.h>
#include <arinc653/process.h>
#include <arinc653/types.h>
#include <core/thread.h>
#include <libc/string.h>
uint32_t pok_arinc653_processes[POK_CONFIG_NB_THREADS];
uint32_t pok_arinc653_processes_nb;
void GET_PROCESS_ID(PROCESS_NAME_TYPE process_name[MAX_NAME_LENGTH],
PROCESS_ID_TYPE *process_id,
RETURN_CODE_TYPE *return_code) {
int id;
if ((id = process_name_exist(process_name)) == 0) {
*process_id = id;
*return_code = INVALID_CONFIG;
} else {
*process_id = id;
*return_code = NO_ERROR;
}
}
void GET_MY_ID(PROCESS_ID_TYPE *process_id, RETURN_CODE_TYPE *return_code) {
pok_ret_t core_ret;
uint32_t thread_id;
core_ret = pok_thread_id(&thread_id);
if (core_ret != 0)
*return_code = INVALID_MODE;
*process_id = thread_id;
*return_code = NO_ERROR;
}
void GET_PROCESS_STATUS(PROCESS_ID_TYPE process_id,
PROCESS_STATUS_TYPE *process_status,
RETURN_CODE_TYPE *return_code) {
pok_thread_attr_t attr;
pok_ret_t core_ret;
uint32_t core_process_id = pok_arinc653_processes[process_id];
core_ret = pok_thread_status(core_process_id, &attr);
if (core_ret == POK_ERRNO_PARAM) {
*return_code = INVALID_PARAM;
return;
}
process_status->DEADLINE_TIME = attr.deadline;
process_status->PROCESS_STATE = attr.state;
strcpy(process_status->ATTRIBUTES.NAME,
arinc_process_attribute[core_process_id].NAME);
process_status->ATTRIBUTES.BASE_PRIORITY =
arinc_process_attribute[core_process_id].BASE_PRIORITY;
process_status->ATTRIBUTES.DEADLINE = HARD;
process_status->CURRENT_PRIORITY = attr.priority;
process_status->ATTRIBUTES.PERIOD = attr.period;
process_status->ATTRIBUTES.TIME_CAPACITY = attr.time_capacity;
process_status->ATTRIBUTES.ENTRY_POINT = attr.entry;
process_status->ATTRIBUTES.STACK_SIZE = attr.stack_size;
*return_code = NO_ERROR;
}
void CREATE_PROCESS(PROCESS_ATTRIBUTE_TYPE *attributes,
PROCESS_ID_TYPE *process_id,
RETURN_CODE_TYPE *return_code) {
pok_thread_attr_t core_attr;
pok_ret_t core_ret;
uint32_t core_process_id;
if (process_name_exist(&attributes->NAME)) {
*return_code = NO_ACTION;
return;
}
if (attributes->BASE_PRIORITY > MAX_PRIORITY_VALUE ||
attributes->BASE_PRIORITY < MIN_PRIORITY_VALUE) {
*return_code = INVALID_PARAM;
return;
}
core_attr.priority = (uint8_t)attributes->BASE_PRIORITY;
core_attr.entry = attributes->ENTRY_POINT;
core_attr.period = attributes->PERIOD;
core_attr.deadline = attributes->DEADLINE;
core_attr.time_capacity = attributes->TIME_CAPACITY;
core_attr.stack_size = attributes->STACK_SIZE;
core_attr.processor_affinity = 0;
core_ret = pok_thread_create(&core_process_id, &core_attr);
*return_code = core_ret;
if (core_ret == POK_ERRNO_OK) {
pok_arinc653_processes_nb++;
pok_arinc653_processes[pok_arinc653_processes_nb] = core_process_id;
arinc_process_attribute[pok_arinc653_processes_nb].BASE_PRIORITY =
attributes->BASE_PRIORITY;
strcpy(arinc_process_attribute[pok_arinc653_processes_nb].NAME,
attributes->NAME);
*process_id = pok_arinc653_processes_nb;
} else
return;
// ARINC specifies that threads shall be created in the DORMANT state
core_ret = pok_thread_suspend_target(core_process_id);
*return_code = core_ret;
}
void STOP_SELF() { pok_thread_stop_self(); }
void SET_PRIORITY(PROCESS_ID_TYPE process_id, PRIORITY_TYPE priority,
RETURN_CODE_TYPE *return_code) {
pok_thread_attr_t core_attr;
pok_ret_t core_ret;
uint32_t core_process_id = pok_arinc653_processes[process_id];
core_ret = pok_thread_status(core_process_id, &core_attr);
if (core_ret != POK_ERRNO_OK) {
*return_code = INVALID_PARAM;
return;
}
if (priority > MAX_PRIORITY_VALUE || priority < MIN_PRIORITY_VALUE) {
*return_code = INVALID_PARAM;
return;
}
if (core_attr.state == DORMANT) {
*return_code = INVALID_MODE;
return;
}
core_ret = pok_thread_set_priority(core_process_id, priority);
*return_code = core_ret;
}
#ifndef POK_CONFIG_OPTIMIZE_FOR_GENERATED_CODE
void SUSPEND_SELF(SYSTEM_TIME_TYPE time_out, RETURN_CODE_TYPE *return_code) {
(void)time_out;
*return_code = NOT_AVAILABLE;
}
#endif
void SUSPEND(PROCESS_ID_TYPE process_id, RETURN_CODE_TYPE *return_code) {
pok_thread_attr_t attr;
pok_ret_t core_ret;
uint32_t core_process_id = pok_arinc653_processes[process_id];
core_ret = pok_thread_status(core_process_id, &attr);
if (attr.state == DORMANT) {
*return_code = INVALID_MODE;
return;
}
if (attr.period == INFINITE_TIME_VALUE) {
*return_code = INVALID_MODE;
return;
}
if (attr.state == WAITING) {
*return_code = NO_ACTION;
return;
}
core_ret = pok_thread_suspend_target(core_process_id);
*return_code = core_ret;
}
void RESUME(PROCESS_ID_TYPE process_id, RETURN_CODE_TYPE *return_code) {
pok_thread_attr_t attr;
pok_ret_t core_ret;
uint32_t core_process_id = pok_arinc653_processes[process_id];
core_ret = pok_thread_status(core_process_id, &attr);
if (core_ret != 0) {
*return_code = INVALID_PARAM;
return;
}
if (attr.state == DORMANT) {
*return_code = INVALID_MODE;
return;
}
if (attr.period == INFINITE_TIME_VALUE) {
*return_code = INVALID_MODE;
return;
}
if (attr.state != WAITING) {
*return_code = INVALID_MODE;
return;
}
core_ret = pok_thread_resume(core_process_id);
*return_code = core_ret;
}
void START(PROCESS_ID_TYPE process_id, RETURN_CODE_TYPE *return_code) {
DELAYED_START(process_id, 0, return_code);
}
void STOP(PROCESS_ID_TYPE process_id, RETURN_CODE_TYPE *return_code) {
uint32_t core_process_id = pok_arinc653_processes[process_id];
*return_code = pok_thread_stop(core_process_id);
}
void DELAYED_START(PROCESS_ID_TYPE process_id, SYSTEM_TIME_TYPE delay_time,
RETURN_CODE_TYPE *return_code) {
pok_thread_attr_t attr;
pok_ret_t core_ret;
uint32_t core_process_id = pok_arinc653_processes[process_id];
core_ret = pok_thread_status(core_process_id, &attr);
if (core_ret != POK_ERRNO_OK) {
*return_code = INVALID_PARAM;
return;
}
if (attr.state != DORMANT) {
*return_code = NO_ACTION;
return;
}
if (delay_time == INFINITE_TIME_VALUE) {
*return_code = INVALID_PARAM;
return;
}
/*if ((int)attr.period != INFINITE_TIME_VALUE && delay_time >= attr.period)
{
*return_code = INVALID_PARAM;
return;
}*/
core_ret = pok_thread_delayed_start(core_process_id, delay_time);
if (core_ret == POK_ERRNO_OK) {
*return_code = NO_ERROR;
} else {
*return_code = INVALID_PARAM;
}
}
#ifndef POK_CONFIG_OPTIMIZE_FOR_GENERATED_CODE
void LOCK_PREEMPTION(LOCK_LEVEL_TYPE *lock_level,
RETURN_CODE_TYPE *return_code) {
(void)lock_level;
*return_code = NOT_AVAILABLE;
}
void UNLOCK_PREEMPTION(LOCK_LEVEL_TYPE *lock_level,
RETURN_CODE_TYPE *return_code)
{
(void)lock_level;
*return_code = NOT_AVAILABLE;
}
#endif
#endif
|
the_stack_data/150494.c | /* precheck/chk-openssl.c - Check that OpenSSL include files and libraries are available
* Copyright (c) 2008 Symlabs ([email protected]), All Rights Reserved.
* Author: Sampo Kellomaki ([email protected])
* This is confidential unpublished proprietary source code of the author.
* NO WARRANTY, not even implied warranties. Contains trade secrets.
* Distribution prohibited unless authorized in writing.
* Licensed under Apache License 2.0, see file COPYING.
* $Id: chk-openssl.c,v 1.3 2009-10-18 12:39:10 sampo Exp $
*
* 16.9.2008, created --Sampo
*/
#include <openssl/x509.h>
#include <openssl/ssl.h>
#include <openssl/opensslv.h>
#include <openssl/crypto.h>
#include <openssl/err.h>
#include <stdio.h>
/* Called by: */
int main(int argc, char** argv)
{
SSL_library_init(); /* in -lssl */
ERR_clear_error(); /* in -lcrypto */
printf(" -- OpenSSL version from opensslv.h: %s, crypto.h: %x\n",
OPENSSL_VERSION_TEXT, (unsigned int)SSLEAY_VERSION_NUMBER);
printf(" -- from SSLeay_version(): %s\n", SSLeay_version(SSLEAY_VERSION));
return 0;
}
/* EOF -- chk-openssl.c */
|
the_stack_data/76700419.c | #include <stdio.h>
#include <stdlib.h>
int main ()
{
printf("Let's try a linked list then...\n");
// Disadvantage: must traverse the list to find given node
// Smells like a performance issues but fine.
return 0;
}
|
the_stack_data/770724.c |
int a;
double scilab_rt_rand2_intern(void)
{
return a;
}
|
the_stack_data/70450959.c | #include <stdio.h>
#define N 42
int main() {
int i, j;
int pascal[N][N];
#pragma scop
for (i = 0; i < N; i++) {
for (j = 0; j <= i; j++) {
if (i == j || j == 0)
pascal[i][j] = 1;
else
pascal[i][j] = pascal[i-1][j] + pascal[i-1][j-1];
}
}
#pragma endscop
for (i = 0; i < N; i++) {
for (j = 0; j <= i; j++) {
printf("%3d ", pascal[i][j]);
}
printf("\n");
}
return 0;
}
|
the_stack_data/29825824.c | #include <stdio.h>
#define N 10
void bubble_sort(int * a);
void recursive_bubble_sort(int * a);
int r_bubble_sort(int * a, int idx);
int main() {
int a[N] = {11, 34, 22, 67, 46, 12, 89, 34, 56, 10};
int i = 0;
int j = 0;
int tmp = 0;
for (i = 0; i < N; i ++) {
printf("%d ", a[i]);
}
printf("\n");
recursive_bubble_sort(a);
for (i = 0; i < N; i ++) {
printf("%d ", a[i]);
}
printf("\n");
printf("Hello World!");
return 0;
}
void bubble_sort(int * a) {
int i, j, tmp = 0;
for (i = 0; i < N; i ++) {
for (j = 1; j < N; j ++) {
if (a[j] > a[j - 1]) {
tmp = a[j];
a[j] = a[j - 1];
a[j - 1] = tmp;
}
}
}
}
void recursive_bubble_sort(int * a) {
int i = 0;
for (i = 0; i < N; i ++)
r_bubble_sort(a, 0);
}
int r_bubble_sort(int * a, int idx) {
int tmp = 0;
if (idx == N - 1)
return a[idx];
if (r_bubble_sort(a, idx + 1) < a[idx]) {
tmp = a[idx];
a[idx] = a[idx + 1];
a[idx + 1] = tmp;
}
}
|
the_stack_data/15172.c | #include<stdio.h>
#include<stdlib.h>
#include<unistd.h>
#include<errno.h>
int main(int argc, char* argv[])
{
char *feeds[] = {"http://www.gsmarena.com/rss-news-reviews.php3","http://www.phonearena.com/feed","http://edition.cnn.com/ASIA/"};
int times = 3;
char *phrase = argv[1];
int i;
for (i = 0; i < times;i ++)
{
char var[255];
sprintf(var, "RSS_FEED=%s",feeds[i]);
char *vars[] = {var,NULL};
if(execle ("/usr/bin/python","/usr/bin/python","./rssgossip.py",phrase,NULL,vars)==-1)
{
fprintf(stderr,"Can't run script: %i \n",strerror(errno));
return 1;
}
}
return 0;
}
|
the_stack_data/89200339.c | /*P8.13 Tranpose of matrix. */
#include<stdio.h>
#define ROW 3
#define COL 4
int main(void)
{
int mat1[ROW][COL], mat2[COL][ROW],i,j;
printf("Enter matrix mat1(%dx%d) row-wise : \n",ROW,COL);
for(i=0; i<ROW; i++)
for(j=0; j<COL; j++)
scanf("%d",&mat1[i][j]);
for(i=0; i<COL; i++)
for(j=0; j<ROW; j++)
mat2[i][j]=mat1[j][i];
printf("Transpose of matrix is:\n");
for(i=0; i<COL; i++)
{
for(j=0; j<ROW; j++)
printf("%5d",mat2[i][j]);
printf("\n");
}
return 0;
} |
the_stack_data/32634.c | /* ************************************************************************** */
/* */
/* ::: :::::::: */
/* ft_div_mod.c :+: :+: :+: */
/* +:+ +:+ +:+ */
/* By: anajmi <[email protected]> +#+ +:+ +#+ */
/* +#+#+#+#+#+ +#+ */
/* Created: 2021/06/29 09:45:44 by anajmi #+# #+# */
/* Updated: 2021/06/29 09:45:50 by anajmi ### ########.fr */
/* */
/* ************************************************************************** */
void ft_div_mod(int a, int b, int *div, int *mod)
{
*div = a / b;
*mod = a % b;
}
|
the_stack_data/75137635.c | #include<stdio.h>
#include<math.h>
struct poly
{
float coeff;
int exp;
};
struct poly a[50],b[50],c[50],d[50];
int main()
{
int i;
int deg1,deg2;
int k=0,l=0,m=0;
printf("Enter the highest degree of poly1:");
scanf("%d",°1);
for(i=0;i<=deg1;i++)
{
printf("\nEnter the coeff of x^%d :",i);
scanf("%f",&a[i].coeff);
a[k++].exp = i;
}
printf("\nEnter the highest degree of poly2:");
scanf("%d",°2);
for(i=0;i<=deg2;i++)
{
printf("\nEnter the coeff of x^%d :",i);
scanf("%f",&b[i].coeff);
b[l++].exp = i;
}
printf("\nExpression 1 = %.1f",a[0].coeff);
for(i=1;i<=deg1;i++)
{
printf("+ %.1fx^%d",a[i].coeff,a[i].exp);
}
printf("\nExpression 2 = %.1f",b[0].coeff);
for(i=1;i<=deg2;i++)
{
printf("+ %.1fx^%d",b[i].coeff,b[i].exp);
}
if(deg1>deg2)
{
for(i=0;i<=deg2;i++)
{
c[m].coeff = a[i].coeff + b[i].coeff;
c[m].exp = a[i].exp;
m++;
}
for(i=deg2+1;i<=deg1;i++)
{
c[m].coeff = a[i].coeff;
c[m].exp = a[i].exp;
m++;
}
}
else
{
for(i=0;i<=deg1;i++)
{
c[m].coeff = a[i].coeff + b[i].coeff;
c[m].exp = a[i].exp;
m++;
}
for(i=deg1+1;i<=deg2;i++)
{
c[m].coeff = b[i].coeff;
c[m].exp = b[i].exp;
m++;
}
}
printf("\nExpression after additon = %.1f",c[0].coeff);
for(i=1;i<m;i++)
{
printf("+ %.1fx^%d",c[i].coeff,c[i].exp);
}
return 0;
}
|
the_stack_data/73575061.c | /*
MAN.C
Tile Source File.
Info:
Form : All tiles as one unit.
Format : Gameboy 4 color.
Compression : None.
Counter : None.
Tile size : 8 x 8
Tiles : 0 to 0
Palette colors : None.
SGB Palette : None.
CGB Palette : None.
Convert to metatiles : No.
This file was generated by GBTD v2.2
*/
/* Start of tile array. */
const unsigned char man[] =
{
0x38,0x38,0x38,0x38,0x10,0x10,0x7C,0x7C,
0x10,0x10,0x38,0x38,0x28,0x28,0x28,0x28
};
/* End of MAN.C */
|
the_stack_data/162642141.c | #ifdef STM32F0xx
#include "stm32f0xx_ll_crs.c"
#endif
#ifdef STM32G4xx
#include "stm32g4xx_ll_crs.c"
#endif
#ifdef STM32H7xx
#include "stm32h7xx_ll_crs.c"
#endif
#ifdef STM32L0xx
#include "stm32l0xx_ll_crs.c"
#endif
#ifdef STM32L4xx
#include "stm32l4xx_ll_crs.c"
#endif
#ifdef STM32L5xx
#include "stm32l5xx_ll_crs.c"
#endif
#ifdef STM32WBxx
#include "stm32wbxx_ll_crs.c"
#endif
|
the_stack_data/103607.c | #include <errno.h>
#include <stdio.h>
#include <fcntl.h>
#include <locale.h>
#include <wctype.h>
#include <limits.h>
#include <unistd.h>
#include <string.h>
#include <stdlib.h>
#include <stdbool.h>
#ifdef __linux__
#include <linux/kd.h>
#include <sys/ioctl.h>
static void
usage(const char* argv){
fprintf(stderr, "usage: %s [ ttydev ]\n", argv);
}
static int
get_tty_fd(const char* dev){
if(dev == NULL){
dev = "/dev/tty";
}
int fd = open(dev, O_RDWR | O_CLOEXEC);
if(fd < 0){
fprintf(stderr, "Error opening %s (%s)\n", dev, strerror(errno));
}
return fd;
}
static bool
is_linux_console(int fd){
int mode;
if(ioctl(fd, KDGETMODE, &mode)){
fprintf(stderr, "Not a Linux console, KDGETMODE failed (%s)\n", strerror(errno));
return false;
}
printf("Verified Linux console, %s mode\n",
mode == KD_TEXT ? "text" :
mode == KD_GRAPHICS ? "graphics" : "unknown");
return true;
}
static int
get_linux_colormap(int fd){
unsigned char cmap[48];
if(ioctl(fd, GIO_CMAP, cmap)){
fprintf(stderr, "Error reading Linux colormap (%s)\n", strerror(errno));
return -1;
}
for(size_t i = 0 ; i < sizeof(cmap) / 12 ; ++i){
const int c1 = i * 4;
const int c2 = c1 + 1;
const int c3 = c2 + 1;
const int c4 = c3 + 1;
printf(" |%02d| %3u %3u %3u |%02d| %3u %3u %3u |%02d| %3u %3u %3u |%02d| %3u %3u %3u\n",
c1, cmap[c1 * 3], cmap[c1 * 3 + 1], cmap[c1 * 3 + 2],
c2, cmap[c2 * 3], cmap[c2 * 3 + 1], cmap[c2 * 3 + 2],
c3, cmap[c3 * 3], cmap[c3 * 3 + 1], cmap[c3 * 3 + 2],
c4, cmap[c4 * 3], cmap[c4 * 3 + 1], cmap[c4 * 3 + 2]);
}
return 0;
}
// each row is laid out as bytes, one bit per pixel, rounded up to the
// lowest sufficient number of bytes. each character is thus
//
// height * rowbytes, where rowbytes = width + 7 / 8
static int
explode_glyph_row(unsigned char** row, unsigned width){
unsigned char mask = 0x80;
while(width--){
printf("%s", **row & mask ? "*" : " ");
if((mask >>= 1) == 0 && width){
mask = 0x80;
++*row;
}
}
printf(" ");
++*row;
return 0;
}
static int
get_linux_consolefont(int fd, unsigned showglyphs){
struct console_font_op cfo = {0};
cfo.op = KD_FONT_OP_GET;
cfo.charcount = 512;
cfo.width = 32;
cfo.height = 32;
cfo.data = malloc(128 * cfo.charcount);
if(cfo.data == NULL){
return -1;
}
if(ioctl(fd, KDFONTOP, &cfo)){
fprintf(stderr, "Error reading Linux kernelfont (%s)\n", strerror(errno));
free(cfo.data);
return -1;
}
printf("Kernel font size (glyphcount): %hu\n", cfo.charcount);
printf("Kernel font geometry: %hux%hu\n", cfo.height, cfo.width);
if(cfo.charcount > 512){
fprintf(stderr, "Warning: kernel returned excess charcount\n");
free(cfo.data);
return -1;
}
if(showglyphs){
// FIXME get real screen width
const int atonce = 80 / (cfo.width + 1);
const int Bper = 64;
unsigned char** g = malloc(sizeof(*g) * atonce);
for(unsigned i = 0 ; i < cfo.charcount ; i += atonce){
for(int o = 0 ; o < atonce ; ++o){
g[o] = (unsigned char*)cfo.data + Bper * (i + o);
}
for(unsigned row = 0 ; row < cfo.height ; ++row){
for(int o = 0 ; o < atonce ; ++o){
explode_glyph_row(&g[o], cfo.width);
}
printf("\n");
}
}
free(g);
}
free(cfo.data);
return 0;
}
static int
get_linux_consolemap(int fd){
struct unimapdesc map = {0};
map.entry_ct = USHRT_MAX;
map.entries = malloc(map.entry_ct * sizeof(struct unipair));
if(ioctl(fd, GIO_UNIMAP, &map)){
fprintf(stderr, "Error reading Unicode->font map (%s)\n", strerror(errno));
free(map.entries);
return -1;
}
printf("Unicode->font entries: %hu\n", map.entry_ct);
for(int i = 0 ; i < map.entry_ct ; ++i){
wint_t w = map.entries[i].unicode;
printf(" %05hx (%lc)->%3hu ", map.entries[i].unicode,
(wint_t)(iswprint(w) ? w : L' '), map.entries[i].fontpos);
if(i % 4 == 3){
printf("\n");
}
}
free(map.entries);
if(map.entry_ct % 4){
printf("\n");
}
return 0;
}
static int
get_linux_unimap(int fd){
unsigned short map[E_TABSZ];
if(ioctl(fd, GIO_UNISCRNMAP, map)){
fprintf(stderr, "Error reading Unicode->screen map (%s)\n", strerror(errno));
return -1;
}
printf("Unicode->screen entries: %d\n", E_TABSZ);
int standard = 0;
for(size_t i = 0 ; i < sizeof(map) / sizeof(*map) ; ++i){
if(map[i] != 0xf000 + i){
printf(" |%03zu| %hx\n", i, map[i]);
}else{
++standard;
}
}
printf(" %d/%d direct-to-font mapping%s\n", standard,
E_TABSZ, standard == 1 ? "" : "s");
return 0;
}
int main(int argc, char** argv){
if(setlocale(LC_ALL, "") == NULL){
fprintf(stderr, "Error setting locale\n");
return EXIT_FAILURE;
}
if(argc > 2){
usage(argv[0]);
return EXIT_FAILURE;
}
int fd = get_tty_fd(argv[1]);
if(fd < 0){
return EXIT_FAILURE;
}
if(!is_linux_console(fd)){
return EXIT_FAILURE;
}
int r = 0;
r |= get_linux_colormap(fd);
r |= get_linux_consolefont(fd, true);
r |= get_linux_consolemap(fd);
r |= get_linux_unimap(fd);
if(close(fd)){
fprintf(stderr, "Error closing %d (%s)\n", fd, strerror(errno));
}
return r ? EXIT_FAILURE : EXIT_SUCCESS;
}
#else
int main(void){
fprintf(stderr, "This is a Linux-only program\n");
return EXIT_FAILURE;
}
#endif
|
the_stack_data/124141.c | #include <stdlib.h>
#include <stdio.h>
int main()
{
printf("Hello World\n");
return 0;
}
|
the_stack_data/50136952.c | #include <stdlib.h>
#include <string.h>
char *slurp(const char *path);
int main(void)
{
/* Let's ignore the newline and potential trailing garbage. */
const char *expected = "test file, please ignore";
char *actual = slurp("assets/test");
return strncmp(actual, expected, strlen(expected));
}
|
the_stack_data/115764892.c | /**
* printArray() can print the numbers declareAndInitArray() just put into the stack.
*
* When declareAndInitArray() function is called,
* it push 400 bytes data into the stack (SP is
* the Stack Pointer):
* SP = SP + 100 * sizeof(int);
*
* When it returns, the stack pointer goes back:
* SP = SP - 100 * sizeof(int);
* But the datas in the stack are not erased.
*
* When printArray() function is called, it increase
* the stack pointer by 404:
* SP = SP + 100 * sizeof(int); //arr[100];
* SP = SP + 1 * sizeof(int); //int i;
* So printArray() just happends to access the datas
* declareAndInitArray() left in the stack.
*/
#include <stdio.h>
void declareAndInitArray(void);
void printArray(void);
int main(void) {
declareAndInitArray();
printArray();
}
void declareAndInitArray(void) {
int arr[100];
for (int i = 0; i < 100; i++) {
arr[i] = i;
}
}
void printArray(void) {
int arr[100];
int i;
for (i = 0; i < 100; i++) {
printf("arr[%d] = %d\n", arr[i] = i, i);
}
}
|
the_stack_data/231394417.c | /*
* Pre-condition: The input is a data file which is
* formatted as follows. The first line is an integer
* equal to the number of data values that follow it.
* Each subsequent line is a data value, which is an
* integer. The data file's name is an argument
* in the command line.
*
* Post-condition: The program will sum all the data
* values in the data file. Then it will display the
* sum on the standard output.
*/
#include <stdlib.h>
#include <stdio.h>
#include <string.h>
main(int argc, char *argv[])
{
FILE * fp;
int i;
int numvalues;
int datavalue;
int sum;
if (argc != 2)
{
printf("Usage: ./%s Data/file_name\n",argv[1]);
return;
}
if ((fp=fopen(argv[1], "r"))==NULL)
{
printf("Could not open the data file %s\n",argv[1]);
return;
}
/* Read the first line which is the number of data values */
fscanf(fp, "%d", &numvalues);
if (numvalues > 1000 || numvalues < 0)
{
printf("Error: the number of data values %d exceeds 1000\n",numvalues);
fclose(fp);
return;
}
/* Read in the data values and sum them */
sum = 0;
for (i=0; i<numvalues; i++)
{
fscanf(fp, "%d", &datavalue);
sum += datavalue;
}
printf("Sum from data file %s is %d\n", argv[1], sum);
fclose(fp);
}
|
the_stack_data/92326123.c | #include <stdio.h>
int main(void) {
int n = 0;
while (n++ < 3);
printf("n is %d\n", n);
printf("That's all this program does.\n");
return 0;
} |
the_stack_data/384655.c | #include<stdio.h>
#include<stdlib.h>
typedef struct stackN{
int data;
struct stackN *next;
}stackN;
void displayStack(stackN *top){
printf("\n Stack Contains:\n Top->");
while(top != NULL){
printf("\t%d", top->data);
top = top->next;
}
}
void push(stackN **top, int val){
stackN *newTop = (stackN*)malloc(sizeof(stackN));
newTop->data = val;
newTop->next = *top;
*top = newTop;
}
void pop(stackN **head){
stackN *del = *head;
*head = del->next;
free(del);
displayStack(*head);
}
int isEmpty(stackN *top){
if(top == NULL){
return 1;
}
else return 0;
}
void printMenu(){
printf("\n****** Stack Using Linked List ******");
printf("\n1. Push Element");
printf("\n2. Display Stack");
printf("\n3. Pop Element (top)");
printf("\n4. Exit");
printf("\n\nEnter Your Choice:\t");
}
int main(){
int ch=0, val=0;
stackN *root=NULL;
do{
printMenu();
scanf("%d", &ch);
switch(ch){
case 1:
printf("\nEnter Value:");
scanf("%d", &val);
push(&root, val);
break;
case 2:
if(isEmpty(root))
printf("\n*** Stack is Empty ***\n");
else displayStack(root);
break;
case 3:
pop(&root);
break;
case 4:
printf("\nExiting Program...\n");
break;
default:
printf("\nWrong Choice... Try Again!\n");
break;
}
}while(ch!=4);
return 0;
} |
the_stack_data/232955527.c | #include<stdio.h>
#include<locale.h>
int main() {
setlocale(LC_ALL, "");
float real, dolar;
printf("U$: ");
scanf("%f", &dolar);
real = dolar * 5.89;
printf("Real: R$%.2f", real);
}
|
the_stack_data/465786.c | /* tcflush() - flush buffered characters Author: Kees J. Bot
* 13 Jan 1994
*/
#define tcflush _tcflush
#define ioctl _ioctl
#include <termios.h>
#include <sys/ioctl.h>
int tcflush(int fd, int queue_selector)
{
return(ioctl(fd, TCFLSH, &queue_selector));
}
|
the_stack_data/484148.c | #include <stdlib.h>
#include <stdio.h>
//#include "LeerArchivo.h"
void leerArchivo(char* nombre);
char* obtenerNombreArchivo();
char* obtenerNombreArchivo()
{
static char leerNombre[256];
fflush(stdin); // Limpiamos buffer de entrada.
printf("Ingrese nombre del archivo: \n");
if (scanf("%s", &leerNombre) != 0)
{
// Obtenemos el contenido del buffer que sea distinto a salto de linea.
while (getchar() != '\n');
fflush(stdin); // Limpiamos buffer.
}
return leerNombre;
}
void leerArchivo(char* nombre)
{
FILE *archivoEntrada;
archivoEntrada = fopen(nombre, "r");
if(archivoEntrada != NULL)
{
printf("Leemos los datos.\n");
} else
{
printf("No se pudo leer el archivo.\n");
}
}
int main(int argc, char const *argv[])
{
char *nombre = obtenerNombreArchivo();
printf("Opcion Leida = %s\n", nombre);
leerArchivo(nombre);
return 0;
} |
the_stack_data/92329135.c | #include <stdio.h>
#include <stdlib.h>
int main(){
int valor1 = 0, valor2 = 0;
while(!(valor1 > 5 && valor1 < 10) || !(valor2 > 5 && valor2 < 10)){
printf("Digite os valores: ");
scanf("%d %d", &valor1, &valor2);
};
printf("O resultado eh: %d", (valor1 + valor2));
/*int valor1, valor2, soma, validar = 1;
while(validar = 1){
printf("Digite os valores: ");
scanf("%d %d", &valor1, &valor2);
if((valor1 > 5 && valor1 < 10) && (valor2 > 5 && valor2 < 10)){
soma = valor1 + valor2;
printf("O resultado eh: %d", soma);
break;
}
printf("Valores invalidos. Tente novamente.\n");
}*/
return 0;
} |
the_stack_data/181393062.c | typedef struct x { int a; int b; } __attribute__((aligned(32))) X;
typedef struct y { X x; X y[31]; int c; } Y;
Y y[2];
int main(void)
{
if (((char *)&y[1] - (char *)&y[0]) & 31)
abort ();
exit (0);
}
|
the_stack_data/37636437.c | /* MS Office 2007 cracker patch for JtR. Hacked together during March of 2012 by
* Dhiru Kholia <dhiru.kholia at gmail.com>
*
* OpenCL support by magnum.
*
* This software is Copyright (c) 2012, Dhiru Kholia <dhiru.kholia at gmail.com>
* and Copyright (c) 2012, magnum and it is hereby released to the general public
* under the following terms:
* Redistribution and use in source and binary forms, with or without
* modification, are permitted.
*/
#ifdef HAVE_OPENCL
#if FMT_EXTERNS_H
extern struct fmt_main fmt_opencl_office2007;
#elif FMT_REGISTERS_H
john_register_one(&fmt_opencl_office2007);
#else
#include "sha.h"
#include <openssl/aes.h>
#include <stdio.h>
#include <stdlib.h>
#include <string.h>
#include <assert.h>
#include <errno.h>
#include "arch.h"
#include "misc.h"
#include "common.h"
#include "formats.h"
#include "params.h"
#include "options.h"
#include "unicode.h"
#include "common-opencl.h"
#include "config.h"
#define PLAINTEXT_LENGTH 51
#define UNICODE_LENGTH 104 /* In octets, including 0x80 */
#define FORMAT_LABEL "office2007-opencl"
#define FORMAT_NAME "MS Office 2007"
#define OCL_ALGORITHM_NAME "SHA1 OpenCL"
#define CPU_ALGORITHM_NAME " AES"
#define ALGORITHM_NAME OCL_ALGORITHM_NAME CPU_ALGORITHM_NAME
#define BENCHMARK_COMMENT " (50,000 iterations)"
#define BENCHMARK_LENGTH -1
#define BINARY_SIZE 0
#define BINARY_ALIGN 1
#define SALT_LENGTH 16
#define SALT_SIZE sizeof(*cur_salt)
#define SALT_ALIGN 1
#define MIN_KEYS_PER_CRYPT 1
#define MAX_KEYS_PER_CRYPT 1
#define MIN(a, b) (((a) > (b)) ? (b) : (a))
#define MAX(a, b) (((a) > (b)) ? (a) : (b))
static struct fmt_tests tests[] = {
{"$office$*2007*20*128*16*8b2c9e8c878844fc842012273be4bea8*aa862168b80d8c45c852696a8bb499eb*a413507fabe2d87606595f987f679ff4b5b4c2cd", "Password"},
/* 2007-Default_myhovercraftisfullofeels_.docx */
{"$office$*2007*20*128*16*91f095a1fd02595359fe3938fa9236fd*e22668eb1347957987175079e980990f*659f50b9062d36999bf3d0911068c93268ae1d86", "myhovercraftisfullofeels"},
/* 2007-Default_myhovercraftisfullofeels_.dotx */
{"$office$*2007*20*128*16*56ea65016fbb4eac14a6770b2dbe7e99*8cf82ce1b62f01fd3b2c7666a2313302*21443fe938177e648c482da72212a8848c2e9c80", "myhovercraftisfullofeels"},
/* 2007-Default_myhovercraftisfullofeels_.xlsb */
{"$office$*2007*20*128*16*fbd4cc5dab9b8e341778ddcde9eca740*3a040a9cef3d3675009b22f99718e39c*48053b27e95fa53b3597d48ca4ad41eec382e0c8", "myhovercraftisfullofeels"},
/* 2007-Default_myhovercraftisfullofeels_.xlsm */
{"$office$*2007*20*128*16*fbd4cc5dab9b8e341778ddcde9eca740*92bb2ef34ca662ca8a26c8e2105b05c0*0261ba08cd36a324aa1a70b3908a24e7b5a89dd6", "myhovercraftisfullofeels"},
/* 2007-Default_myhovercraftisfullofeels_.xlsx */
{"$office$*2007*20*128*16*fbd4cc5dab9b8e341778ddcde9eca740*46bef371486919d4bffe7280110f913d*b51af42e6696baa097a7109cebc3d0ff7cc8b1d8", "myhovercraftisfullofeels"},
/* 2007-Default_myhovercraftisfullofeels_.xltx */
{"$office$*2007*20*128*16*fbd4cc5dab9b8e341778ddcde9eca740*1addb6823689aca9ce400be8f9e55fc9*e06bf10aaf3a4049ffa49dd91cf9e7bbf88a1b3b", "myhovercraftisfullofeels"},
{NULL}
};
static struct custom_salt {
char unsigned osalt[SALT_LENGTH];
char unsigned encryptedVerifier[16];
char unsigned encryptedVerifierHash[32];
int version;
int verifierHashSize;
int keySize;
int saltSize;
} *cur_salt;
static int *cracked, any_cracked;
static unsigned int v_width = 1; /* Vector width of kernel */
static char *saved_key; /* Password encoded in UCS-2 */
static int *saved_len; /* UCS-2 password length, in octets */
static char *saved_salt;
static unsigned char *key; /* Output key from kernel */
static int new_keys;
static cl_mem cl_saved_key, cl_saved_len, cl_salt, cl_pwhash, cl_key;
static cl_mem pinned_saved_key, pinned_saved_len, pinned_salt, pinned_key;
static cl_kernel GenerateSHA1pwhash, Generate2007key;
#define HASH_LOOPS 500 /* Lower figure gives less X hogging */
#define ITERATIONS 50000
#define STEP 0
#define SEED 128
#define OCL_CONFIG "office2007"
static const char * warn[] = {
"xfer: ", ", xfer: ", ", init: ", ", loop: ", ", final: ", ", xfer: "
};
static int split_events[] = { 3, -1, -1 };
//This file contains auto-tuning routine(s). Has to be included after formats definitions.
#include "opencl-autotune.h"
#include "memdbg.h"
/* ------- Helper functions ------- */
static size_t get_task_max_work_group_size()
{
size_t s;
s = autotune_get_task_max_work_group_size(FALSE, 0, GenerateSHA1pwhash);
s = MIN(s, autotune_get_task_max_work_group_size(FALSE, 0, crypt_kernel));
s = MIN(s, autotune_get_task_max_work_group_size(FALSE, 0, Generate2007key));
return s;
}
static size_t get_task_max_size()
{
return 0;
}
static size_t get_default_workgroup()
{
if (cpu(device_info[gpu_id]))
return get_platform_vendor_id(platform_id) == DEV_INTEL ?
8 : 1;
else
return 64;
}
static void create_clobj(size_t gws, struct fmt_main *self)
{
int i;
int bench_len = strlen(tests[0].plaintext) * 2;
gws *= v_width;
pinned_saved_key = clCreateBuffer(context[gpu_id], CL_MEM_READ_ONLY | CL_MEM_ALLOC_HOST_PTR, UNICODE_LENGTH * gws, NULL, &ret_code);
HANDLE_CLERROR(ret_code, "Error allocating page-locked memory");
cl_saved_key = clCreateBuffer(context[gpu_id], CL_MEM_READ_ONLY, UNICODE_LENGTH * gws, NULL, &ret_code);
HANDLE_CLERROR(ret_code, "Error allocating device memory");
saved_key = (char*)clEnqueueMapBuffer(queue[gpu_id], pinned_saved_key, CL_TRUE, CL_MAP_READ | CL_MAP_WRITE, 0, UNICODE_LENGTH * gws, 0, NULL, NULL, &ret_code);
HANDLE_CLERROR(ret_code, "Error mapping page-locked memory saved_key");
memset(saved_key, 0, UNICODE_LENGTH * gws);
pinned_saved_len = clCreateBuffer(context[gpu_id], CL_MEM_READ_ONLY | CL_MEM_ALLOC_HOST_PTR, sizeof(cl_int) * gws, NULL, &ret_code);
HANDLE_CLERROR(ret_code, "Error allocating page-locked memory");
cl_saved_len = clCreateBuffer(context[gpu_id], CL_MEM_READ_ONLY, sizeof(cl_int) * gws, NULL, &ret_code);
HANDLE_CLERROR(ret_code, "Error allocating device memory");
saved_len = (int*)clEnqueueMapBuffer(queue[gpu_id], pinned_saved_len, CL_TRUE, CL_MAP_READ | CL_MAP_WRITE, 0, sizeof(cl_int) * gws, 0, NULL, NULL, &ret_code);
HANDLE_CLERROR(ret_code, "Error mapping page-locked memory saved_len");
for (i = 0; i < gws; i++)
saved_len[i] = bench_len;
pinned_salt = clCreateBuffer(context[gpu_id], CL_MEM_READ_ONLY | CL_MEM_ALLOC_HOST_PTR, SALT_LENGTH, NULL, &ret_code);
HANDLE_CLERROR(ret_code, "Error allocating page-locked memory");
cl_salt = clCreateBuffer(context[gpu_id], CL_MEM_READ_ONLY, SALT_LENGTH, NULL, &ret_code);
HANDLE_CLERROR(ret_code, "Error allocating device memory");
saved_salt = (char*) clEnqueueMapBuffer(queue[gpu_id], pinned_salt, CL_TRUE, CL_MAP_READ | CL_MAP_WRITE, 0, SALT_LENGTH, 0, NULL, NULL, &ret_code);
HANDLE_CLERROR(ret_code, "Error mapping page-locked memory saved_salt");
memset(saved_salt, 0, SALT_LENGTH);
cl_pwhash = clCreateBuffer(context[gpu_id], CL_MEM_READ_WRITE, sizeof(cl_uint) * 6 * gws, NULL, &ret_code);
HANDLE_CLERROR(ret_code, "Error allocating device state buffer");
pinned_key = clCreateBuffer(context[gpu_id], CL_MEM_READ_WRITE | CL_MEM_ALLOC_HOST_PTR, 16 * gws, NULL, &ret_code);
HANDLE_CLERROR(ret_code, "Error allocating page-locked memory");
cl_key = clCreateBuffer(context[gpu_id], CL_MEM_READ_WRITE, 16 * gws, NULL, &ret_code);
HANDLE_CLERROR(ret_code, "Error allocating device memory");
key = (unsigned char*) clEnqueueMapBuffer(queue[gpu_id], pinned_key, CL_TRUE, CL_MAP_READ | CL_MAP_WRITE, 0, 16 * gws, 0, NULL, NULL, &ret_code);
HANDLE_CLERROR(ret_code, "Error mapping page-locked memory key");
memset(key, 0, 16 * gws);
HANDLE_CLERROR(clSetKernelArg(GenerateSHA1pwhash, 0, sizeof(cl_mem), (void*)&cl_saved_key), "Error setting argument 0");
HANDLE_CLERROR(clSetKernelArg(GenerateSHA1pwhash, 1, sizeof(cl_mem), (void*)&cl_saved_len), "Error setting argument 1");
HANDLE_CLERROR(clSetKernelArg(GenerateSHA1pwhash, 2, sizeof(cl_mem), (void*)&cl_salt), "Error setting argument 2");
HANDLE_CLERROR(clSetKernelArg(GenerateSHA1pwhash, 3, sizeof(cl_mem), (void*)&cl_pwhash), "Error setting argument 3");
HANDLE_CLERROR(clSetKernelArg(crypt_kernel, 0, sizeof(cl_mem), (void*)&cl_pwhash), "Error setting argument 0");
HANDLE_CLERROR(clSetKernelArg(Generate2007key, 0, sizeof(cl_mem), (void*)&cl_pwhash), "Error setting argument 0");
HANDLE_CLERROR(clSetKernelArg(Generate2007key, 1, sizeof(cl_mem), (void*)&cl_key), "Error setting argument 1");
cracked = mem_alloc(sizeof(*cracked) * gws);
}
static void release_clobj(void)
{
HANDLE_CLERROR(clEnqueueUnmapMemObject(queue[gpu_id], pinned_key, key, 0, NULL, NULL), "Error Unmapping key");
HANDLE_CLERROR(clEnqueueUnmapMemObject(queue[gpu_id], pinned_saved_key, saved_key, 0, NULL, NULL), "Error Unmapping saved_key");
HANDLE_CLERROR(clEnqueueUnmapMemObject(queue[gpu_id], pinned_saved_len, saved_len, 0, NULL, NULL), "Error Unmapping saved_len");
HANDLE_CLERROR(clEnqueueUnmapMemObject(queue[gpu_id], pinned_salt, saved_salt, 0, NULL, NULL), "Error Unmapping saved_salt");
HANDLE_CLERROR(clFinish(queue[gpu_id]), "Error releasing memory mappings");
HANDLE_CLERROR(clReleaseMemObject(pinned_key), "Release GPU buffer");
HANDLE_CLERROR(clReleaseMemObject(pinned_saved_key), "Release GPU buffer");
HANDLE_CLERROR(clReleaseMemObject(pinned_saved_len), "Release GPU buffer");
HANDLE_CLERROR(clReleaseMemObject(pinned_salt), "Release GPU buffer");
HANDLE_CLERROR(clReleaseMemObject(cl_key), "Release GPU buffer");
HANDLE_CLERROR(clReleaseMemObject(cl_saved_key), "Release GPU buffer");
HANDLE_CLERROR(clReleaseMemObject(cl_saved_len), "Release GPU buffer");
HANDLE_CLERROR(clReleaseMemObject(cl_salt), "Release GPU buffer");
HANDLE_CLERROR(clReleaseMemObject(cl_pwhash), "Release GPU buffer");
MEM_FREE(cracked);
}
static void done(void)
{
release_clobj();
HANDLE_CLERROR(clReleaseKernel(crypt_kernel), "Release kernel");
HANDLE_CLERROR(clReleaseKernel(GenerateSHA1pwhash), "Release kernel");
HANDLE_CLERROR(clReleaseKernel(Generate2007key), "Release kernel");
HANDLE_CLERROR(clReleaseProgram(program[gpu_id]), "Release Program");
}
static void clear_keys(void)
{
memset(saved_key, 0, UNICODE_LENGTH * global_work_size * v_width);
memset(saved_len, 0, sizeof(*saved_len) * global_work_size * v_width);
}
static void set_key(char *key, int index)
{
UTF16 *utfkey = (UTF16*)&saved_key[index * UNICODE_LENGTH];
/* convert key to UTF-16LE */
saved_len[index] = enc_to_utf16(utfkey, PLAINTEXT_LENGTH, (UTF8*)key, strlen(key));
if (saved_len[index] < 0)
saved_len[index] = strlen16(utfkey);
/* Prepare for GPU */
utfkey[saved_len[index]] = 0x80;
saved_len[index] <<= 1;
new_keys = 1;
//dump_stuff_msg("key buffer", &saved_key[index*UNICODE_LENGTH], UNICODE_LENGTH);
}
static void *get_salt(char *ciphertext)
{
int i, length;
char *ctcopy = strdup(ciphertext);
char *keeptr = ctcopy, *p;
cur_salt = mem_calloc_tiny(sizeof(struct custom_salt),
MEM_ALIGN_WORD);
ctcopy += 9; /* skip over "$office$*" */
p = strtok(ctcopy, "*");
cur_salt->version = atoi(p);
p = strtok(NULL, "*");
cur_salt->verifierHashSize = atoi(p);
p = strtok(NULL, "*");
cur_salt->keySize = atoi(p);
p = strtok(NULL, "*");
cur_salt->saltSize = atoi(p);
if (cur_salt->saltSize > SALT_LENGTH) {
fprintf(stderr, "** error: salt longer than supported:\n%s\n", ciphertext);
cur_salt->saltSize = SALT_LENGTH; /* will not work, but protects us from segfault */
}
p = strtok(NULL, "*");
for (i = 0; i < cur_salt->saltSize; i++)
cur_salt->osalt[i] = atoi16[ARCH_INDEX(p[i * 2])] * 16
+ atoi16[ARCH_INDEX(p[i * 2 + 1])];
p = strtok(NULL, "*");
for (i = 0; i < 16; i++)
cur_salt->encryptedVerifier[i] = atoi16[ARCH_INDEX(p[i * 2])] * 16
+ atoi16[ARCH_INDEX(p[i * 2 + 1])];
p = strtok(NULL, "*");
length = strlen(p) / 2;
for (i = 0; i < length; i++)
cur_salt->encryptedVerifierHash[i] = atoi16[ARCH_INDEX(p[i * 2])] * 16
+ atoi16[ARCH_INDEX(p[i * 2 + 1])];
MEM_FREE(keeptr);
return (void *)cur_salt;
}
static void set_salt(void *salt)
{
cur_salt = (struct custom_salt *)salt;
memcpy(saved_salt, cur_salt->osalt, SALT_LENGTH);
HANDLE_CLERROR(clEnqueueWriteBuffer(queue[gpu_id], cl_salt, CL_FALSE, 0, SALT_LENGTH, saved_salt, 0, NULL, NULL), "failed in clEnqueueWriteBuffer saved_salt");
}
static int crypt_all(int *pcount, struct db_salt *salt);
static int crypt_all_benchmark(int *pcount, struct db_salt *salt);
static void init(struct fmt_main *self)
{
char build_opts[64];
static char valgo[32] = "";
if ((v_width = opencl_get_vector_width(gpu_id,
sizeof(cl_int))) > 1) {
/* Run vectorized kernel */
snprintf(valgo, sizeof(valgo),
OCL_ALGORITHM_NAME " %ux" CPU_ALGORITHM_NAME, v_width);
self->params.algorithm_name = valgo;
}
snprintf(build_opts, sizeof(build_opts),
"-DHASH_LOOPS=%u -DUNICODE_LENGTH=%u -DV_WIDTH=%u",
HASH_LOOPS,
UNICODE_LENGTH,
v_width);
opencl_init("$JOHN/kernels/office2007_kernel.cl", gpu_id,
build_opts);
// create kernel to execute
GenerateSHA1pwhash = clCreateKernel(program[gpu_id], "GenerateSHA1pwhash", &ret_code);
HANDLE_CLERROR(ret_code, "Error creating kernel. Double-check kernel name?");
crypt_kernel = clCreateKernel(program[gpu_id], "HashLoop", &ret_code);
HANDLE_CLERROR(ret_code, "Error creating kernel. Double-check kernel name?");
Generate2007key = clCreateKernel(program[gpu_id], "Generate2007key", &ret_code);
HANDLE_CLERROR(ret_code, "Error creating kernel. Double-check kernel name?");
// Initialize openCL tuning (library) for this format.
opencl_init_auto_setup(SEED, HASH_LOOPS, split_events,
warn, 3, self, create_clobj, release_clobj,
UNICODE_LENGTH, 0);
// Auto tune execution from shared/included code.
self->methods.crypt_all = crypt_all_benchmark;
autotune_run(self, ITERATIONS + 4, 0,
(cpu(device_info[gpu_id]) ? 1000000000 : 10000000000ULL));
self->methods.crypt_all = crypt_all;
self->params.min_keys_per_crypt = local_work_size * v_width;
self->params.max_keys_per_crypt = global_work_size * v_width;
if (pers_opts.target_enc == UTF_8)
self->params.plaintext_length = MIN(125, 3 * PLAINTEXT_LENGTH);
}
static int ishex(char *q)
{
while (atoi16[ARCH_INDEX(*q)] != 0x7F)
q++;
return !*q;
}
static int valid(char *ciphertext, struct fmt_main *self)
{
char *ctcopy, *ptr, *keeptr;
int res;
if (strncmp(ciphertext, "$office$*2007*", 14))
return 0;
if (!(ctcopy = strdup(ciphertext))) {
fprintf(stderr, "Memory allocation failed in %s, unable to check if hash is valid!", FORMAT_LABEL);
return 0;
}
keeptr = ctcopy;
ctcopy += 15;
if (!(ptr = strtok(ctcopy, "*"))) /* hash size or iterations */
goto error;
if (!(ptr = strtok(NULL, "*")))
goto error;
if (strncmp(ptr, "128", 3) && strncmp(ptr, "256", 3)) /* key size */
goto error;
if (!(ptr = strtok(NULL, "*"))) /* salt size */
goto error;
res = atoi(ptr);
if (res != 16) /* can we handle other values? */
goto error;
if (!(ptr = strtok(NULL, "*"))) /* salt */
goto error;
if (strlen(ptr) != res * 2)
goto error;
if (!ishex(ptr))
goto error;
if (!(ptr = strtok(NULL, "*"))) /* encrypted verifier */
goto error;
if (!ishex(ptr))
goto error;
if (!(ptr = strtok(NULL, "*"))) /* encrypted verifier hash */
goto error;
if (!ishex(ptr))
goto error;
if (strlen(ptr) > 64)
goto error;
if ((ptr = strtok(NULL, "*")))
goto error;
MEM_FREE(keeptr);
return 1;
error:
MEM_FREE(keeptr);
return 0;
}
static inline int PasswordVerifier(unsigned char *key)
{
unsigned char decryptedVerifier[16];
unsigned char decryptedVerifierHash[16];
AES_KEY akey;
SHA_CTX ctx;
unsigned char checkHash[20];
memset(&akey, 0, sizeof(AES_KEY));
if(AES_set_decrypt_key(key, 128, &akey) < 0) {
fprintf(stderr, "AES_set_decrypt_key failed!\n");
return 0;
}
AES_ecb_encrypt(cur_salt->encryptedVerifier, decryptedVerifier, &akey, AES_DECRYPT);
memset(&akey, 0, sizeof(AES_KEY));
if(AES_set_decrypt_key(key, 128, &akey) < 0) {
fprintf(stderr, "AES_set_decrypt_key failed!\n");
return 0;
}
AES_ecb_encrypt(cur_salt->encryptedVerifierHash, decryptedVerifierHash, &akey, AES_DECRYPT);
/* find SHA1 hash of decryptedVerifier */
SHA1_Init(&ctx);
SHA1_Update(&ctx, decryptedVerifier, 16);
SHA1_Final(checkHash, &ctx);
return !memcmp(checkHash, decryptedVerifierHash, 16);
}
static int crypt_all(int *pcount, struct db_salt *salt)
{
int count = *pcount;
int index;
size_t gws, scalar_gws;
gws = ((count + (v_width * local_work_size - 1)) / (v_width * local_work_size)) * local_work_size;
scalar_gws = gws * v_width;
if (any_cracked) {
memset(cracked, 0, count * sizeof(*cracked));
any_cracked = 0;
}
if (new_keys) {
HANDLE_CLERROR(clEnqueueWriteBuffer(queue[gpu_id], cl_saved_key, CL_FALSE, 0, UNICODE_LENGTH * scalar_gws, saved_key, 0, NULL, NULL), "failed in clEnqueueWriteBuffer saved_key");
HANDLE_CLERROR(clEnqueueWriteBuffer(queue[gpu_id], cl_saved_len, CL_FALSE, 0, sizeof(int) * scalar_gws, saved_len, 0, NULL, NULL), "failed in clEnqueueWriteBuffer saved_len");
new_keys = 0;
}
HANDLE_CLERROR(clEnqueueNDRangeKernel(queue[gpu_id], GenerateSHA1pwhash, 1, NULL, &scalar_gws, &local_work_size, 0, NULL, firstEvent), "failed in clEnqueueNDRangeKernel");
for (index = 0; index < 50000 / HASH_LOOPS; index++) {
HANDLE_CLERROR(clEnqueueNDRangeKernel(queue[gpu_id], crypt_kernel, 1, NULL, &gws, &local_work_size, 0, NULL, NULL), "failed in clEnqueueNDRangeKernel");
HANDLE_CLERROR(clFinish(queue[gpu_id]), "Error running loop kernel");
opencl_process_event();
}
HANDLE_CLERROR(clEnqueueNDRangeKernel(queue[gpu_id], Generate2007key, 1, NULL, &gws, &local_work_size, 0, NULL, lastEvent), "failed in clEnqueueNDRangeKernel");
// read back aes key
HANDLE_CLERROR(clEnqueueReadBuffer(queue[gpu_id], cl_key, CL_TRUE, 0, 16 * scalar_gws, key, 0, NULL, NULL), "failed in reading key back");
#ifdef _OPENMP
#pragma omp parallel for
#endif
for (index = 0; index < count; index++)
if (PasswordVerifier(&key[index*16]))
{
cracked[index] = 1;
#ifdef _OPENMP
#pragma omp atomic
#endif
any_cracked |= 1;
}
return count;
}
static int crypt_all_benchmark(int *pcount, struct db_salt *salt)
{
int count = *pcount;
size_t gws, scalar_gws;
gws = ((count + (v_width * local_work_size - 1)) / (v_width * local_work_size)) * local_work_size;
scalar_gws = gws * v_width;
BENCH_CLERROR(clEnqueueWriteBuffer(queue[gpu_id], cl_saved_key, CL_FALSE, 0, UNICODE_LENGTH * scalar_gws, saved_key, 0, NULL, multi_profilingEvent[0]), "failed in clEnqueueWriteBuffer saved_key");
BENCH_CLERROR(clEnqueueWriteBuffer(queue[gpu_id], cl_saved_len, CL_FALSE, 0, sizeof(int) * scalar_gws, saved_len, 0, NULL, multi_profilingEvent[1]), "failed in clEnqueueWriteBuffer saved_len");
BENCH_CLERROR(clEnqueueNDRangeKernel(queue[gpu_id], GenerateSHA1pwhash, 1, NULL, &scalar_gws, &local_work_size, 0, NULL, multi_profilingEvent[2]), "failed in clEnqueueNDRangeKernel");
BENCH_CLERROR(clEnqueueNDRangeKernel(queue[gpu_id], crypt_kernel, 1, NULL, &gws, &local_work_size, 0, NULL, NULL), "failed in clEnqueueNDRangeKernel");
BENCH_CLERROR(clEnqueueNDRangeKernel(queue[gpu_id], crypt_kernel, 1, NULL, &gws, &local_work_size, 0, NULL, multi_profilingEvent[3]), "failed in clEnqueueNDRangeKernel");
BENCH_CLERROR(clEnqueueNDRangeKernel(queue[gpu_id], Generate2007key, 1, NULL, &gws, &local_work_size, 0, NULL, multi_profilingEvent[4]), "failed in clEnqueueNDRangeKernel");
// read back aes key
BENCH_CLERROR(clEnqueueReadBuffer(queue[gpu_id], cl_key, CL_TRUE, 0, 16 * scalar_gws, key, 0, NULL, multi_profilingEvent[5]), "failed in reading key back");
return count;
}
static int cmp_all(void *binary, int count)
{
return any_cracked;
}
static int cmp_one(void *binary, int index)
{
return cracked[index];
}
static int cmp_exact(char *source, int index)
{
return 1;
}
static char *get_key(int index)
{
UTF16 buf[PLAINTEXT_LENGTH + 1];
memcpy(buf, &saved_key[index * UNICODE_LENGTH], saved_len[index]);
buf[saved_len[index] >> 1] = 0;
return (char*)utf16_to_enc(buf);
}
struct fmt_main fmt_opencl_office2007 = {
{
FORMAT_LABEL,
FORMAT_NAME,
ALGORITHM_NAME,
BENCHMARK_COMMENT,
BENCHMARK_LENGTH,
PLAINTEXT_LENGTH,
BINARY_SIZE,
BINARY_ALIGN,
SALT_SIZE,
SALT_ALIGN,
MIN_KEYS_PER_CRYPT,
MAX_KEYS_PER_CRYPT,
FMT_CASE | FMT_8_BIT | FMT_UNICODE | FMT_UTF8 | FMT_OMP,
#if FMT_MAIN_VERSION > 11
{ NULL },
#endif
tests
}, {
init,
done,
fmt_default_reset,
fmt_default_prepare,
valid,
fmt_default_split,
fmt_default_binary,
get_salt,
#if FMT_MAIN_VERSION > 11
{ NULL },
#endif
fmt_default_source,
{
fmt_default_binary_hash
},
fmt_default_salt_hash,
set_salt,
set_key,
get_key,
clear_keys,
crypt_all,
{
fmt_default_get_hash
},
cmp_all,
cmp_one,
cmp_exact
}
};
#endif /* plugin stanza */
#endif /* HAVE_OPENCL */
|
the_stack_data/198581329.c | #include <stdio.h>
#include <math.h>
int main (int argc, char** argv[]){
float A, B, C, D, X;
printf("Insira o valor de A: ");
scanf("%f", &A);
printf("Insira o valor de B: ");
scanf("%f", &B);
printf("Insira o valor de C: ");
scanf("%f", &C);
printf("Insira o valor de D: ");
scanf("%f", &D);
X = ((2*B*C)-(pow(A,3)))/(pow(D,2)+6);
printf("\n\nX = %.2f", X);
return 0;
}
|
the_stack_data/182952152.c | /**
* Copyright (C) Mellanox Technologies Ltd. 2019. ALL RIGHTS RESERVED.
*
* See file LICENSE for terms.
*/
#ifdef HAVE_CONFIG_H
# include "config.h"
#endif
#include <sys/mman.h>
#include <dlfcn.h>
#include <stdio.h>
#include <unistd.h>
#include <stdlib.h>
#include <ucp/api/ucp.h>
#define _QUOTE(x) #x
#define QUOTE(x) _QUOTE(x)
int test_ucp_init(void *handle)
{
ucs_status_t (*ucp_init_version_f)(unsigned, unsigned, const ucp_params_t*,
const ucp_config_t*, ucp_context_h*);
void (*ucp_context_print_info_f)(const ucp_context_h, FILE*);
void (*ucp_cleanup_f)(ucp_context_h);
ucp_params_t ucp_params;
ucs_status_t status;
ucp_context_h ucph;
ucp_init_version_f = dlsym(handle, "ucp_init_version");
ucp_cleanup_f = dlsym(handle, "ucp_cleanup");
ucp_context_print_info_f = dlsym(handle, "ucp_context_print_info");
if (!ucp_init_version_f || !ucp_cleanup_f || !ucp_context_print_info_f) {
fprintf(stderr, "failed to get UCP function pointers\n");
return -1;
}
ucp_params.field_mask = UCP_PARAM_FIELD_FEATURES;
ucp_params.features = UCP_FEATURE_RMA;
status = ucp_init_version_f(UCP_API_MAJOR, UCP_API_MINOR, &ucp_params,
NULL, &ucph);
if (status != UCS_OK) {
fprintf(stderr, "ucp_init_version() failed\n");
return -1;
}
ucp_context_print_info_f(ucph, stdout);
ucp_cleanup_f(ucph);
return 0;
}
int main(int argc, char **argv)
{
const char *filename = QUOTE(LIB_PATH);
void *handle;
void *ptr1, *ptr2;
size_t alloc_size;
long ret;
/* get page size */
ret = sysconf(_SC_PAGESIZE);
if (ret < 0) {
fprintf(stderr, "sysconf(_SC_PAGESIZE) failed: %m\n");
return -1;
}
alloc_size = ret;
/* allocate some memory */
ptr1 = malloc(alloc_size);
if (!ptr1) {
fprintf(stderr, "malloc() failed\n");
return -1;
}
ptr2 = mmap(NULL, alloc_size, PROT_READ|PROT_WRITE,
MAP_PRIVATE|MAP_ANONYMOUS, -1, 0);
if (ptr2 == MAP_FAILED) {
fprintf(stderr, "mmmap() failed: %m\n");
ret = -1;
goto failed_mmap;
}
/* load ucp */
printf("opening '%s'\n", filename);
handle = dlopen(filename, RTLD_NOW | RTLD_LOCAL);
if (handle == NULL) {
fprintf(stderr, "failed to open %s: %m\n", filename);
ret = -1;
goto failed_dlopen;
}
/* init ucp */
ret = test_ucp_init(handle);
/* unload ucp */
dlclose(handle);
failed_dlopen:
/* relase the memory - could break if UCM is unloaded */
munmap(ptr2, alloc_size);
failed_mmap:
free(ptr1);
printf("done\n");
return ret;
}
|
the_stack_data/135393.c | /** @file patest_many.c
@ingroup test_src
@brief Start and stop the PortAudio Driver multiple times.
@author Phil Burk http://www.softsynth.com
*/
/*
* $Id$
*
* This program uses the PortAudio Portable Audio Library.
* For more information see: http://www.portaudio.com
* Copyright (c) 1999-2000 Ross Bencina and Phil Burk
*
* Permission is hereby granted, free of charge, to any person obtaining
* a copy of this software and associated documentation files
* (the "Software"), to deal in the Software without restriction,
* including without limitation the rights to use, copy, modify, merge,
* publish, distribute, sublicense, and/or sell copies of the Software,
* and to permit persons to whom the Software is furnished to do so,
* subject to the following conditions:
*
* The above copyright notice and this permission notice shall be
* included in all copies or substantial portions of the Software.
*
* THE SOFTWARE IS PROVIDED "AS IS", WITHOUT WARRANTY OF ANY KIND,
* EXPRESS OR IMPLIED, INCLUDING BUT NOT LIMITED TO THE WARRANTIES OF
* MERCHANTABILITY, FITNESS FOR A PARTICULAR PURPOSE AND NONINFRINGEMENT.
* IN NO EVENT SHALL THE AUTHORS OR COPYRIGHT HOLDERS BE LIABLE FOR
* ANY CLAIM, DAMAGES OR OTHER LIABILITY, WHETHER IN AN ACTION OF
* CONTRACT, TORT OR OTHERWISE, ARISING FROM, OUT OF OR IN CONNECTION
* WITH THE SOFTWARE OR THE USE OR OTHER DEALINGS IN THE SOFTWARE.
*/
/*
* The text above constitutes the entire PortAudio license; however,
* the PortAudio community also makes the following non-binding requests:
*
* Any person wishing to distribute modifications to the Software is
* requested to send the modifications to the original developer so that
* they can be incorporated into the canonical version. It is also
* requested that these non-binding requests be included along with the
* license above.
*/
#include <stdio.h>
#include <stdlib.h>
#include <math.h>
#include "portaudio.h"
#define NUM_SECONDS (1)
#define SAMPLE_RATE (44100)
#ifndef M_PI
#define M_PI (3.14159265)
#endif
#define TABLE_SIZE (200)
typedef struct
{
short sine[TABLE_SIZE];
int left_phase;
int right_phase;
unsigned int sampsToGo;
}
paTestData;
PaError TestOnce( void );
static int patest1Callback( const void *inputBuffer, void *outputBuffer,
unsigned long framesPerBuffer,
const PaStreamCallbackTimeInfo* timeInfo,
PaStreamCallbackFlags statusFlags,
void *userData );
/* This routine will be called by the PortAudio engine when audio is needed.
** It may called at interrupt level on some machines so don't do anything
** that could mess up the system like calling malloc() or free().
*/
static int patest1Callback( const void *inputBuffer, void *outputBuffer,
unsigned long framesPerBuffer,
const PaStreamCallbackTimeInfo* timeInfo,
PaStreamCallbackFlags statusFlags,
void *userData )
{
paTestData *data = (paTestData*)userData;
short *out = (short*)outputBuffer;
unsigned int i;
int finished = 0;
(void) inputBuffer; /* Prevent "unused variable" warnings. */
if( data->sampsToGo < framesPerBuffer )
{
/* final buffer... */
for( i=0; i<data->sampsToGo; i++ )
{
*out++ = data->sine[data->left_phase]; /* left */
*out++ = data->sine[data->right_phase]; /* right */
data->left_phase += 1;
if( data->left_phase >= TABLE_SIZE ) data->left_phase -= TABLE_SIZE;
data->right_phase += 3; /* higher pitch so we can distinguish left and right. */
if( data->right_phase >= TABLE_SIZE ) data->right_phase -= TABLE_SIZE;
}
/* zero remainder of final buffer */
for( ; i<framesPerBuffer; i++ )
{
*out++ = 0; /* left */
*out++ = 0; /* right */
}
finished = 1;
}
else
{
for( i=0; i<framesPerBuffer; i++ )
{
*out++ = data->sine[data->left_phase]; /* left */
*out++ = data->sine[data->right_phase]; /* right */
data->left_phase += 1;
if( data->left_phase >= TABLE_SIZE ) data->left_phase -= TABLE_SIZE;
data->right_phase += 3; /* higher pitch so we can distinguish left and right. */
if( data->right_phase >= TABLE_SIZE ) data->right_phase -= TABLE_SIZE;
}
data->sampsToGo -= framesPerBuffer;
}
return finished;
}
/*******************************************************************/
#ifdef MACINTOSH
int main(void);
int main(void)
{
int i;
PaError err;
int numLoops = 10;
printf("Loop %d times.\n", numLoops );
for( i=0; i<numLoops; i++ )
{
printf("Loop %d out of %d.\n", i+1, numLoops );
err = TestOnce();
if( err < 0 ) return 0;
}
}
#else
int main(int argc, char **argv);
int main(int argc, char **argv)
{
PaError err;
int i, numLoops = 10;
if( argc > 1 )
{
numLoops = atoi(argv[1]);
}
for( i=0; i<numLoops; i++ )
{
printf("Loop %d out of %d.\n", i+1, numLoops );
err = TestOnce();
if( err < 0 ) return 1;
}
printf("Test complete.\n");
return 0;
}
#endif
PaError TestOnce( void )
{
PaStreamParameters outputParameters;
PaStream *stream;
PaError err;
paTestData data;
int i;
int totalSamps;
/* initialise sinusoidal wavetable */
for( i=0; i<TABLE_SIZE; i++ )
{
data.sine[i] = (short) (32767.0 * sin( ((double)i/(double)TABLE_SIZE) * M_PI * 2. ));
}
data.left_phase = data.right_phase = 0;
data.sampsToGo = totalSamps = NUM_SECONDS * SAMPLE_RATE; /* Play for a few seconds. */
err = Pa_Initialize();
if( err != paNoError ) goto error;
outputParameters.device = Pa_GetDefaultOutputDevice(); /* default output device */
if (outputParameters.device == paNoDevice) {
fprintf(stderr,"Error: No default output device.\n");
goto error;
}
outputParameters.channelCount = 2; /* stereo output */
outputParameters.sampleFormat = paInt16;
outputParameters.suggestedLatency = Pa_GetDeviceInfo( outputParameters.device )->defaultLowOutputLatency;
outputParameters.hostApiSpecificStreamInfo = NULL;
err = Pa_OpenStream(
&stream,
NULL, /* no input */
&outputParameters,
SAMPLE_RATE,
1024, /* frames per buffer */
paClipOff, /* we won't output out of range samples so don't bother clipping them */
patest1Callback,
&data );
if( err != paNoError ) goto error;
err = Pa_StartStream( stream );
if( err != paNoError ) goto error;
printf("Waiting for sound to finish.\n");
Pa_Sleep(1000);
err = Pa_CloseStream( stream );
if( err != paNoError ) goto error;
Pa_Terminate();
return paNoError;
error:
Pa_Terminate();
fprintf( stderr, "An error occured while using the portaudio stream\n" );
fprintf( stderr, "Error number: %d\n", err );
fprintf( stderr, "Error message: %s\n", Pa_GetErrorText( err ) );
return err;
}
|
the_stack_data/75138623.c | ///////////////////////////////////////
// User-defined types and structs
///////////////////////////////////////
// Typedefs can be used to create type aliases
typedef int my_type;
my_type my_type_var = 0;
// Structs are just collections of data, the members are allocated sequentially,
// in the order they are written:
struct rectangle {
int width;
int height;
};
// It's not generally true that
// sizeof(struct rectangle) == sizeof(int) + sizeof(int)
// due to potential padding between the structure members (this is for alignment
// reasons). [1]
void function_1()
{
struct rectangle my_rec;
// Access struct members with .
my_rec.width = 10;
my_rec.height = 20;
// You can declare pointers to structs
struct rectangle *my_rec_ptr = &my_rec;
// Use dereferencing to set struct pointer members...
(*my_rec_ptr).width = 30;
// ... or even better: prefer the -> shorthand for the sake of readability
my_rec_ptr->height = 10; // Same as (*my_rec_ptr).height = 10;
}
// You can apply a typedef to a struct for convenience
typedef struct rectangle rect;
int area(rect r)
{
return r.width * r.height;
}
// if you have large structs, you can pass them "by pointer" to avoid copying
// the whole struct:
int areaptr(const rect *r)
{
return r->width * r->height;
}
|
the_stack_data/218893932.c | #include <stdio.h>
#include <stdlib.h>
typedef struct {
char *name;
int size;
void (*(*_vtable)[])();
} metadata;
typedef struct {
metadata *clazz;
} object;
object *alloc(metadata *clazz) {
object *p = calloc(1, clazz->size); // wipe to 0s
p->clazz = clazz;
return p;
}
// D e f i n e C l a s s T
typedef struct {
metadata *clazz;
} T;
#define T_foo_SLOT 0
void T_foo(T *this)
{
printf("hi\n");
}
void (*T_vtable[])() = {
(void (*)())&T_foo
};
metadata T_metadata = {"T", sizeof(T), &T_vtable};
int main(int argc, char *argv[])
{
T * t;
t = ((T *)alloc(&T_metadata));
(*(void (*)(T *))(*(t)->clazz->_vtable)[T_foo_SLOT])(((T *)t));
return 0;
} |
the_stack_data/941978.c |
#include <stdio.h>
void scilab_rt_plot3d_d2d2d2d0d0s0i2_(int in00, int in01, double matrixin0[in00][in01],
int in10, int in11, double matrixin1[in10][in11],
int in20, int in21, double matrixin2[in20][in21],
double scalarin0,
double scalarin1,
char* scalarin2,
int in30, int in31, int matrixin3[in30][in31])
{
int i;
int j;
double val0 = 0;
double val1 = 0;
double val2 = 0;
int val3 = 0;
for (i = 0; i < in00; ++i) {
for (j = 0; j < in01; ++j) {
val0 += matrixin0[i][j];
}
}
printf("%f", val0);
for (i = 0; i < in10; ++i) {
for (j = 0; j < in11; ++j) {
val1 += matrixin1[i][j];
}
}
printf("%f", val1);
for (i = 0; i < in20; ++i) {
for (j = 0; j < in21; ++j) {
val2 += matrixin2[i][j];
}
}
printf("%f", val2);
printf("%f", scalarin0);
printf("%f", scalarin1);
printf("%s", scalarin2);
for (i = 0; i < in30; ++i) {
for (j = 0; j < in31; ++j) {
val3 += matrixin3[i][j];
}
}
printf("%d", val3);
}
|
the_stack_data/200143344.c | #include <stdio.h>
int main()
{
printf ("Hello, C World!\n");
return 0;
}
|
the_stack_data/1268574.c | #include <signal.h>
#include <stdio.h>
void my_handler(int nsig){
switch (nsig){
case 2: printf("Receive signal %d, CTRL-C pressed\n"); break;
case 3: printf("Receive signal %d, CTRL-4 pressed\n");
}
}
int main(void){
(void) signal (SIGINT, my_handler);
(void) signal (SIGQUIT, my_handler);
while(1);
return 0;
}
|
the_stack_data/206392175.c | // Test instrumented profiling ld flags.
//
// RUN: %clang -no-canonical-prefixes %s -### -o %t.o 2>&1 \
// RUN: -target i386-unknown-linux -fprofile-instr-generate -fuse-ld=ld \
// RUN: -resource-dir=%S/Inputs/resource_dir \
// RUN: --sysroot=%S/Inputs/basic_linux_tree \
// RUN: | FileCheck --check-prefix=CHECK-LINUX-I386 %s
//
// CHECK-LINUX-I386: "{{(.*[^-.0-9A-Z_a-z])?}}ld{{(.exe)?}}"
// CHECK-LINUX-I386: "{{.*}}/Inputs/resource_dir{{/|\\\\}}lib{{/|\\\\}}linux{{/|\\\\}}libclang_rt.profile-i386.a" {{.*}} "-lc"
//
// RUN: %clang -no-canonical-prefixes %s -### -o %t.o 2>&1 \
// RUN: -target x86_64-unknown-linux -fprofile-instr-generate -fuse-ld=ld \
// RUN: -resource-dir=%S/Inputs/resource_dir \
// RUN: --sysroot=%S/Inputs/basic_linux_tree \
// RUN: | FileCheck --check-prefix=CHECK-LINUX-X86-64 %s
//
// CHECK-LINUX-X86-64: "{{(.*[^-.0-9A-Z_a-z])?}}ld{{(.exe)?}}"
// CHECK-LINUX-X86-64: "{{.*}}/Inputs/resource_dir{{/|\\\\}}lib{{/|\\\\}}linux{{/|\\\\}}libclang_rt.profile-x86_64.a" {{.*}} "-lc"
//
// RUN: %clang -no-canonical-prefixes %s -### -o %t.o 2>&1 \
// RUN: -target x86_64-unknown-linux -fprofile-instr-generate -nostdlib -fuse-ld=ld \
// RUN: -resource-dir=%S/Inputs/resource_dir \
// RUN: --sysroot=%S/Inputs/basic_linux_tree \
// RUN: | FileCheck --check-prefix=CHECK-LINUX-NOSTDLIB-X86-64 %s
//
// CHECK-LINUX-NOSTDLIB-X86-64: "{{(.*[^-.0-9A-Z_a-z])?}}ld{{(.exe)?}}"
// CHECK-LINUX-NOSTDLIB-X86-64: "{{.*}}/Inputs/resource_dir{{/|\\\\}}lib{{/|\\\\}}linux{{/|\\\\}}libclang_rt.profile-x86_64.a"
//
// RUN: %clang -no-canonical-prefixes %s -### -o %t.o 2>&1 \
// RUN: -target x86_64-unknown-freebsd -fprofile-instr-generate -fuse-ld=ld \
// RUN: -resource-dir=%S/Inputs/resource_dir \
// RUN: --sysroot=%S/Inputs/basic_freebsd64_tree \
// RUN: | FileCheck --check-prefix=CHECK-FREEBSD-X86-64 %s
//
// CHECK-FREEBSD-X86-64: "{{(.*[^-.0-9A-Z_a-z])?}}ld{{(.exe)?}}"
// CHECK-FREEBSD-X86-64: "{{.*}}/Inputs/resource_dir{{/|\\\\}}lib{{/|\\\\}}freebsd{{/|\\\\}}libclang_rt.profile-x86_64.a"
//
// RUN: %clang -no-canonical-prefixes %s -### -o %t.o 2>&1 \
// RUN: -shared \
// RUN: -target i386-unknown-linux -fprofile-instr-generate -fuse-ld=ld \
// RUN: -resource-dir=%S/Inputs/resource_dir \
// RUN: --sysroot=%S/Inputs/basic_linux_tree \
// RUN: | FileCheck --check-prefix=CHECK-LINUX-I386-SHARED %s
//
// CHECK-LINUX-I386-SHARED: "{{(.*[^-.0-9A-Z_a-z])?}}ld{{(.exe)?}}"
// CHECK-LINUX-I386-SHARED: "{{.*}}/Inputs/resource_dir{{/|\\\\}}lib{{/|\\\\}}linux{{/|\\\\}}libclang_rt.profile-i386.a" {{.*}} "-lc"
//
// RUN: %clang -no-canonical-prefixes %s -### -o %t.o 2>&1 \
// RUN: -shared \
// RUN: -target x86_64-unknown-linux -fprofile-instr-generate -fuse-ld=ld \
// RUN: -resource-dir=%S/Inputs/resource_dir \
// RUN: --sysroot=%S/Inputs/basic_linux_tree \
// RUN: | FileCheck --check-prefix=CHECK-LINUX-X86-64-SHARED %s
//
// CHECK-LINUX-X86-64-SHARED: "{{(.*[^-.0-9A-Z_a-z])?}}ld{{(.exe)?}}"
// CHECK-LINUX-X86-64-SHARED: "{{.*}}/Inputs/resource_dir{{/|\\\\}}lib{{/|\\\\}}linux{{/|\\\\}}libclang_rt.profile-x86_64.a" {{.*}} "-lc"
//
// RUN: %clang -no-canonical-prefixes %s -### -o %t.o 2>&1 \
// RUN: -shared \
// RUN: -target x86_64-unknown-freebsd -fprofile-instr-generate -fuse-ld=ld \
// RUN: -resource-dir=%S/Inputs/resource_dir \
// RUN: --sysroot=%S/Inputs/basic_freebsd64_tree \
// RUN: | FileCheck --check-prefix=CHECK-FREEBSD-X86-64-SHARED %s
//
// CHECK-FREEBSD-X86-64-SHARED: "{{(.*[^-.0-9A-Z_a-z])?}}ld{{(.exe)?}}"
// CHECK-FREEBSD-X86-64-SHARED: "{{.*}}/Inputs/resource_dir{{/|\\\\}}lib{{/|\\\\}}freebsd{{/|\\\\}}libclang_rt.profile-x86_64.a"
//
// RUN: %clang -no-canonical-prefixes %s -### -o %t.o 2>&1 \
// RUN: -target x86_64-apple-darwin14 -fprofile-instr-generate -fuse-ld=ld \
// RUN: -resource-dir=%S/Inputs/resource_dir \
// RUN: | FileCheck --check-prefix=CHECK-DARWIN-X86-64 %s
//
// CHECK-DARWIN-X86-64: "{{(.*[^-.0-9A-Z_a-z])?}}ld{{(.exe)?}}"
// CHECK-DARWIN-X86-64: "{{.*}}/Inputs/resource_dir{{/|\\\\}}lib{{/|\\\\}}darwin{{/|\\\\}}libclang_rt.profile_osx.a"
//
// RUN: %clang -no-canonical-prefixes %s -### -o %t.o 2>&1 \
// RUN: -target x86_64-apple-darwin14 -fprofile-instr-generate -nostdlib -fuse-ld=ld \
// RUN: -resource-dir=%S/Inputs/resource_dir \
// RUN: | FileCheck --check-prefix=CHECK-DARWIN-NOSTDLIB-X86-64 %s
//
// CHECK-DARWIN-NOSTDLIB-X86-64: "{{(.*[^-.0-9A-Z_a-z])?}}ld{{(.exe)?}}"
// CHECK-DARWIN-NOSTDLIB-X86-64: "{{.*}}/Inputs/resource_dir{{/|\\\\}}lib{{/|\\\\}}darwin{{/|\\\\}}libclang_rt.profile_osx.a"
//
// RUN: %clang -no-canonical-prefixes %s -### -o %t.o 2>&1 \
// RUN: -target arm64-apple-ios -fprofile-instr-generate -fuse-ld=ld \
// RUN: -resource-dir=%S/Inputs/resource_dir \
// RUN: | FileCheck --check-prefix=CHECK-DARWIN-ARM64 %s
//
// CHECK-DARWIN-ARM64: "{{(.*[^-.0-9A-Z_a-z])?}}ld{{(.exe)?}}"
// CHECK-DARWIN-ARM64: "{{.*}}/Inputs/resource_dir{{/|\\\\}}lib{{/|\\\\}}darwin{{/|\\\\}}libclang_rt.profile_ios.a"
//
// RUN: %clang -no-canonical-prefixes %s -### -o %t.o 2>&1 \
// RUN: -target armv7-apple-darwin -mtvos-version-min=8.3 -fprofile-instr-generate -fuse-ld=ld \
// RUN: -resource-dir=%S/Inputs/resource_dir \
// RUN: | FileCheck --check-prefix=CHECK-TVOS-ARMV7 %s
//
// CHECK-TVOS-ARMV7: "{{(.*[^-.0-9A-Z_a-z])?}}ld{{(.exe)?}}"
// CHECK-TVOS-ARMV7: "{{.*}}/Inputs/resource_dir{{/|\\\\}}lib{{/|\\\\}}darwin{{/|\\\\}}libclang_rt.profile_tvos.a"
//
// RUN: %clang -no-canonical-prefixes %s -### -o %t.o 2>&1 \
// RUN: -target armv7s-apple-darwin10 -mwatchos-version-min=2.0 -arch armv7k -fprofile-instr-generate -fuse-ld=ld \
// RUN: -resource-dir=%S/Inputs/resource_dir \
// RUN: | FileCheck --check-prefix=CHECK-WATCHOS-ARMV7 %s
//
// CHECK-WATCHOS-ARMV7: "{{(.*[^-.0-9A-Z_a-z])?}}ld{{(.exe)?}}"
// CHECK-WATCHOS-ARMV7: "{{.*}}/Inputs/resource_dir{{/|\\\\}}lib{{/|\\\\}}darwin{{/|\\\\}}libclang_rt.profile_watchos.a"
//
// RUN: %clang -no-canonical-prefixes %s -### -o %t.o 2>&1 \
// RUN: -target i386-pc-win32 -fprofile-instr-generate \
// RUN: -resource-dir=%S/Inputs/resource_dir \
// RUN: | FileCheck --check-prefix=CHECK-WINDOWS-I386 %s
//
// CHECK-WINDOWS-I386: "{{.*}}link{{(.exe)?}}"
// CHECK-WINDOWS-I386: "{{.*}}clang_rt.profile{{(-i386)?}}.lib"
//
// RUN: %clang -no-canonical-prefixes %s -### -o %t.o 2>&1 \
// RUN: -target x86_64-pc-win32 -fprofile-instr-generate \
// RUN: -resource-dir=%S/Inputs/resource_dir \
// RUN: | FileCheck --check-prefix=CHECK-WINDOWS-X86-64 %s
//
// CHECK-WINDOWS-X86-64: "{{.*}}link{{(.exe)?}}"
// CHECK-WINDOWS-X86-64: "{{.*}}clang_rt.profile{{(-x86_64)?}}.lib"
//
// RUN: %clang -no-canonical-prefixes %s -### -o %t.o 2>&1 \
// RUN: -target x86_64-mingw32 -fprofile-instr-generate -fuse-ld=ld \
// RUN: -resource-dir=%S/Inputs/resource_dir \
// RUN: | FileCheck --check-prefix=CHECK-MINGW-X86-64 %s
//
// CHECK-MINGW-X86-64: "{{(.*[^.0-9A-Z_a-z])?}}ld{{(.exe)?}}"
// CHECK-MINGW-X86-64: "{{.*}}/Inputs/resource_dir{{/|\\\\}}lib{{/|\\\\}}windows{{/|\\\\}}libclang_rt.profile-x86_64.a"
// Test instrumented profiling dependent-lib flags
//
// RUN: %clang %s -### -o %t.o -target x86_64-pc-win32 \
// RUN: -fprofile-instr-generate 2>&1 \
// RUN: | FileCheck --check-prefix=CHECK-WINDOWS-X86-64-DEPENDENT-LIB %s
//
// CHECK-WINDOWS-X86-64-DEPENDENT-LIB: "--dependent-lib={{[^"]*}}clang_rt.profile{{[^"]*}}.lib"
//
// RUN: %clang %s -### -o %t.o -target x86_64-mingw32 \
// RUN: -fprofile-instr-generate 2>&1 \
// RUN: | FileCheck --check-prefix=CHECK-MINGW-X86-64-DEPENDENT-LIB %s
//
// CHECK-MINGW-X86-64-DEPENDENT-LIB-NOT: "--dependent-lib={{[^"]*}}clang_rt.profile-{{[^"]*}}.a"
|
the_stack_data/100139482.c | #include <stdio.h> // for scanf() printf()
#include <assert.h> // for assert()
typedef char char_type1;
typedef char *char_type2;
typedef char(char_type3);
typedef char(*char_type4);
typedef char *(char_type5);
typedef char(str_type1)[2];
typedef char (*str_type2)[2];
int main() {
char_type1 ch1 = 'A';
char_type2 ch2 = &ch1;
assert(*ch2 = ch1);
char_type3 ch3 = ch1;
assert(ch3 = ch1);
char_type4 ch4 = ch2;
assert(*ch4 = ch3);
char_type5 ch5 = ch4;
assert(*ch5 == ch1);
str_type1 str1 = "A";
assert(str1[0] == 'A');
assert(str1[1] == '\0');
char_type2 str0 = str1;
assert(str0[0] == 'A');
assert(str0[1] == '\0');
str_type2 str2 = &str1;
assert(str2[0][0] == 'A');
assert(str2[0][1] == '\0');
return 0;
}
|
the_stack_data/90333.c | #include <ctype.h>
#include <stdbool.h>
#include <string.h>
// is_panagram
// Determine if a sentence is a pangram
bool is_pangram(const char *sentence) {
// The sentence is empty, just exit
if ( sentence == NULL || *sentence == '\0' ) {
return NULL;
}
// Use a bitmap to track the letters seen
const unsigned int PANGRAM_BITMAP = 0x03FFFFFF;
unsigned int alpha_bitmap = 0U;
while ( *sentence != '\0' ) {
if ( isalpha( *sentence )) {
unsigned char letter_value = tolower(*sentence) - 'a';
alpha_bitmap |= 1UL << letter_value;
}
sentence++;
}
// Check the bitmap to see if we saw all the letters
if ( alpha_bitmap == PANGRAM_BITMAP ) {
return true;
} else {
return false;
}
}
|
the_stack_data/110986.c | /* NOCW */
/* demos/bio/saccept.c */
/* A minimal program to server an SSL connection.
* It uses blocking.
* saccept host:port
* host is the interface IP to use. If any interface, use *:port
* The default it *:4433
*
* cc -I../../include saccept.c -L../.. -lssl -lcrypto
*/
#include <stdio.h>
#include <signal.h>
#include <openssl/err.h>
#include <openssl/ssl.h>
#define CERT_FILE "server.pem"
BIO *in=NULL;
void close_up()
{
if (in != NULL)
BIO_free(in);
}
int main(argc,argv)
int argc;
char *argv[];
{
char *port=NULL;
BIO *ssl_bio,*tmp;
SSL_CTX *ctx;
SSL *ssl;
char buf[512];
int ret=1,i;
if (argc <= 1)
port="*:4433";
else
port=argv[1];
signal(SIGINT,close_up);
SSL_load_error_strings();
#ifdef WATT32
dbug_init();
sock_init();
#endif
/* Add ciphers and message digests */
OpenSSL_add_ssl_algorithms();
ctx=SSL_CTX_new(SSLv23_server_method());
if (!SSL_CTX_use_certificate_file(ctx,CERT_FILE,SSL_FILETYPE_PEM))
goto err;
if (!SSL_CTX_use_PrivateKey_file(ctx,CERT_FILE,SSL_FILETYPE_PEM))
goto err;
if (!SSL_CTX_check_private_key(ctx))
goto err;
/* Setup server side SSL bio */
ssl=SSL_new(ctx);
ssl_bio=BIO_new_ssl(ctx,0);
if ((in=BIO_new_accept(port)) == NULL) goto err;
/* This means that when a new connection is acceptede on 'in',
* The ssl_bio will be 'dupilcated' and have the new socket
* BIO push into it. Basically it means the SSL BIO will be
* automatically setup */
BIO_set_accept_bios(in,ssl_bio);
again:
/* The first call will setup the accept socket, and the second
* will get a socket. In this loop, the first actual accept
* will occur in the BIO_read() function. */
if (BIO_do_accept(in) <= 0) goto err;
for (;;)
{
i=BIO_read(in,buf,512);
if (i == 0)
{
/* If we have finished, remove the underlying
* BIO stack so the next time we call any function
* for this BIO, it will attempt to do an
* accept */
printf("Done\n");
tmp=BIO_pop(in);
BIO_free_all(tmp);
goto again;
}
if (i < 0) goto err;
fwrite(buf,1,i,stdout);
fflush(stdout);
}
ret=0;
err:
if (ret)
{
ERR_print_errors_fp(stderr);
}
if (in != NULL) BIO_free(in);
exit(ret);
return(!ret);
}
|
the_stack_data/198682.c | #include <string.h>
struct mystruct {
int x;
char y;
};
int main()
{
struct mystruct s;
char c;
__CPROVER_input("c", c);
memset(&s,c,sizeof(struct mystruct));
if(s.y=='A')
{
return 0;
}
return 1;
}
|
the_stack_data/70675.c | // https://www.hackerrank.com/challenges/small-triangles-large-triangles
#include <math.h>
#include <stdio.h>
#include <stdlib.h>
struct triangle {
int a;
int b;
int c;
};
typedef struct triangle triangle;
static int sq_area(triangle t) {
return (t.a + t.b + t.c) * (t.a + t.b - t.c) * (t.a - t.b + t.c) *
(-t.a + t.b + t.c);
}
static int cmp(const void* p, const void* q) {
return sq_area(*(const triangle*)p) - sq_area(*(const triangle*)q);
}
static void sort_by_area(triangle* tr, int n) {
qsort((void*)tr, n, sizeof(triangle), cmp);
}
int main_small_triangles_large_triangles() {
int n;
scanf("%d", &n);
triangle* tr = malloc(n * sizeof(triangle));
for (int i = 0; i < n; i++) {
scanf("%d%d%d", &tr[i].a, &tr[i].b, &tr[i].c);
}
sort_by_area(tr, n);
for (int i = 0; i < n; i++) {
printf("%d %d %d\n", tr[i].a, tr[i].b, tr[i].c);
}
return 0;
}
|
the_stack_data/57133.c | extern const unsigned char GearsVersionString[];
extern const double GearsVersionNumber;
const unsigned char GearsVersionString[] __attribute__ ((used)) = "@(#)PROGRAM:Gears PROJECT:Gears-1" "\n";
const double GearsVersionNumber __attribute__ ((used)) = (double)1.;
|
the_stack_data/703.c | /*
Simple Linear-Feedback Shift Register
I try to implement in x86 assembly using nasm,
but its pain.
*/
#include <stdio.h>
int main(){
int seed[4] = {1, 0, 1, 1};
for(int i=0; i<sizeof(seed);i++){
int fxor = seed[0] ^ seed[3];
printf("%d", fxor);
for (int j=0; j<sizeof(seed)/sizeof(seed[0])-1; j++){
seed[j] = seed[j+1];
}
seed[3] = fxor;
}
printf("\n");
} |
the_stack_data/15761495.c | # 1 "benchmarks/ds-04-impl1.c"
# 1 "<built-in>"
# 1 "<command-line>"
# 1 "/usr/include/stdc-predef.h" 1 3 4
# 1 "<command-line>" 2
# 1 "benchmarks/ds-04-impl1.c"
# 1 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/dsverifier.h" 1
# 20 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/dsverifier.h"
# 1 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/core/definitions.h" 1
# 132 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/core/definitions.h"
int X_SIZE_VALUE = 0;
int overflow_mode = 1;
int rounding_mode = 0;
# 155 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/core/definitions.h"
typedef struct {
double a[100];
int a_size;
double b[100];
int b_size;
double sample_time;
double a_uncertainty[100];
double b_uncertainty[100];
} digital_system;
typedef struct {
double A[4][4];
double B[4][4];
double C[4][4];
double D[4][4];
double states[4][4];
double outputs[4][4];
double inputs[4][4];
double K[4][4];
unsigned int nStates;
unsigned int nInputs;
unsigned int nOutputs;
} digital_system_state_space;
typedef struct {
int int_bits;
int frac_bits;
double max;
double min;
int default_realization;
double delta;
int scale;
double max_error;
} implementation;
typedef struct {
int push;
int in;
int sbiw;
int cli;
int out;
int std;
int ldd;
int subi;
int sbci;
int lsl;
int rol;
int add;
int adc;
int adiw;
int rjmp;
int mov;
int sbc;
int ld;
int rcall;
int cp;
int cpc;
int ldi;
int brge;
int pop;
int ret;
int st;
int brlt;
int cpi;
} instructions;
typedef struct {
long clock;
int device;
double cycle;
instructions assembly;
} hardware;
typedef struct{
float Ap, Ar, Ac;
float wp, wc, wr;
int type;
}filter_parameters;
# 21 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/dsverifier.h" 2
# 1 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/core/compatibility.h" 1
# 17 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/core/compatibility.h"
# 1 "/usr/include/stdlib.h" 1 3 4
# 25 "/usr/include/stdlib.h" 3 4
# 1 "/usr/include/x86_64-linux-gnu/bits/libc-header-start.h" 1 3 4
# 33 "/usr/include/x86_64-linux-gnu/bits/libc-header-start.h" 3 4
# 1 "/usr/include/features.h" 1 3 4
# 461 "/usr/include/features.h" 3 4
# 1 "/usr/include/x86_64-linux-gnu/sys/cdefs.h" 1 3 4
# 452 "/usr/include/x86_64-linux-gnu/sys/cdefs.h" 3 4
# 1 "/usr/include/x86_64-linux-gnu/bits/wordsize.h" 1 3 4
# 453 "/usr/include/x86_64-linux-gnu/sys/cdefs.h" 2 3 4
# 1 "/usr/include/x86_64-linux-gnu/bits/long-double.h" 1 3 4
# 454 "/usr/include/x86_64-linux-gnu/sys/cdefs.h" 2 3 4
# 462 "/usr/include/features.h" 2 3 4
# 485 "/usr/include/features.h" 3 4
# 1 "/usr/include/x86_64-linux-gnu/gnu/stubs.h" 1 3 4
# 10 "/usr/include/x86_64-linux-gnu/gnu/stubs.h" 3 4
# 1 "/usr/include/x86_64-linux-gnu/gnu/stubs-64.h" 1 3 4
# 11 "/usr/include/x86_64-linux-gnu/gnu/stubs.h" 2 3 4
# 486 "/usr/include/features.h" 2 3 4
# 34 "/usr/include/x86_64-linux-gnu/bits/libc-header-start.h" 2 3 4
# 26 "/usr/include/stdlib.h" 2 3 4
# 1 "/usr/lib/gcc/x86_64-linux-gnu/9/include/stddef.h" 1 3 4
# 209 "/usr/lib/gcc/x86_64-linux-gnu/9/include/stddef.h" 3 4
# 209 "/usr/lib/gcc/x86_64-linux-gnu/9/include/stddef.h" 3 4
typedef long unsigned int size_t;
# 321 "/usr/lib/gcc/x86_64-linux-gnu/9/include/stddef.h" 3 4
typedef int wchar_t;
# 32 "/usr/include/stdlib.h" 2 3 4
# 1 "/usr/include/x86_64-linux-gnu/bits/waitflags.h" 1 3 4
# 52 "/usr/include/x86_64-linux-gnu/bits/waitflags.h" 3 4
typedef enum
{
P_ALL,
P_PID,
P_PGID
} idtype_t;
# 40 "/usr/include/stdlib.h" 2 3 4
# 1 "/usr/include/x86_64-linux-gnu/bits/waitstatus.h" 1 3 4
# 41 "/usr/include/stdlib.h" 2 3 4
# 55 "/usr/include/stdlib.h" 3 4
# 1 "/usr/include/x86_64-linux-gnu/bits/floatn.h" 1 3 4
# 120 "/usr/include/x86_64-linux-gnu/bits/floatn.h" 3 4
# 1 "/usr/include/x86_64-linux-gnu/bits/floatn-common.h" 1 3 4
# 24 "/usr/include/x86_64-linux-gnu/bits/floatn-common.h" 3 4
# 1 "/usr/include/x86_64-linux-gnu/bits/long-double.h" 1 3 4
# 25 "/usr/include/x86_64-linux-gnu/bits/floatn-common.h" 2 3 4
# 121 "/usr/include/x86_64-linux-gnu/bits/floatn.h" 2 3 4
# 56 "/usr/include/stdlib.h" 2 3 4
typedef struct
{
int quot;
int rem;
} div_t;
typedef struct
{
long int quot;
long int rem;
} ldiv_t;
__extension__ typedef struct
{
long long int quot;
long long int rem;
} lldiv_t;
# 97 "/usr/include/stdlib.h" 3 4
extern size_t __ctype_get_mb_cur_max (void) __attribute__ ((__nothrow__ , __leaf__)) ;
extern double atof (const char *__nptr)
__attribute__ ((__nothrow__ , __leaf__)) __attribute__ ((__pure__)) __attribute__ ((__nonnull__ (1))) ;
extern int atoi (const char *__nptr)
__attribute__ ((__nothrow__ , __leaf__)) __attribute__ ((__pure__)) __attribute__ ((__nonnull__ (1))) ;
extern long int atol (const char *__nptr)
__attribute__ ((__nothrow__ , __leaf__)) __attribute__ ((__pure__)) __attribute__ ((__nonnull__ (1))) ;
__extension__ extern long long int atoll (const char *__nptr)
__attribute__ ((__nothrow__ , __leaf__)) __attribute__ ((__pure__)) __attribute__ ((__nonnull__ (1))) ;
extern double strtod (const char *__restrict __nptr,
char **__restrict __endptr)
__attribute__ ((__nothrow__ , __leaf__)) __attribute__ ((__nonnull__ (1)));
extern float strtof (const char *__restrict __nptr,
char **__restrict __endptr) __attribute__ ((__nothrow__ , __leaf__)) __attribute__ ((__nonnull__ (1)));
extern long double strtold (const char *__restrict __nptr,
char **__restrict __endptr)
__attribute__ ((__nothrow__ , __leaf__)) __attribute__ ((__nonnull__ (1)));
# 176 "/usr/include/stdlib.h" 3 4
extern long int strtol (const char *__restrict __nptr,
char **__restrict __endptr, int __base)
__attribute__ ((__nothrow__ , __leaf__)) __attribute__ ((__nonnull__ (1)));
extern unsigned long int strtoul (const char *__restrict __nptr,
char **__restrict __endptr, int __base)
__attribute__ ((__nothrow__ , __leaf__)) __attribute__ ((__nonnull__ (1)));
__extension__
extern long long int strtoq (const char *__restrict __nptr,
char **__restrict __endptr, int __base)
__attribute__ ((__nothrow__ , __leaf__)) __attribute__ ((__nonnull__ (1)));
__extension__
extern unsigned long long int strtouq (const char *__restrict __nptr,
char **__restrict __endptr, int __base)
__attribute__ ((__nothrow__ , __leaf__)) __attribute__ ((__nonnull__ (1)));
__extension__
extern long long int strtoll (const char *__restrict __nptr,
char **__restrict __endptr, int __base)
__attribute__ ((__nothrow__ , __leaf__)) __attribute__ ((__nonnull__ (1)));
__extension__
extern unsigned long long int strtoull (const char *__restrict __nptr,
char **__restrict __endptr, int __base)
__attribute__ ((__nothrow__ , __leaf__)) __attribute__ ((__nonnull__ (1)));
# 385 "/usr/include/stdlib.h" 3 4
extern char *l64a (long int __n) __attribute__ ((__nothrow__ , __leaf__)) ;
extern long int a64l (const char *__s)
__attribute__ ((__nothrow__ , __leaf__)) __attribute__ ((__pure__)) __attribute__ ((__nonnull__ (1))) ;
# 1 "/usr/include/x86_64-linux-gnu/sys/types.h" 1 3 4
# 27 "/usr/include/x86_64-linux-gnu/sys/types.h" 3 4
# 1 "/usr/include/x86_64-linux-gnu/bits/types.h" 1 3 4
# 27 "/usr/include/x86_64-linux-gnu/bits/types.h" 3 4
# 1 "/usr/include/x86_64-linux-gnu/bits/wordsize.h" 1 3 4
# 28 "/usr/include/x86_64-linux-gnu/bits/types.h" 2 3 4
# 1 "/usr/include/x86_64-linux-gnu/bits/timesize.h" 1 3 4
# 29 "/usr/include/x86_64-linux-gnu/bits/types.h" 2 3 4
typedef unsigned char __u_char;
typedef unsigned short int __u_short;
typedef unsigned int __u_int;
typedef unsigned long int __u_long;
typedef signed char __int8_t;
typedef unsigned char __uint8_t;
typedef signed short int __int16_t;
typedef unsigned short int __uint16_t;
typedef signed int __int32_t;
typedef unsigned int __uint32_t;
typedef signed long int __int64_t;
typedef unsigned long int __uint64_t;
typedef __int8_t __int_least8_t;
typedef __uint8_t __uint_least8_t;
typedef __int16_t __int_least16_t;
typedef __uint16_t __uint_least16_t;
typedef __int32_t __int_least32_t;
typedef __uint32_t __uint_least32_t;
typedef __int64_t __int_least64_t;
typedef __uint64_t __uint_least64_t;
typedef long int __quad_t;
typedef unsigned long int __u_quad_t;
typedef long int __intmax_t;
typedef unsigned long int __uintmax_t;
# 141 "/usr/include/x86_64-linux-gnu/bits/types.h" 3 4
# 1 "/usr/include/x86_64-linux-gnu/bits/typesizes.h" 1 3 4
# 142 "/usr/include/x86_64-linux-gnu/bits/types.h" 2 3 4
# 1 "/usr/include/x86_64-linux-gnu/bits/time64.h" 1 3 4
# 143 "/usr/include/x86_64-linux-gnu/bits/types.h" 2 3 4
typedef unsigned long int __dev_t;
typedef unsigned int __uid_t;
typedef unsigned int __gid_t;
typedef unsigned long int __ino_t;
typedef unsigned long int __ino64_t;
typedef unsigned int __mode_t;
typedef unsigned long int __nlink_t;
typedef long int __off_t;
typedef long int __off64_t;
typedef int __pid_t;
typedef struct { int __val[2]; } __fsid_t;
typedef long int __clock_t;
typedef unsigned long int __rlim_t;
typedef unsigned long int __rlim64_t;
typedef unsigned int __id_t;
typedef long int __time_t;
typedef unsigned int __useconds_t;
typedef long int __suseconds_t;
typedef int __daddr_t;
typedef int __key_t;
typedef int __clockid_t;
typedef void * __timer_t;
typedef long int __blksize_t;
typedef long int __blkcnt_t;
typedef long int __blkcnt64_t;
typedef unsigned long int __fsblkcnt_t;
typedef unsigned long int __fsblkcnt64_t;
typedef unsigned long int __fsfilcnt_t;
typedef unsigned long int __fsfilcnt64_t;
typedef long int __fsword_t;
typedef long int __ssize_t;
typedef long int __syscall_slong_t;
typedef unsigned long int __syscall_ulong_t;
typedef __off64_t __loff_t;
typedef char *__caddr_t;
typedef long int __intptr_t;
typedef unsigned int __socklen_t;
typedef int __sig_atomic_t;
# 30 "/usr/include/x86_64-linux-gnu/sys/types.h" 2 3 4
typedef __u_char u_char;
typedef __u_short u_short;
typedef __u_int u_int;
typedef __u_long u_long;
typedef __quad_t quad_t;
typedef __u_quad_t u_quad_t;
typedef __fsid_t fsid_t;
typedef __loff_t loff_t;
typedef __ino_t ino_t;
# 59 "/usr/include/x86_64-linux-gnu/sys/types.h" 3 4
typedef __dev_t dev_t;
typedef __gid_t gid_t;
typedef __mode_t mode_t;
typedef __nlink_t nlink_t;
typedef __uid_t uid_t;
typedef __off_t off_t;
# 97 "/usr/include/x86_64-linux-gnu/sys/types.h" 3 4
typedef __pid_t pid_t;
typedef __id_t id_t;
typedef __ssize_t ssize_t;
typedef __daddr_t daddr_t;
typedef __caddr_t caddr_t;
typedef __key_t key_t;
# 1 "/usr/include/x86_64-linux-gnu/bits/types/clock_t.h" 1 3 4
typedef __clock_t clock_t;
# 127 "/usr/include/x86_64-linux-gnu/sys/types.h" 2 3 4
# 1 "/usr/include/x86_64-linux-gnu/bits/types/clockid_t.h" 1 3 4
typedef __clockid_t clockid_t;
# 129 "/usr/include/x86_64-linux-gnu/sys/types.h" 2 3 4
# 1 "/usr/include/x86_64-linux-gnu/bits/types/time_t.h" 1 3 4
typedef __time_t time_t;
# 130 "/usr/include/x86_64-linux-gnu/sys/types.h" 2 3 4
# 1 "/usr/include/x86_64-linux-gnu/bits/types/timer_t.h" 1 3 4
typedef __timer_t timer_t;
# 131 "/usr/include/x86_64-linux-gnu/sys/types.h" 2 3 4
# 144 "/usr/include/x86_64-linux-gnu/sys/types.h" 3 4
# 1 "/usr/lib/gcc/x86_64-linux-gnu/9/include/stddef.h" 1 3 4
# 145 "/usr/include/x86_64-linux-gnu/sys/types.h" 2 3 4
typedef unsigned long int ulong;
typedef unsigned short int ushort;
typedef unsigned int uint;
# 1 "/usr/include/x86_64-linux-gnu/bits/stdint-intn.h" 1 3 4
# 24 "/usr/include/x86_64-linux-gnu/bits/stdint-intn.h" 3 4
typedef __int8_t int8_t;
typedef __int16_t int16_t;
typedef __int32_t int32_t;
typedef __int64_t int64_t;
# 156 "/usr/include/x86_64-linux-gnu/sys/types.h" 2 3 4
typedef __uint8_t u_int8_t;
typedef __uint16_t u_int16_t;
typedef __uint32_t u_int32_t;
typedef __uint64_t u_int64_t;
typedef int register_t __attribute__ ((__mode__ (__word__)));
# 176 "/usr/include/x86_64-linux-gnu/sys/types.h" 3 4
# 1 "/usr/include/endian.h" 1 3 4
# 24 "/usr/include/endian.h" 3 4
# 1 "/usr/include/x86_64-linux-gnu/bits/endian.h" 1 3 4
# 35 "/usr/include/x86_64-linux-gnu/bits/endian.h" 3 4
# 1 "/usr/include/x86_64-linux-gnu/bits/endianness.h" 1 3 4
# 36 "/usr/include/x86_64-linux-gnu/bits/endian.h" 2 3 4
# 25 "/usr/include/endian.h" 2 3 4
# 35 "/usr/include/endian.h" 3 4
# 1 "/usr/include/x86_64-linux-gnu/bits/byteswap.h" 1 3 4
# 33 "/usr/include/x86_64-linux-gnu/bits/byteswap.h" 3 4
static __inline __uint16_t
__bswap_16 (__uint16_t __bsx)
{
return __builtin_bswap16 (__bsx);
}
static __inline __uint32_t
__bswap_32 (__uint32_t __bsx)
{
return __builtin_bswap32 (__bsx);
}
# 69 "/usr/include/x86_64-linux-gnu/bits/byteswap.h" 3 4
__extension__ static __inline __uint64_t
__bswap_64 (__uint64_t __bsx)
{
return __builtin_bswap64 (__bsx);
}
# 36 "/usr/include/endian.h" 2 3 4
# 1 "/usr/include/x86_64-linux-gnu/bits/uintn-identity.h" 1 3 4
# 32 "/usr/include/x86_64-linux-gnu/bits/uintn-identity.h" 3 4
static __inline __uint16_t
__uint16_identity (__uint16_t __x)
{
return __x;
}
static __inline __uint32_t
__uint32_identity (__uint32_t __x)
{
return __x;
}
static __inline __uint64_t
__uint64_identity (__uint64_t __x)
{
return __x;
}
# 37 "/usr/include/endian.h" 2 3 4
# 177 "/usr/include/x86_64-linux-gnu/sys/types.h" 2 3 4
# 1 "/usr/include/x86_64-linux-gnu/sys/select.h" 1 3 4
# 30 "/usr/include/x86_64-linux-gnu/sys/select.h" 3 4
# 1 "/usr/include/x86_64-linux-gnu/bits/select.h" 1 3 4
# 22 "/usr/include/x86_64-linux-gnu/bits/select.h" 3 4
# 1 "/usr/include/x86_64-linux-gnu/bits/wordsize.h" 1 3 4
# 23 "/usr/include/x86_64-linux-gnu/bits/select.h" 2 3 4
# 31 "/usr/include/x86_64-linux-gnu/sys/select.h" 2 3 4
# 1 "/usr/include/x86_64-linux-gnu/bits/types/sigset_t.h" 1 3 4
# 1 "/usr/include/x86_64-linux-gnu/bits/types/__sigset_t.h" 1 3 4
typedef struct
{
unsigned long int __val[(1024 / (8 * sizeof (unsigned long int)))];
} __sigset_t;
# 5 "/usr/include/x86_64-linux-gnu/bits/types/sigset_t.h" 2 3 4
typedef __sigset_t sigset_t;
# 34 "/usr/include/x86_64-linux-gnu/sys/select.h" 2 3 4
# 1 "/usr/include/x86_64-linux-gnu/bits/types/struct_timeval.h" 1 3 4
struct timeval
{
__time_t tv_sec;
__suseconds_t tv_usec;
};
# 38 "/usr/include/x86_64-linux-gnu/sys/select.h" 2 3 4
# 1 "/usr/include/x86_64-linux-gnu/bits/types/struct_timespec.h" 1 3 4
# 10 "/usr/include/x86_64-linux-gnu/bits/types/struct_timespec.h" 3 4
struct timespec
{
__time_t tv_sec;
__syscall_slong_t tv_nsec;
# 26 "/usr/include/x86_64-linux-gnu/bits/types/struct_timespec.h" 3 4
};
# 40 "/usr/include/x86_64-linux-gnu/sys/select.h" 2 3 4
typedef __suseconds_t suseconds_t;
typedef long int __fd_mask;
# 59 "/usr/include/x86_64-linux-gnu/sys/select.h" 3 4
typedef struct
{
__fd_mask __fds_bits[1024 / (8 * (int) sizeof (__fd_mask))];
} fd_set;
typedef __fd_mask fd_mask;
# 91 "/usr/include/x86_64-linux-gnu/sys/select.h" 3 4
# 101 "/usr/include/x86_64-linux-gnu/sys/select.h" 3 4
extern int select (int __nfds, fd_set *__restrict __readfds,
fd_set *__restrict __writefds,
fd_set *__restrict __exceptfds,
struct timeval *__restrict __timeout);
# 113 "/usr/include/x86_64-linux-gnu/sys/select.h" 3 4
extern int pselect (int __nfds, fd_set *__restrict __readfds,
fd_set *__restrict __writefds,
fd_set *__restrict __exceptfds,
const struct timespec *__restrict __timeout,
const __sigset_t *__restrict __sigmask);
# 126 "/usr/include/x86_64-linux-gnu/sys/select.h" 3 4
# 180 "/usr/include/x86_64-linux-gnu/sys/types.h" 2 3 4
typedef __blksize_t blksize_t;
typedef __blkcnt_t blkcnt_t;
typedef __fsblkcnt_t fsblkcnt_t;
typedef __fsfilcnt_t fsfilcnt_t;
# 227 "/usr/include/x86_64-linux-gnu/sys/types.h" 3 4
# 1 "/usr/include/x86_64-linux-gnu/bits/pthreadtypes.h" 1 3 4
# 23 "/usr/include/x86_64-linux-gnu/bits/pthreadtypes.h" 3 4
# 1 "/usr/include/x86_64-linux-gnu/bits/thread-shared-types.h" 1 3 4
# 44 "/usr/include/x86_64-linux-gnu/bits/thread-shared-types.h" 3 4
# 1 "/usr/include/x86_64-linux-gnu/bits/pthreadtypes-arch.h" 1 3 4
# 21 "/usr/include/x86_64-linux-gnu/bits/pthreadtypes-arch.h" 3 4
# 1 "/usr/include/x86_64-linux-gnu/bits/wordsize.h" 1 3 4
# 22 "/usr/include/x86_64-linux-gnu/bits/pthreadtypes-arch.h" 2 3 4
# 45 "/usr/include/x86_64-linux-gnu/bits/thread-shared-types.h" 2 3 4
typedef struct __pthread_internal_list
{
struct __pthread_internal_list *__prev;
struct __pthread_internal_list *__next;
} __pthread_list_t;
typedef struct __pthread_internal_slist
{
struct __pthread_internal_slist *__next;
} __pthread_slist_t;
# 74 "/usr/include/x86_64-linux-gnu/bits/thread-shared-types.h" 3 4
# 1 "/usr/include/x86_64-linux-gnu/bits/struct_mutex.h" 1 3 4
# 22 "/usr/include/x86_64-linux-gnu/bits/struct_mutex.h" 3 4
struct __pthread_mutex_s
{
int __lock;
unsigned int __count;
int __owner;
unsigned int __nusers;
int __kind;
short __spins;
short __elision;
__pthread_list_t __list;
# 53 "/usr/include/x86_64-linux-gnu/bits/struct_mutex.h" 3 4
};
# 75 "/usr/include/x86_64-linux-gnu/bits/thread-shared-types.h" 2 3 4
# 87 "/usr/include/x86_64-linux-gnu/bits/thread-shared-types.h" 3 4
# 1 "/usr/include/x86_64-linux-gnu/bits/struct_rwlock.h" 1 3 4
# 23 "/usr/include/x86_64-linux-gnu/bits/struct_rwlock.h" 3 4
struct __pthread_rwlock_arch_t
{
unsigned int __readers;
unsigned int __writers;
unsigned int __wrphase_futex;
unsigned int __writers_futex;
unsigned int __pad3;
unsigned int __pad4;
int __cur_writer;
int __shared;
signed char __rwelision;
unsigned char __pad1[7];
unsigned long int __pad2;
unsigned int __flags;
# 55 "/usr/include/x86_64-linux-gnu/bits/struct_rwlock.h" 3 4
};
# 88 "/usr/include/x86_64-linux-gnu/bits/thread-shared-types.h" 2 3 4
struct __pthread_cond_s
{
__extension__ union
{
__extension__ unsigned long long int __wseq;
struct
{
unsigned int __low;
unsigned int __high;
} __wseq32;
};
__extension__ union
{
__extension__ unsigned long long int __g1_start;
struct
{
unsigned int __low;
unsigned int __high;
} __g1_start32;
};
unsigned int __g_refs[2] ;
unsigned int __g_size[2];
unsigned int __g1_orig_size;
unsigned int __wrefs;
unsigned int __g_signals[2];
};
# 24 "/usr/include/x86_64-linux-gnu/bits/pthreadtypes.h" 2 3 4
typedef unsigned long int pthread_t;
typedef union
{
char __size[4];
int __align;
} pthread_mutexattr_t;
typedef union
{
char __size[4];
int __align;
} pthread_condattr_t;
typedef unsigned int pthread_key_t;
typedef int pthread_once_t;
union pthread_attr_t
{
char __size[56];
long int __align;
};
typedef union pthread_attr_t pthread_attr_t;
typedef union
{
struct __pthread_mutex_s __data;
char __size[40];
long int __align;
} pthread_mutex_t;
typedef union
{
struct __pthread_cond_s __data;
char __size[48];
__extension__ long long int __align;
} pthread_cond_t;
typedef union
{
struct __pthread_rwlock_arch_t __data;
char __size[56];
long int __align;
} pthread_rwlock_t;
typedef union
{
char __size[8];
long int __align;
} pthread_rwlockattr_t;
typedef volatile int pthread_spinlock_t;
typedef union
{
char __size[32];
long int __align;
} pthread_barrier_t;
typedef union
{
char __size[4];
int __align;
} pthread_barrierattr_t;
# 228 "/usr/include/x86_64-linux-gnu/sys/types.h" 2 3 4
# 395 "/usr/include/stdlib.h" 2 3 4
extern long int random (void) __attribute__ ((__nothrow__ , __leaf__));
extern void srandom (unsigned int __seed) __attribute__ ((__nothrow__ , __leaf__));
extern char *initstate (unsigned int __seed, char *__statebuf,
size_t __statelen) __attribute__ ((__nothrow__ , __leaf__)) __attribute__ ((__nonnull__ (2)));
extern char *setstate (char *__statebuf) __attribute__ ((__nothrow__ , __leaf__)) __attribute__ ((__nonnull__ (1)));
struct random_data
{
int32_t *fptr;
int32_t *rptr;
int32_t *state;
int rand_type;
int rand_deg;
int rand_sep;
int32_t *end_ptr;
};
extern int random_r (struct random_data *__restrict __buf,
int32_t *__restrict __result) __attribute__ ((__nothrow__ , __leaf__)) __attribute__ ((__nonnull__ (1, 2)));
extern int srandom_r (unsigned int __seed, struct random_data *__buf)
__attribute__ ((__nothrow__ , __leaf__)) __attribute__ ((__nonnull__ (2)));
extern int initstate_r (unsigned int __seed, char *__restrict __statebuf,
size_t __statelen,
struct random_data *__restrict __buf)
__attribute__ ((__nothrow__ , __leaf__)) __attribute__ ((__nonnull__ (2, 4)));
extern int setstate_r (char *__restrict __statebuf,
struct random_data *__restrict __buf)
__attribute__ ((__nothrow__ , __leaf__)) __attribute__ ((__nonnull__ (1, 2)));
extern int rand (void) __attribute__ ((__nothrow__ , __leaf__));
extern void srand (unsigned int __seed) __attribute__ ((__nothrow__ , __leaf__));
extern int rand_r (unsigned int *__seed) __attribute__ ((__nothrow__ , __leaf__));
extern double drand48 (void) __attribute__ ((__nothrow__ , __leaf__));
extern double erand48 (unsigned short int __xsubi[3]) __attribute__ ((__nothrow__ , __leaf__)) __attribute__ ((__nonnull__ (1)));
extern long int lrand48 (void) __attribute__ ((__nothrow__ , __leaf__));
extern long int nrand48 (unsigned short int __xsubi[3])
__attribute__ ((__nothrow__ , __leaf__)) __attribute__ ((__nonnull__ (1)));
extern long int mrand48 (void) __attribute__ ((__nothrow__ , __leaf__));
extern long int jrand48 (unsigned short int __xsubi[3])
__attribute__ ((__nothrow__ , __leaf__)) __attribute__ ((__nonnull__ (1)));
extern void srand48 (long int __seedval) __attribute__ ((__nothrow__ , __leaf__));
extern unsigned short int *seed48 (unsigned short int __seed16v[3])
__attribute__ ((__nothrow__ , __leaf__)) __attribute__ ((__nonnull__ (1)));
extern void lcong48 (unsigned short int __param[7]) __attribute__ ((__nothrow__ , __leaf__)) __attribute__ ((__nonnull__ (1)));
struct drand48_data
{
unsigned short int __x[3];
unsigned short int __old_x[3];
unsigned short int __c;
unsigned short int __init;
__extension__ unsigned long long int __a;
};
extern int drand48_r (struct drand48_data *__restrict __buffer,
double *__restrict __result) __attribute__ ((__nothrow__ , __leaf__)) __attribute__ ((__nonnull__ (1, 2)));
extern int erand48_r (unsigned short int __xsubi[3],
struct drand48_data *__restrict __buffer,
double *__restrict __result) __attribute__ ((__nothrow__ , __leaf__)) __attribute__ ((__nonnull__ (1, 2)));
extern int lrand48_r (struct drand48_data *__restrict __buffer,
long int *__restrict __result)
__attribute__ ((__nothrow__ , __leaf__)) __attribute__ ((__nonnull__ (1, 2)));
extern int nrand48_r (unsigned short int __xsubi[3],
struct drand48_data *__restrict __buffer,
long int *__restrict __result)
__attribute__ ((__nothrow__ , __leaf__)) __attribute__ ((__nonnull__ (1, 2)));
extern int mrand48_r (struct drand48_data *__restrict __buffer,
long int *__restrict __result)
__attribute__ ((__nothrow__ , __leaf__)) __attribute__ ((__nonnull__ (1, 2)));
extern int jrand48_r (unsigned short int __xsubi[3],
struct drand48_data *__restrict __buffer,
long int *__restrict __result)
__attribute__ ((__nothrow__ , __leaf__)) __attribute__ ((__nonnull__ (1, 2)));
extern int srand48_r (long int __seedval, struct drand48_data *__buffer)
__attribute__ ((__nothrow__ , __leaf__)) __attribute__ ((__nonnull__ (2)));
extern int seed48_r (unsigned short int __seed16v[3],
struct drand48_data *__buffer) __attribute__ ((__nothrow__ , __leaf__)) __attribute__ ((__nonnull__ (1, 2)));
extern int lcong48_r (unsigned short int __param[7],
struct drand48_data *__buffer)
__attribute__ ((__nothrow__ , __leaf__)) __attribute__ ((__nonnull__ (1, 2)));
extern void *malloc (size_t __size) __attribute__ ((__nothrow__ , __leaf__)) __attribute__ ((__malloc__))
__attribute__ ((__alloc_size__ (1))) ;
extern void *calloc (size_t __nmemb, size_t __size)
__attribute__ ((__nothrow__ , __leaf__)) __attribute__ ((__malloc__)) __attribute__ ((__alloc_size__ (1, 2))) ;
extern void *realloc (void *__ptr, size_t __size)
__attribute__ ((__nothrow__ , __leaf__)) __attribute__ ((__warn_unused_result__)) __attribute__ ((__alloc_size__ (2)));
extern void *reallocarray (void *__ptr, size_t __nmemb, size_t __size)
__attribute__ ((__nothrow__ , __leaf__)) __attribute__ ((__warn_unused_result__))
__attribute__ ((__alloc_size__ (2, 3)));
extern void free (void *__ptr) __attribute__ ((__nothrow__ , __leaf__));
# 1 "/usr/include/alloca.h" 1 3 4
# 24 "/usr/include/alloca.h" 3 4
# 1 "/usr/lib/gcc/x86_64-linux-gnu/9/include/stddef.h" 1 3 4
# 25 "/usr/include/alloca.h" 2 3 4
extern void *alloca (size_t __size) __attribute__ ((__nothrow__ , __leaf__));
# 569 "/usr/include/stdlib.h" 2 3 4
extern void *valloc (size_t __size) __attribute__ ((__nothrow__ , __leaf__)) __attribute__ ((__malloc__))
__attribute__ ((__alloc_size__ (1))) ;
extern int posix_memalign (void **__memptr, size_t __alignment, size_t __size)
__attribute__ ((__nothrow__ , __leaf__)) __attribute__ ((__nonnull__ (1))) ;
extern void *aligned_alloc (size_t __alignment, size_t __size)
__attribute__ ((__nothrow__ , __leaf__)) __attribute__ ((__malloc__)) __attribute__ ((__alloc_size__ (2))) ;
extern void abort (void) __attribute__ ((__nothrow__ , __leaf__)) __attribute__ ((__noreturn__));
extern int atexit (void (*__func) (void)) __attribute__ ((__nothrow__ , __leaf__)) __attribute__ ((__nonnull__ (1)));
extern int at_quick_exit (void (*__func) (void)) __attribute__ ((__nothrow__ , __leaf__)) __attribute__ ((__nonnull__ (1)));
extern int on_exit (void (*__func) (int __status, void *__arg), void *__arg)
__attribute__ ((__nothrow__ , __leaf__)) __attribute__ ((__nonnull__ (1)));
extern void exit (int __status) __attribute__ ((__nothrow__ , __leaf__)) __attribute__ ((__noreturn__));
extern void quick_exit (int __status) __attribute__ ((__nothrow__ , __leaf__)) __attribute__ ((__noreturn__));
extern void _Exit (int __status) __attribute__ ((__nothrow__ , __leaf__)) __attribute__ ((__noreturn__));
extern char *getenv (const char *__name) __attribute__ ((__nothrow__ , __leaf__)) __attribute__ ((__nonnull__ (1))) ;
# 647 "/usr/include/stdlib.h" 3 4
extern int putenv (char *__string) __attribute__ ((__nothrow__ , __leaf__)) __attribute__ ((__nonnull__ (1)));
extern int setenv (const char *__name, const char *__value, int __replace)
__attribute__ ((__nothrow__ , __leaf__)) __attribute__ ((__nonnull__ (2)));
extern int unsetenv (const char *__name) __attribute__ ((__nothrow__ , __leaf__)) __attribute__ ((__nonnull__ (1)));
extern int clearenv (void) __attribute__ ((__nothrow__ , __leaf__));
# 675 "/usr/include/stdlib.h" 3 4
extern char *mktemp (char *__template) __attribute__ ((__nothrow__ , __leaf__)) __attribute__ ((__nonnull__ (1)));
# 688 "/usr/include/stdlib.h" 3 4
extern int mkstemp (char *__template) __attribute__ ((__nonnull__ (1))) ;
# 710 "/usr/include/stdlib.h" 3 4
extern int mkstemps (char *__template, int __suffixlen) __attribute__ ((__nonnull__ (1))) ;
# 731 "/usr/include/stdlib.h" 3 4
extern char *mkdtemp (char *__template) __attribute__ ((__nothrow__ , __leaf__)) __attribute__ ((__nonnull__ (1))) ;
# 784 "/usr/include/stdlib.h" 3 4
extern int system (const char *__command) ;
# 800 "/usr/include/stdlib.h" 3 4
extern char *realpath (const char *__restrict __name,
char *__restrict __resolved) __attribute__ ((__nothrow__ , __leaf__)) ;
typedef int (*__compar_fn_t) (const void *, const void *);
# 820 "/usr/include/stdlib.h" 3 4
extern void *bsearch (const void *__key, const void *__base,
size_t __nmemb, size_t __size, __compar_fn_t __compar)
__attribute__ ((__nonnull__ (1, 2, 5))) ;
extern void qsort (void *__base, size_t __nmemb, size_t __size,
__compar_fn_t __compar) __attribute__ ((__nonnull__ (1, 4)));
# 840 "/usr/include/stdlib.h" 3 4
extern int abs (int __x) __attribute__ ((__nothrow__ , __leaf__)) __attribute__ ((__const__)) ;
extern long int labs (long int __x) __attribute__ ((__nothrow__ , __leaf__)) __attribute__ ((__const__)) ;
__extension__ extern long long int llabs (long long int __x)
__attribute__ ((__nothrow__ , __leaf__)) __attribute__ ((__const__)) ;
extern div_t div (int __numer, int __denom)
__attribute__ ((__nothrow__ , __leaf__)) __attribute__ ((__const__)) ;
extern ldiv_t ldiv (long int __numer, long int __denom)
__attribute__ ((__nothrow__ , __leaf__)) __attribute__ ((__const__)) ;
__extension__ extern lldiv_t lldiv (long long int __numer,
long long int __denom)
__attribute__ ((__nothrow__ , __leaf__)) __attribute__ ((__const__)) ;
# 872 "/usr/include/stdlib.h" 3 4
extern char *ecvt (double __value, int __ndigit, int *__restrict __decpt,
int *__restrict __sign) __attribute__ ((__nothrow__ , __leaf__)) __attribute__ ((__nonnull__ (3, 4))) ;
extern char *fcvt (double __value, int __ndigit, int *__restrict __decpt,
int *__restrict __sign) __attribute__ ((__nothrow__ , __leaf__)) __attribute__ ((__nonnull__ (3, 4))) ;
extern char *gcvt (double __value, int __ndigit, char *__buf)
__attribute__ ((__nothrow__ , __leaf__)) __attribute__ ((__nonnull__ (3))) ;
extern char *qecvt (long double __value, int __ndigit,
int *__restrict __decpt, int *__restrict __sign)
__attribute__ ((__nothrow__ , __leaf__)) __attribute__ ((__nonnull__ (3, 4))) ;
extern char *qfcvt (long double __value, int __ndigit,
int *__restrict __decpt, int *__restrict __sign)
__attribute__ ((__nothrow__ , __leaf__)) __attribute__ ((__nonnull__ (3, 4))) ;
extern char *qgcvt (long double __value, int __ndigit, char *__buf)
__attribute__ ((__nothrow__ , __leaf__)) __attribute__ ((__nonnull__ (3))) ;
extern int ecvt_r (double __value, int __ndigit, int *__restrict __decpt,
int *__restrict __sign, char *__restrict __buf,
size_t __len) __attribute__ ((__nothrow__ , __leaf__)) __attribute__ ((__nonnull__ (3, 4, 5)));
extern int fcvt_r (double __value, int __ndigit, int *__restrict __decpt,
int *__restrict __sign, char *__restrict __buf,
size_t __len) __attribute__ ((__nothrow__ , __leaf__)) __attribute__ ((__nonnull__ (3, 4, 5)));
extern int qecvt_r (long double __value, int __ndigit,
int *__restrict __decpt, int *__restrict __sign,
char *__restrict __buf, size_t __len)
__attribute__ ((__nothrow__ , __leaf__)) __attribute__ ((__nonnull__ (3, 4, 5)));
extern int qfcvt_r (long double __value, int __ndigit,
int *__restrict __decpt, int *__restrict __sign,
char *__restrict __buf, size_t __len)
__attribute__ ((__nothrow__ , __leaf__)) __attribute__ ((__nonnull__ (3, 4, 5)));
extern int mblen (const char *__s, size_t __n) __attribute__ ((__nothrow__ , __leaf__));
extern int mbtowc (wchar_t *__restrict __pwc,
const char *__restrict __s, size_t __n) __attribute__ ((__nothrow__ , __leaf__));
extern int wctomb (char *__s, wchar_t __wchar) __attribute__ ((__nothrow__ , __leaf__));
extern size_t mbstowcs (wchar_t *__restrict __pwcs,
const char *__restrict __s, size_t __n) __attribute__ ((__nothrow__ , __leaf__));
extern size_t wcstombs (char *__restrict __s,
const wchar_t *__restrict __pwcs, size_t __n)
__attribute__ ((__nothrow__ , __leaf__));
extern int rpmatch (const char *__response) __attribute__ ((__nothrow__ , __leaf__)) __attribute__ ((__nonnull__ (1))) ;
# 957 "/usr/include/stdlib.h" 3 4
extern int getsubopt (char **__restrict __optionp,
char *const *__restrict __tokens,
char **__restrict __valuep)
__attribute__ ((__nothrow__ , __leaf__)) __attribute__ ((__nonnull__ (1, 2, 3))) ;
# 1003 "/usr/include/stdlib.h" 3 4
extern int getloadavg (double __loadavg[], int __nelem)
__attribute__ ((__nothrow__ , __leaf__)) __attribute__ ((__nonnull__ (1)));
# 1013 "/usr/include/stdlib.h" 3 4
# 1 "/usr/include/x86_64-linux-gnu/bits/stdlib-float.h" 1 3 4
# 1014 "/usr/include/stdlib.h" 2 3 4
# 1023 "/usr/include/stdlib.h" 3 4
# 18 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/core/compatibility.h" 2
# 1 "/usr/include/assert.h" 1 3 4
# 66 "/usr/include/assert.h" 3 4
extern void __assert_fail (const char *__assertion, const char *__file,
unsigned int __line, const char *__function)
__attribute__ ((__nothrow__ , __leaf__)) __attribute__ ((__noreturn__));
extern void __assert_perror_fail (int __errnum, const char *__file,
unsigned int __line, const char *__function)
__attribute__ ((__nothrow__ , __leaf__)) __attribute__ ((__noreturn__));
extern void __assert (const char *__assertion, const char *__file, int __line)
__attribute__ ((__nothrow__ , __leaf__)) __attribute__ ((__noreturn__));
# 19 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/core/compatibility.h" 2
# 1 "/usr/include/stdio.h" 1 3 4
# 27 "/usr/include/stdio.h" 3 4
# 1 "/usr/include/x86_64-linux-gnu/bits/libc-header-start.h" 1 3 4
# 28 "/usr/include/stdio.h" 2 3 4
# 1 "/usr/lib/gcc/x86_64-linux-gnu/9/include/stddef.h" 1 3 4
# 34 "/usr/include/stdio.h" 2 3 4
# 1 "/usr/lib/gcc/x86_64-linux-gnu/9/include/stdarg.h" 1 3 4
# 40 "/usr/lib/gcc/x86_64-linux-gnu/9/include/stdarg.h" 3 4
typedef __builtin_va_list __gnuc_va_list;
# 37 "/usr/include/stdio.h" 2 3 4
# 1 "/usr/include/x86_64-linux-gnu/bits/types/__fpos_t.h" 1 3 4
# 1 "/usr/include/x86_64-linux-gnu/bits/types/__mbstate_t.h" 1 3 4
# 13 "/usr/include/x86_64-linux-gnu/bits/types/__mbstate_t.h" 3 4
typedef struct
{
int __count;
union
{
unsigned int __wch;
char __wchb[4];
} __value;
} __mbstate_t;
# 6 "/usr/include/x86_64-linux-gnu/bits/types/__fpos_t.h" 2 3 4
typedef struct _G_fpos_t
{
__off_t __pos;
__mbstate_t __state;
} __fpos_t;
# 40 "/usr/include/stdio.h" 2 3 4
# 1 "/usr/include/x86_64-linux-gnu/bits/types/__fpos64_t.h" 1 3 4
# 10 "/usr/include/x86_64-linux-gnu/bits/types/__fpos64_t.h" 3 4
typedef struct _G_fpos64_t
{
__off64_t __pos;
__mbstate_t __state;
} __fpos64_t;
# 41 "/usr/include/stdio.h" 2 3 4
# 1 "/usr/include/x86_64-linux-gnu/bits/types/__FILE.h" 1 3 4
struct _IO_FILE;
typedef struct _IO_FILE __FILE;
# 42 "/usr/include/stdio.h" 2 3 4
# 1 "/usr/include/x86_64-linux-gnu/bits/types/FILE.h" 1 3 4
struct _IO_FILE;
typedef struct _IO_FILE FILE;
# 43 "/usr/include/stdio.h" 2 3 4
# 1 "/usr/include/x86_64-linux-gnu/bits/types/struct_FILE.h" 1 3 4
# 35 "/usr/include/x86_64-linux-gnu/bits/types/struct_FILE.h" 3 4
struct _IO_FILE;
struct _IO_marker;
struct _IO_codecvt;
struct _IO_wide_data;
typedef void _IO_lock_t;
struct _IO_FILE
{
int _flags;
char *_IO_read_ptr;
char *_IO_read_end;
char *_IO_read_base;
char *_IO_write_base;
char *_IO_write_ptr;
char *_IO_write_end;
char *_IO_buf_base;
char *_IO_buf_end;
char *_IO_save_base;
char *_IO_backup_base;
char *_IO_save_end;
struct _IO_marker *_markers;
struct _IO_FILE *_chain;
int _fileno;
int _flags2;
__off_t _old_offset;
unsigned short _cur_column;
signed char _vtable_offset;
char _shortbuf[1];
_IO_lock_t *_lock;
__off64_t _offset;
struct _IO_codecvt *_codecvt;
struct _IO_wide_data *_wide_data;
struct _IO_FILE *_freeres_list;
void *_freeres_buf;
size_t __pad5;
int _mode;
char _unused2[15 * sizeof (int) - 4 * sizeof (void *) - sizeof (size_t)];
};
# 44 "/usr/include/stdio.h" 2 3 4
# 52 "/usr/include/stdio.h" 3 4
typedef __gnuc_va_list va_list;
# 84 "/usr/include/stdio.h" 3 4
typedef __fpos_t fpos_t;
# 133 "/usr/include/stdio.h" 3 4
# 1 "/usr/include/x86_64-linux-gnu/bits/stdio_lim.h" 1 3 4
# 134 "/usr/include/stdio.h" 2 3 4
extern FILE *stdin;
extern FILE *stdout;
extern FILE *stderr;
extern int remove (const char *__filename) __attribute__ ((__nothrow__ , __leaf__));
extern int rename (const char *__old, const char *__new) __attribute__ ((__nothrow__ , __leaf__));
extern int renameat (int __oldfd, const char *__old, int __newfd,
const char *__new) __attribute__ ((__nothrow__ , __leaf__));
# 173 "/usr/include/stdio.h" 3 4
extern FILE *tmpfile (void) ;
# 187 "/usr/include/stdio.h" 3 4
extern char *tmpnam (char *__s) __attribute__ ((__nothrow__ , __leaf__)) ;
extern char *tmpnam_r (char *__s) __attribute__ ((__nothrow__ , __leaf__)) ;
# 204 "/usr/include/stdio.h" 3 4
extern char *tempnam (const char *__dir, const char *__pfx)
__attribute__ ((__nothrow__ , __leaf__)) __attribute__ ((__malloc__)) ;
extern int fclose (FILE *__stream);
extern int fflush (FILE *__stream);
# 227 "/usr/include/stdio.h" 3 4
extern int fflush_unlocked (FILE *__stream);
# 246 "/usr/include/stdio.h" 3 4
extern FILE *fopen (const char *__restrict __filename,
const char *__restrict __modes) ;
extern FILE *freopen (const char *__restrict __filename,
const char *__restrict __modes,
FILE *__restrict __stream) ;
# 279 "/usr/include/stdio.h" 3 4
extern FILE *fdopen (int __fd, const char *__modes) __attribute__ ((__nothrow__ , __leaf__)) ;
# 292 "/usr/include/stdio.h" 3 4
extern FILE *fmemopen (void *__s, size_t __len, const char *__modes)
__attribute__ ((__nothrow__ , __leaf__)) ;
extern FILE *open_memstream (char **__bufloc, size_t *__sizeloc) __attribute__ ((__nothrow__ , __leaf__)) ;
extern void setbuf (FILE *__restrict __stream, char *__restrict __buf) __attribute__ ((__nothrow__ , __leaf__));
extern int setvbuf (FILE *__restrict __stream, char *__restrict __buf,
int __modes, size_t __n) __attribute__ ((__nothrow__ , __leaf__));
extern void setbuffer (FILE *__restrict __stream, char *__restrict __buf,
size_t __size) __attribute__ ((__nothrow__ , __leaf__));
extern void setlinebuf (FILE *__stream) __attribute__ ((__nothrow__ , __leaf__));
extern int fprintf (FILE *__restrict __stream,
const char *__restrict __format, ...);
extern int printf (const char *__restrict __format, ...);
extern int sprintf (char *__restrict __s,
const char *__restrict __format, ...) __attribute__ ((__nothrow__));
extern int vfprintf (FILE *__restrict __s, const char *__restrict __format,
__gnuc_va_list __arg);
extern int vprintf (const char *__restrict __format, __gnuc_va_list __arg);
extern int vsprintf (char *__restrict __s, const char *__restrict __format,
__gnuc_va_list __arg) __attribute__ ((__nothrow__));
extern int snprintf (char *__restrict __s, size_t __maxlen,
const char *__restrict __format, ...)
__attribute__ ((__nothrow__)) __attribute__ ((__format__ (__printf__, 3, 4)));
extern int vsnprintf (char *__restrict __s, size_t __maxlen,
const char *__restrict __format, __gnuc_va_list __arg)
__attribute__ ((__nothrow__)) __attribute__ ((__format__ (__printf__, 3, 0)));
# 379 "/usr/include/stdio.h" 3 4
extern int vdprintf (int __fd, const char *__restrict __fmt,
__gnuc_va_list __arg)
__attribute__ ((__format__ (__printf__, 2, 0)));
extern int dprintf (int __fd, const char *__restrict __fmt, ...)
__attribute__ ((__format__ (__printf__, 2, 3)));
extern int fscanf (FILE *__restrict __stream,
const char *__restrict __format, ...) ;
extern int scanf (const char *__restrict __format, ...) ;
extern int sscanf (const char *__restrict __s,
const char *__restrict __format, ...) __attribute__ ((__nothrow__ , __leaf__));
extern int fscanf (FILE *__restrict __stream, const char *__restrict __format, ...) __asm__ ("" "__isoc99_fscanf")
;
extern int scanf (const char *__restrict __format, ...) __asm__ ("" "__isoc99_scanf")
;
extern int sscanf (const char *__restrict __s, const char *__restrict __format, ...) __asm__ ("" "__isoc99_sscanf") __attribute__ ((__nothrow__ , __leaf__))
;
# 432 "/usr/include/stdio.h" 3 4
extern int vfscanf (FILE *__restrict __s, const char *__restrict __format,
__gnuc_va_list __arg)
__attribute__ ((__format__ (__scanf__, 2, 0))) ;
extern int vscanf (const char *__restrict __format, __gnuc_va_list __arg)
__attribute__ ((__format__ (__scanf__, 1, 0))) ;
extern int vsscanf (const char *__restrict __s,
const char *__restrict __format, __gnuc_va_list __arg)
__attribute__ ((__nothrow__ , __leaf__)) __attribute__ ((__format__ (__scanf__, 2, 0)));
extern int vfscanf (FILE *__restrict __s, const char *__restrict __format, __gnuc_va_list __arg) __asm__ ("" "__isoc99_vfscanf")
__attribute__ ((__format__ (__scanf__, 2, 0))) ;
extern int vscanf (const char *__restrict __format, __gnuc_va_list __arg) __asm__ ("" "__isoc99_vscanf")
__attribute__ ((__format__ (__scanf__, 1, 0))) ;
extern int vsscanf (const char *__restrict __s, const char *__restrict __format, __gnuc_va_list __arg) __asm__ ("" "__isoc99_vsscanf") __attribute__ ((__nothrow__ , __leaf__))
__attribute__ ((__format__ (__scanf__, 2, 0)));
# 485 "/usr/include/stdio.h" 3 4
extern int fgetc (FILE *__stream);
extern int getc (FILE *__stream);
extern int getchar (void);
extern int getc_unlocked (FILE *__stream);
extern int getchar_unlocked (void);
# 510 "/usr/include/stdio.h" 3 4
extern int fgetc_unlocked (FILE *__stream);
# 521 "/usr/include/stdio.h" 3 4
extern int fputc (int __c, FILE *__stream);
extern int putc (int __c, FILE *__stream);
extern int putchar (int __c);
# 537 "/usr/include/stdio.h" 3 4
extern int fputc_unlocked (int __c, FILE *__stream);
extern int putc_unlocked (int __c, FILE *__stream);
extern int putchar_unlocked (int __c);
extern int getw (FILE *__stream);
extern int putw (int __w, FILE *__stream);
extern char *fgets (char *__restrict __s, int __n, FILE *__restrict __stream)
;
# 603 "/usr/include/stdio.h" 3 4
extern __ssize_t __getdelim (char **__restrict __lineptr,
size_t *__restrict __n, int __delimiter,
FILE *__restrict __stream) ;
extern __ssize_t getdelim (char **__restrict __lineptr,
size_t *__restrict __n, int __delimiter,
FILE *__restrict __stream) ;
extern __ssize_t getline (char **__restrict __lineptr,
size_t *__restrict __n,
FILE *__restrict __stream) ;
extern int fputs (const char *__restrict __s, FILE *__restrict __stream);
extern int puts (const char *__s);
extern int ungetc (int __c, FILE *__stream);
extern size_t fread (void *__restrict __ptr, size_t __size,
size_t __n, FILE *__restrict __stream) ;
extern size_t fwrite (const void *__restrict __ptr, size_t __size,
size_t __n, FILE *__restrict __s);
# 673 "/usr/include/stdio.h" 3 4
extern size_t fread_unlocked (void *__restrict __ptr, size_t __size,
size_t __n, FILE *__restrict __stream) ;
extern size_t fwrite_unlocked (const void *__restrict __ptr, size_t __size,
size_t __n, FILE *__restrict __stream);
extern int fseek (FILE *__stream, long int __off, int __whence);
extern long int ftell (FILE *__stream) ;
extern void rewind (FILE *__stream);
# 707 "/usr/include/stdio.h" 3 4
extern int fseeko (FILE *__stream, __off_t __off, int __whence);
extern __off_t ftello (FILE *__stream) ;
# 731 "/usr/include/stdio.h" 3 4
extern int fgetpos (FILE *__restrict __stream, fpos_t *__restrict __pos);
extern int fsetpos (FILE *__stream, const fpos_t *__pos);
# 757 "/usr/include/stdio.h" 3 4
extern void clearerr (FILE *__stream) __attribute__ ((__nothrow__ , __leaf__));
extern int feof (FILE *__stream) __attribute__ ((__nothrow__ , __leaf__)) ;
extern int ferror (FILE *__stream) __attribute__ ((__nothrow__ , __leaf__)) ;
extern void clearerr_unlocked (FILE *__stream) __attribute__ ((__nothrow__ , __leaf__));
extern int feof_unlocked (FILE *__stream) __attribute__ ((__nothrow__ , __leaf__)) ;
extern int ferror_unlocked (FILE *__stream) __attribute__ ((__nothrow__ , __leaf__)) ;
extern void perror (const char *__s);
# 1 "/usr/include/x86_64-linux-gnu/bits/sys_errlist.h" 1 3 4
# 26 "/usr/include/x86_64-linux-gnu/bits/sys_errlist.h" 3 4
extern int sys_nerr;
extern const char *const sys_errlist[];
# 782 "/usr/include/stdio.h" 2 3 4
extern int fileno (FILE *__stream) __attribute__ ((__nothrow__ , __leaf__)) ;
extern int fileno_unlocked (FILE *__stream) __attribute__ ((__nothrow__ , __leaf__)) ;
# 800 "/usr/include/stdio.h" 3 4
extern FILE *popen (const char *__command, const char *__modes) ;
extern int pclose (FILE *__stream);
extern char *ctermid (char *__s) __attribute__ ((__nothrow__ , __leaf__));
# 840 "/usr/include/stdio.h" 3 4
extern void flockfile (FILE *__stream) __attribute__ ((__nothrow__ , __leaf__));
extern int ftrylockfile (FILE *__stream) __attribute__ ((__nothrow__ , __leaf__)) ;
extern void funlockfile (FILE *__stream) __attribute__ ((__nothrow__ , __leaf__));
# 858 "/usr/include/stdio.h" 3 4
extern int __uflow (FILE *);
extern int __overflow (FILE *, int);
# 873 "/usr/include/stdio.h" 3 4
# 20 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/core/compatibility.h" 2
# 21 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/core/compatibility.h"
void __DSVERIFIER_assume(_Bool expression){
__ESBMC_assume(expression);
# 33 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/core/compatibility.h"
}
void __DSVERIFIER_assert(_Bool expression){
# 36 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/core/compatibility.h" 3 4
((void) sizeof ((
# 36 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/core/compatibility.h"
expression
# 36 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/core/compatibility.h" 3 4
) ? 1 : 0), __extension__ ({ if (
# 36 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/core/compatibility.h"
expression
# 36 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/core/compatibility.h" 3 4
) ; else __assert_fail (
# 36 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/core/compatibility.h"
"expression"
# 36 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/core/compatibility.h" 3 4
, "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/core/compatibility.h", 36, __extension__ __PRETTY_FUNCTION__); }))
# 36 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/core/compatibility.h"
;
}
void __DSVERIFIER_assert_msg(_Bool expression, char * msg){
printf("%s", msg);
# 41 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/core/compatibility.h" 3 4
((void) sizeof ((
# 41 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/core/compatibility.h"
expression
# 41 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/core/compatibility.h" 3 4
) ? 1 : 0), __extension__ ({ if (
# 41 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/core/compatibility.h"
expression
# 41 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/core/compatibility.h" 3 4
) ; else __assert_fail (
# 41 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/core/compatibility.h"
"expression"
# 41 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/core/compatibility.h" 3 4
, "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/core/compatibility.h", 41, __extension__ __PRETTY_FUNCTION__); }))
# 41 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/core/compatibility.h"
;
}
# 22 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/dsverifier.h" 2
# 1 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/core/fixed-point.h" 1
# 27 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/core/fixed-point.h"
# 1 "/usr/lib/gcc/x86_64-linux-gnu/9/include/stdint.h" 1 3 4
# 9 "/usr/lib/gcc/x86_64-linux-gnu/9/include/stdint.h" 3 4
# 1 "/usr/include/stdint.h" 1 3 4
# 26 "/usr/include/stdint.h" 3 4
# 1 "/usr/include/x86_64-linux-gnu/bits/libc-header-start.h" 1 3 4
# 27 "/usr/include/stdint.h" 2 3 4
# 1 "/usr/include/x86_64-linux-gnu/bits/wchar.h" 1 3 4
# 29 "/usr/include/stdint.h" 2 3 4
# 1 "/usr/include/x86_64-linux-gnu/bits/wordsize.h" 1 3 4
# 30 "/usr/include/stdint.h" 2 3 4
# 1 "/usr/include/x86_64-linux-gnu/bits/stdint-uintn.h" 1 3 4
# 24 "/usr/include/x86_64-linux-gnu/bits/stdint-uintn.h" 3 4
# 24 "/usr/include/x86_64-linux-gnu/bits/stdint-uintn.h" 3 4
typedef __uint8_t uint8_t;
typedef __uint16_t uint16_t;
typedef __uint32_t uint32_t;
typedef __uint64_t uint64_t;
# 38 "/usr/include/stdint.h" 2 3 4
typedef __int_least8_t int_least8_t;
typedef __int_least16_t int_least16_t;
typedef __int_least32_t int_least32_t;
typedef __int_least64_t int_least64_t;
typedef __uint_least8_t uint_least8_t;
typedef __uint_least16_t uint_least16_t;
typedef __uint_least32_t uint_least32_t;
typedef __uint_least64_t uint_least64_t;
typedef signed char int_fast8_t;
typedef long int int_fast16_t;
typedef long int int_fast32_t;
typedef long int int_fast64_t;
# 71 "/usr/include/stdint.h" 3 4
typedef unsigned char uint_fast8_t;
typedef unsigned long int uint_fast16_t;
typedef unsigned long int uint_fast32_t;
typedef unsigned long int uint_fast64_t;
# 87 "/usr/include/stdint.h" 3 4
typedef long int intptr_t;
typedef unsigned long int uintptr_t;
# 101 "/usr/include/stdint.h" 3 4
typedef __intmax_t intmax_t;
typedef __uintmax_t uintmax_t;
# 10 "/usr/lib/gcc/x86_64-linux-gnu/9/include/stdint.h" 2 3 4
# 28 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/core/fixed-point.h" 2
# 1 "/usr/include/inttypes.h" 1 3 4
# 34 "/usr/include/inttypes.h" 3 4
typedef int __gwchar_t;
# 266 "/usr/include/inttypes.h" 3 4
typedef struct
{
long int quot;
long int rem;
} imaxdiv_t;
# 290 "/usr/include/inttypes.h" 3 4
extern intmax_t imaxabs (intmax_t __n) __attribute__ ((__nothrow__ , __leaf__)) __attribute__ ((__const__));
extern imaxdiv_t imaxdiv (intmax_t __numer, intmax_t __denom)
__attribute__ ((__nothrow__ , __leaf__)) __attribute__ ((__const__));
extern intmax_t strtoimax (const char *__restrict __nptr,
char **__restrict __endptr, int __base) __attribute__ ((__nothrow__ , __leaf__));
extern uintmax_t strtoumax (const char *__restrict __nptr,
char ** __restrict __endptr, int __base) __attribute__ ((__nothrow__ , __leaf__));
extern intmax_t wcstoimax (const __gwchar_t *__restrict __nptr,
__gwchar_t **__restrict __endptr, int __base)
__attribute__ ((__nothrow__ , __leaf__));
extern uintmax_t wcstoumax (const __gwchar_t *__restrict __nptr,
__gwchar_t ** __restrict __endptr, int __base)
__attribute__ ((__nothrow__ , __leaf__));
# 432 "/usr/include/inttypes.h" 3 4
# 29 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/core/fixed-point.h" 2
# 30 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/core/fixed-point.h"
extern implementation impl;
typedef int64_t fxp_t;
fxp_t _fxp_one;
fxp_t _fxp_half;
fxp_t _fxp_minus_one;
fxp_t _fxp_min;
fxp_t _fxp_max;
double _dbl_max;
double _dbl_min;
fxp_t _fxp_fmask;
fxp_t _fxp_imask;
static const double scale_factor[31] = { 1.0, 2.0, 4.0, 8.0, 16.0, 32.0, 64.0,
128.0, 256.0, 512.0, 1024.0, 2048.0, 4096.0, 8192.0, 16384.0, 32768.0,
65536.0, 131072.0, 262144.0, 524288.0, 1048576.0, 2097152.0, 4194304.0,
8388608.0, 16777216.0, 33554432.0, 67108864.0, 134217728.0,
268435456.0, 536870912.0, 1073741824.0 };
static const double scale_factor_inv[31] = { 1.0, 0.5, 0.25, 0.125, 0.0625,
0.03125, 0.015625, 0.0078125, 0.00390625, 0.001953125, 0.0009765625,
0.00048828125, 0.000244140625, 0.0001220703125, 0.00006103515625,
0.000030517578125, 0.000015258789063, 0.000007629394531,
0.000003814697266, 0.000001907348633, 0.000000953674316,
0.000000476837158, 0.000000238418579, 0.000000119209290,
0.000000059604645, 0.000000029802322, 0.000000014901161,
0.000000007450581, 0.000000003725290, 0.000000001862645,
0.000000000931323 };
static const float rand_uni[10000] = { -0.486240329978498f, -0.0886462298529236f, -0.140307596103306f, 0.301096597450952f, 0.0993171079928659f, 0.971751769763271f, 0.985173975730828f, 0.555993645184930f, 0.582088652691427f, -0.153377496651175f, 0.383610009058905f, -0.335724126391271f, 0.978768141636516f, -0.276250018648572f, 0.390075705739569f, -0.179022404038782f, 0.690083827115783f, -0.872530132490992f, -0.970585763293203f, -0.581476053441704f, -0.532614615674888f, -0.239699306693312f, -0.678183014035494f, 0.349502640932782f, -0.210469890686263f, 0.841262085391842f, -0.473585465151401f, 0.659383565443701f, -0.651160036945754f, -0.961043527561335f, -0.0814927639199137f, 0.621303110569702f, -0.784529166943541f, 0.0238464770757800f, 0.392694728594110f, 0.776848735202001f, 0.0870059709310509f, 0.880563655271790f, 0.883457036977564f, -0.249235082877382f, -0.691040749216870f, 0.578731120064320f, -0.973932858000832f, -0.117699105431720f, -0.723831748151088f, -0.483149657477524f, -0.821277691383664f, -0.459725618100875f, 0.148175952221864f, 0.444306875534854f, -0.325610376336498f, 0.544142311404910f, -0.165319440455435f, 0.136706800705517f, 0.543312481350682f, 0.467210959764607f, -0.349266618228534f, -0.660110730565862f, 0.910332331495431f, 0.961049802789367f, -0.786168905164629f, 0.305648402726554f, 0.510815258508885f, 0.0950733260984060f, 0.173750645487898f, 0.144488668408672f, 0.0190031984466126f, -0.299194577636724f, 0.302411647442273f, -0.730462524226212f, 0.688646006554796f, 0.134948379722118f, 0.533716723458894f, -0.00226300779660438f, -0.561340777806718f, 0.450396313744017f, -0.569445876566955f, 0.954155246557698f, -0.255403882430676f, -0.759820984120828f, -0.855279790307514f, -0.147352581758156f, -0.302269055643746f, -0.642038024364086f, -0.367405981107491f, 0.491844011712164f, -0.542191710121194f, -0.938294043323732f, 0.683979894338020f, 0.294728290855287f, 0.00662691839443919f, -0.931040350582855f, 0.152356209974418f, 0.678620860551457f, -0.534989269238408f, 0.932096367913226f, -0.0361062818028513f, -0.847189697149530f, -0.975903030160255f, 0.623293205784014f, -0.661289688031659f, 0.724486055119603f, 0.307504095172835f, 0.00739266163731767f, -0.393681596442097f, 0.0313739422974388f, 0.0768157689673350f, -0.652063346886817f, 0.864188030044388f, -0.588932092781034f, 0.496015896758580f, -0.872858269231211f, 0.978780599551039f, -0.504887732991147f, -0.462378791937628f, 0.0141726829338038f, 0.769610007653591f, 0.945233033188923f, -0.782235375325016f, -0.832206533738799f, 0.745634368088673f, -0.696969510157151f, -0.0674631869948374f, -0.123186450806584f, -0.359158959141949f, -0.393882649464391f, 0.441371446689899f, -0.829394270569736f, -0.301502651277431f, -0.996215501187289f, 0.934634037393066f, -0.282431114746289f, -0.927550795619590f, -0.437037530043415f, -0.360426812995980f, 0.949549724575862f, 0.502784616197919f, 0.800771681422909f, -0.511398929004089f, 0.309288504642554f, -0.207261227890933f, 0.930587995125773f, -0.777029876696670f, -0.489329175755640f, -0.134595132329858f, 0.285771358983518f, 0.182331373854387f, -0.544110494560697f, 0.278439882883985f, -0.556325158102182f, 0.579043806545889f, 0.134648133801916f, 0.602850725479294f, -0.151663563868883f, 0.180694361855878f, -0.651591295315595f, 0.281129147768056f, -0.580047306475484f, 0.687883075491433f, 0.279398670804288f, -0.853428128249503f, -0.532609367372680f, -0.821156786377917f, -0.181273229058573f, -0.983898569846882f, -0.0964374318311501f, 0.880923372124250f, 0.102643371392389f, 0.893615387135596f, -0.259276649383649f, 0.699287743639363f, 0.402940604635828f, -0.110721596226581f, 0.0846246472582877f, 0.820733021865405f, 0.795578903285308f, -0.495144122011537f, 0.273150029257472f, -0.268249949701437f, 0.231982193341980f, 0.694211299124074f, 0.859950868718233f, 0.959483382623794f, -0.422972626833543f, -0.109621798738360f, 0.433094703426531f, 0.694025903378851f, 0.374478987547435f, -0.293668545105608f, -0.396213864190828f, -0.0632095887099047f, -0.0285139536748673f, 0.831794132192390f, -0.548543088139238f, 0.791869201724680f, 0.325211484201845f, 0.155274810721772f, -0.112383643064821f, -0.674403070297721f, 0.642801068229810f, -0.615712048835242f, -0.322576771285566f, -0.409336818836595f, 0.548069973193770f, -0.386353709407947f, -0.0741664985357784f, 0.619639599324983f, -0.815703814931314f, 0.965550307223862f, 0.623407852683828f, -0.789634372832984f, 0.736750050047572f, -0.0269443926793700f, 0.00545706093721488f, -0.315712479832091f, -0.890110021644720f, -0.869390443173846f, -0.381538869981866f, -0.109498998005949f, 0.131433952330613f, -0.233452413139316f, 0.660289822785465f, 0.543381186340023f, -0.384712418750451f, -0.913477554164890f, 0.767102957655267f, -0.115129944521936f, -0.741161985822647f, -0.0604180020782450f, -0.819131535144059f, -0.409539679760029f, 0.574419252943637f, -0.0440704617157433f, 0.933173744590532f, 0.261360623390448f, -0.880290575543046f, 0.329806293425492f, 0.548915621667952f, 0.635187167795234f, -0.611034070318967f, 0.458196727901944f, 0.397377226781023f, 0.711941361933987f, 0.782147744383368f, -0.00300685339552631f, 0.384687233450957f, 0.810102466029521f, 0.452919847968424f, -0.183164257016897f, -0.755603185485427f, -0.604334477365858f, -0.786222413488860f, -0.434887500763099f, -0.678845635625581f, -0.381200370488331f, -0.582350534916068f, -0.0444427346996734f, 0.116237247526397f, -0.364680921206275f, -0.829395404347498f, -0.258574590032613f, -0.910082114298859f, 0.501356900925997f, 0.0295361922006900f, -0.471786618165219f, 0.536352925101547f, -0.316120662284464f, -0.168902841718737f, 0.970850119987976f, -0.813818666854395f, -0.0861183123848732f, 0.866784827877161f, 0.535966478165739f, -0.806958669103425f, -0.627307415616045f, -0.686618354673079f, 0.0239165685193152f, 0.525427699287402f, 0.834079334357391f, -0.527333932295852f, 0.130970034225907f, -0.790218350377199f, 0.399338640441987f, 0.133591886379939f, -0.181354311053254f, 0.420121912637914f, -0.625002202728601f, -0.293296669160307f, 0.0113819513424340f, -0.882382002895096f, -0.883750159690028f, 0.441583656876336f, -0.439054135454480f, 0.873049498123622f, 0.660844523562817f, 0.0104240153103699f, 0.611420248331623f, -0.235926309432748f, 0.207317724918460f, 0.884691834560657f, 0.128302402592277f, -0.283754448219060f, 0.237649901255856f, 0.610200763264703f, -0.625035441247926f, -0.964609592118695f, -0.323146562743113f, 0.961529402270719f, -0.793576233735450f, -0.843916713821003f, 0.314105102728384f, -0.204535560653294f, 0.753318789613803f, 0.160678386635821f, -0.647065919861379f, -0.202789866826280f, 0.648108234268198f, -0.261292621025902f, 0.156681828732770f, 0.405377351820066f, 0.228465381497500f, 0.972348516671163f, 0.288346037401522f, -0.0799068604307178f, 0.916939290109587f, -0.279220972402209f, -0.203447523864279f, -0.533640046855273f, 0.543561961674653f, 0.880711097286889f, -0.549683064687774f, 0.0130107219236368f, -0.554838164576024f, -0.379442406201385f, -0.00500104610043062f, 0.409530122826868f, -0.580423080726061f, 0.824555731914455f, -0.254134502966922f, 0.655609706875230f, 0.629093866184236f, -0.690033250889974f, -0.652346551677826f, 0.169820593515952f, 0.922459552232043f, 0.351812083539940f, 0.876342426613034f, -0.513486005850680f, -0.626382302780497f, -0.734690688861027f, 0.245594886018314f, -0.875740935105191f, -0.388580462918006f, 0.0127041754106421f, -0.0330962560066819f, -0.425003146474193f, 0.0281641353527495f, 0.261441358666622f, 0.949781327102773f, 0.919646340564270f, 0.504503377003781f, 0.0817071051871894f, 0.319968570729658f, 0.229065413577318f, -0.0512608414259468f, -0.0740848540944785f, -0.0974457038582892f, 0.532775710298005f, -0.492913317622840f, 0.492871078783642f, -0.289562388384881f, 0.229149968879593f, 0.697586903105899f, 0.900855243684925f, 0.969700445892771f, -0.618162745501349f, -0.533241431614228f, -0.937955908995453f, 0.886669636523452f, 0.498748076602594f, 0.974106016180519f, -0.199411214757595f, 0.725270392729083f, -0.0279932700005097f, -0.889385821767448f, -0.452211028905500f, -0.487216271217731f, -0.577105004471439f, 0.777405674160298f, 0.390121144627092f, -0.595062864225581f, -0.844712795815575f, -0.894819796738658f, 0.0556635002662202f, 0.200767245646242f, 0.481227096067452f, -0.0854169009474664f, 0.524532943920022f, -0.880292014538901f, -0.127923833629789f, -0.929275628802356f, 0.233276357260949f, -0.776272194935070f, 0.953325886548014f, -0.884399921036004f, -0.504227548828417f, -0.546526107689276f, 0.852622421886067f, 0.947722695551154f, -0.668635552599119f, 0.768739709906834f, 0.830755876586102f, -0.720579994994166f, 0.761613532216491f, 0.340510345777526f, 0.335046764810816f, 0.490102926886310f, -0.568989013749608f, -0.296018470377601f, 0.979838924243657f, 0.624231653632879f, 0.553904401851075f, -0.355359451941014f, 0.267623165480721f, 0.985914275634075f, -0.741887849211797f, 0.560479100333108f, -0.602590162007993f, -0.874870765077352f, -0.0306218773384892f, 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# 102 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/core/fixed-point.h"
fxp_t wrap(fxp_t kX, fxp_t kLowerBound, fxp_t kUpperBound)
{
int32_t range_size = kUpperBound - kLowerBound + 1;
if (kX < kLowerBound){
kX += range_size * ((kLowerBound - kX) / range_size + 1);
}
return kLowerBound + (kX - kLowerBound) % range_size;
}
fxp_t fxp_get_int_part(fxp_t in) {
return ((in < 0) ? -((-in) & _fxp_imask) : in & _fxp_imask);
}
fxp_t fxp_get_frac_part(fxp_t in) {
return ((in < 0) ? -((-in) & _fxp_fmask) : in & _fxp_fmask);
}
float fxp_to_float(fxp_t fxp);
fxp_t fxp_quantize(fxp_t aquant) {
if (overflow_mode == 2) {
if(aquant < _fxp_min) {
return _fxp_min;
}
else if(aquant > _fxp_max) {
return _fxp_max;
}
}
else if (overflow_mode == 3) {
if(aquant < _fxp_min || aquant > _fxp_max) {
return wrap(aquant, _fxp_min, _fxp_max);
}
}
return (fxp_t) aquant;
}
void fxp_verify_overflow(fxp_t value){
fxp_quantize(value);
printf("An Overflow Occurred in system's output");
__DSVERIFIER_assert(value <= _fxp_max && value >= _fxp_min);
}
void fxp_verify_overflow_node(fxp_t value, char* msg){
if (2 == 2)
{
printf("%s",msg);
__DSVERIFIER_assert(value <= _fxp_max && value >= _fxp_min);
}
}
void fxp_verify_overflow_array(fxp_t array[], int n){
int i=0;
for(i=0; i<n;i++){
fxp_verify_overflow(array[i]);
}
}
fxp_t fxp_int_to_fxp(int in) {
fxp_t lin;
lin = (fxp_t) in*_fxp_one;
return lin;
}
int fxp_to_int(fxp_t fxp) {
if(fxp >= 0){
fxp += _fxp_half;
} else {
fxp -= _fxp_half;
}
fxp >>= impl.frac_bits;
return (int) fxp;
}
fxp_t fxp_float_to_fxp(float f) {
fxp_t tmp;
double ftemp;
ftemp = f * scale_factor[impl.frac_bits];
if(f >= 0) {
tmp = (fxp_t)(ftemp + 0.5);
}
else {
tmp = (fxp_t)(ftemp - 0.5);
}
return tmp;
}
fxp_t fxp_double_to_fxp(double value) {
fxp_t tmp;
double ftemp = value * scale_factor[impl.frac_bits];
if (rounding_mode == 0){
if(value >= 0) {
tmp = (fxp_t)(ftemp + 0.5);
}
else {
tmp = (fxp_t)(ftemp - 0.5);
}
} else if(rounding_mode == 1){
tmp = (fxp_t) ftemp;
double residue = ftemp - tmp;
if ((value < 0) && (residue != 0)){
ftemp = ftemp - 1;
tmp = (fxp_t) ftemp;
}
} else if (rounding_mode == 0){
tmp = (fxp_t) ftemp;
}
return tmp;
}
void fxp_float_to_fxp_array(float f[], fxp_t r[], int N) {
int i;
for(i = 0; i < N; ++i) {
r[i] = fxp_float_to_fxp(f[i]);
}
}
void fxp_double_to_fxp_array(double f[], fxp_t r[], int N) {
int i;
for(i = 0; i < N; ++i) {
r[i] = fxp_double_to_fxp(f[i]);
}
}
# 275 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/core/fixed-point.h"
float fxp_to_float(fxp_t fxp) {
float f;
int f_int = (int) fxp;
f = f_int * scale_factor_inv[impl.frac_bits];
return f;
}
double fxp_to_double(fxp_t fxp) {
double f;
int f_int = (int) fxp;
f = f_int * scale_factor_inv[impl.frac_bits];
return f;
}
void fxp_to_float_array(float f[], fxp_t r[], int N) {
int i;
for(i = 0; i < N; ++i) {
f[i] = fxp_to_float(r[i]);
}
}
void fxp_to_double_array(double f[], fxp_t r[], int N) {
int i;
for(i = 0; i < N; ++i) {
f[i] = fxp_to_double(r[i]);
}
}
fxp_t fxp_abs(fxp_t a) {
fxp_t tmp;
tmp = ((a < 0) ? -(fxp_t)(a) : a);
tmp = fxp_quantize(tmp);
return tmp;
}
fxp_t fxp_add(fxp_t aadd, fxp_t badd) {
fxp_t tmpadd;
tmpadd = ((fxp_t)(aadd) + (fxp_t)(badd));
tmpadd = fxp_quantize(tmpadd);
return tmpadd;
}
fxp_t fxp_sub(fxp_t asub, fxp_t bsub) {
fxp_t tmpsub;
tmpsub = (fxp_t)((fxp_t)(asub) - (fxp_t)(bsub));
tmpsub = fxp_quantize(tmpsub);
return tmpsub;
}
fxp_t fxp_mult(fxp_t amult, fxp_t bmult) {
fxp_t tmpmult, tmpmultprec;
tmpmult = (fxp_t)((fxp_t)(amult)*(fxp_t)(bmult));
if (tmpmult >= 0) {
tmpmultprec = (tmpmult + ((tmpmult & 1 << (impl.frac_bits - 1)) << 1)) >> impl.frac_bits;
} else {
tmpmultprec = -(((-tmpmult) + (((-tmpmult) & 1 << (impl.frac_bits - 1)) << 1)) >> impl.frac_bits);
}
tmpmultprec = fxp_quantize(tmpmultprec);
return tmpmultprec;
}
# 372 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/core/fixed-point.h"
fxp_t fxp_div(fxp_t a, fxp_t b){
__DSVERIFIER_assume( b!=0 );
fxp_t tmpdiv = ((a << impl.frac_bits) / b);
tmpdiv = fxp_quantize(tmpdiv);
return tmpdiv;
}
fxp_t fxp_neg(fxp_t aneg) {
fxp_t tmpneg;
tmpneg = -(fxp_t)(aneg);
tmpneg = fxp_quantize(tmpneg);
return tmpneg;
}
# 398 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/core/fixed-point.h"
fxp_t fxp_sign(fxp_t a) {
return ((a == 0) ? 0 : ((a < 0) ? _fxp_minus_one : _fxp_one) );
}
fxp_t fxp_shrl(fxp_t in, int shift) {
return (fxp_t) (((unsigned int) in) >> shift);
}
fxp_t fxp_square(fxp_t a) {
return fxp_mult(a, a);
}
void fxp_print_int(fxp_t a) {
printf("\n%i", (int32_t)a);
}
void fxp_print_float(fxp_t a) {
printf("\n%f", fxp_to_float(a));
}
void fxp_print_float_array(fxp_t a[], int N) {
int i;
for(i = 0; i < N; ++i) {
printf("\n%f", fxp_to_float(a[i]));
}
}
void print_fxp_array_elements(char * name, fxp_t * v, int n){
printf("%s = {", name);
int i;
for(i=0; i < n; i++){
printf(" %jd ", v[i]);
}
printf("}\n");
}
# 23 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/dsverifier.h" 2
# 1 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/core/util.h" 1
# 24 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/core/util.h"
void initialize_array(double v[], int n){
int i;
for(i=0; i<n; i++){
v[i] = 0;
}
}
void revert_array(double v[], double out[], int n){
initialize_array(out,n);
int i;
for(i=0; i<n; i++){
out[i] = v[n-i-1];
}
}
double internal_pow(double a, double b){
int i;
double acc = 1;
for (i=0; i < b; i++){
acc = acc*a;
}
return acc;
}
double internal_abs(double a){
return a < 0 ? -a : a;
}
int fatorial(int n){
return n == 0 ? 1 : n * fatorial(n-1);
}
int check_stability(double a[], int n){
int lines = 2 * n - 1;
int columns = n;
double m[lines][n];
int i,j;
double current_stability[n];
for (i=0; i < n; i++){
current_stability[i] = a[i];
}
double sum = 0;
for (i=0; i < n; i++){
sum += a[i];
}
if (sum <= 0){
printf("[DEBUG] the first constraint of Jury criteria failed: (F(1) > 0)");
return 0;
}
sum = 0;
for (i=0; i < n; i++){
sum += a[i] * internal_pow(-1, n-1-i);
}
sum = sum * internal_pow(-1, n-1);
if (sum <= 0){
printf("[DEBUG] the second constraint of Jury criteria failed: (F(-1)*(-1)^n > 0)");
return 0;
}
if (internal_abs(a[n-1]) > a[0]){
printf("[DEBUG] the third constraint of Jury criteria failed: (abs(a0) < a_{n}*z^{n})");
return 0;
}
for (i=0; i < lines; i++){
for (j=0; j < columns; j++){
m[i][j] = 0;
}
}
for (i=0; i < lines; i++){
for (j=0; j < columns; j++){
if (i == 0){
m[i][j] = a[j];
continue;
}
if (i % 2 != 0 ){
int x;
for(x=0; x<columns;x++){
m[i][x] = m[i-1][columns-x-1];
}
columns = columns - 1;
j = columns;
}else{
m[i][j] = m[i-2][j] - (m[i-2][columns] / m[i-2][0]) * m[i-1][j];
}
}
}
int first_is_positive = m[0][0] >= 0 ? 1 : 0;
for (i=0; i < lines; i++){
if (i % 2 == 0){
int line_is_positive = m[i][0] >= 0 ? 1 : 0;
if (first_is_positive != line_is_positive){
return 0;
}
continue;
}
}
return 1;
}
void poly_sum(double a[], int Na, double b[], int Nb, double ans[], int Nans){
int i;
Nans = Na>Nb? Na:Nb;
for (i=0; i<Nans; i++){
if (Na>Nb){
ans[i]=a[i];
if (i > Na-Nb-1){
ans[i]=ans[i]+b[i-Na+Nb];
}
}else {
ans[i]=b[i];
if (i> Nb - Na -1){
ans[i]=ans[i]+a[i-Nb+Na];
}
}
}
}
void poly_mult(double a[], int Na, double b[], int Nb, double ans[], int Nans){
int i;
int j;
int k;
Nans = Na+Nb-1;
for (i=0; i<Na; i++){
for (j=0; j<Nb; j++){
k= Na + Nb - i - j - 2;
ans[k]=0;
}
}
for (i=0; i<Na; i++){
for (j=0; j<Nb; j++){
k= Na + Nb - i - j - 2;
ans[k]=ans[k]+a[Na - i - 1]*b[Nb - j - 1];
}
}
}
void double_check_oscillations(double * y, int y_size){
__DSVERIFIER_assume(y[0] != y[y_size - 1]);
int window_timer = 0;
int window_count = 0;
int i, j;
for (i = 2; i < y_size; i++){
int window_size = i;
for(j=0; j<y_size; j++){
if (window_timer > window_size){
window_timer = 0;
window_count = 0;
}
int window_index = j + window_size;
if (window_index < y_size){
if (y[j] == y[window_index]){
window_count++;
# 209 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/core/util.h" 3 4
((void) sizeof ((
# 209 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/core/util.h"
!(window_count == window_size)
# 209 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/core/util.h" 3 4
) ? 1 : 0), __extension__ ({ if (
# 209 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/core/util.h"
!(window_count == window_size)
# 209 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/core/util.h" 3 4
) ; else __assert_fail (
# 209 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/core/util.h"
"!(window_count == window_size)"
# 209 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/core/util.h" 3 4
, "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/core/util.h", 209, __extension__ __PRETTY_FUNCTION__); }))
# 209 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/core/util.h"
;
}
}else{
break;
}
window_timer++;
}
}
}
void double_check_limit_cycle(double * y, int y_size){
double reference = y[y_size - 1];
int idx = 0;
int window_size = 1;
for(idx = (y_size-2); idx >= 0; idx--){
if (y[idx] != reference){
window_size++;
}else{
break;
}
}
__DSVERIFIER_assume(window_size != y_size && window_size != 1);
printf("window_size %d\n", window_size);
int desired_elements = 2 * window_size;
int found_elements = 0;
for(idx = (y_size-1); idx >= 0; idx--){
if (idx > (y_size-window_size-1)){
printf("%.0f == %.0f\n", y[idx], y[idx-window_size]);
int cmp_idx = idx - window_size;
if ((cmp_idx > 0) && (y[idx] == y[idx-window_size])){
found_elements = found_elements + 2;
}else{
break;
}
}
}
printf("desired_elements %d\n", desired_elements);
printf("found_elements %d\n", found_elements);
__DSVERIFIER_assert(desired_elements != found_elements);
}
void double_check_persistent_limit_cycle(double * y, int y_size){
int idy = 0;
int count_same = 0;
int window_size = 0;
double reference = y[0];
for(idy = 0; idy < y_size; idy++){
if (y[idy] != reference){
window_size++;
} else if (window_size != 0){
break;
} else {
count_same++;
}
}
window_size += count_same;
__DSVERIFIER_assume(window_size > 1 && window_size <= y_size/2);
double lco_elements[window_size];
for(idy = 0; idy < y_size; idy++){
if (idy < window_size){
lco_elements[idy] = y[idy];
}
}
idy = 0;
int lco_idy = 0;
_Bool is_persistent = 0;
while (idy < y_size){
if(y[idy++] == lco_elements[lco_idy++]){
is_persistent = 1;
}else{
is_persistent = 0;
break;
}
if (lco_idy == window_size){
lco_idy = 0;
}
}
__DSVERIFIER_assert(is_persistent == 0);
}
void print_array_elements(char * name, double * v, int n){
printf("%s = {", name);
int i;
for(i=0; i < n; i++){
printf(" %.32f ", v[i]);
}
printf("}\n");
}
void double_add_matrix( unsigned int lines, unsigned int columns, double m1[4][4], double m2[4][4], double result[4][4]){
unsigned int i, j;
for (i = 0; i < lines; i++){
for (j = 0; j < columns; j++){
result[i][j] = m1[i][j] + m2[i][j];
}
}
}
void double_sub_matrix( unsigned int lines, unsigned int columns, double m1[4][4], double m2[4][4], double result[4][4]){
unsigned int i, j;
for (i = 0; i < lines; i++){
for (j = 0; j < columns; j++){
result[i][j] = m1[i][j] - m2[i][j];
}
}
}
void double_matrix_multiplication( unsigned int i1, unsigned int j1, unsigned int i2, unsigned int j2, double m1[4][4], double m2[4][4], double m3[4][4]){
unsigned int i, j, k;
if (j1 == i2) {
for (i=0; i<i1; i++) {
for (j=0; j<j2; j++) {
m3[i][j] = 0;
}
}
for (i=0;i<i1; i++) {
for (j=0; j<j2; j++) {
for (k=0; k<j1; k++) {
double mult = (m1[i][k] * m2[k][j]);
m3[i][j] = m3[i][j] + (m1[i][k] * m2[k][j]);
}
}
}
} else {
printf("\nError! Operation invalid, please enter with valid matrices.\n");
}
}
void fxp_matrix_multiplication( unsigned int i1, unsigned int j1, unsigned int i2, unsigned int j2, fxp_t m1[4][4], fxp_t m2[4][4], fxp_t m3[4][4]){
unsigned int i, j, k;
if (j1 == i2) {
for (i=0; i<i1; i++) {
for (j=0; j<j2; j++) {
m3[i][j] = 0;
}
}
for (i=0;i<i1; i++) {
for (j=0; j<j2; j++) {
for (k=0; k<j1; k++) {
m3[i][j] = fxp_add( m3[i][j], fxp_mult(m1[i][k] , m2[k][j]));
}
}
}
} else {
printf("\nError! Operation invalid, please enter with valid matrices.\n");
}
}
void fxp_exp_matrix(unsigned int lines, unsigned int columns, fxp_t m1[4][4], unsigned int expNumber, fxp_t result[4][4]){
unsigned int i, j, l, k;
fxp_t m2[4][4];
if(expNumber == 0){
for (i = 0; i < lines; i++){
for (j = 0; j < columns; j++){
if(i == j){
result[i][j] = fxp_double_to_fxp(1.0);
} else {
result[i][j] = 0.0;
}
}
}
return;
}
for (i = 0; i < lines; i++)
for (j = 0; j < columns; j++) result[i][j] = m1[i][j];
if(expNumber == 1){
return;
}
for(l = 1; l < expNumber; l++){
for (i = 0; i < lines; i++)
for (j = 0; j < columns; j++) m2[i][j] = result[i][j];
for (i = 0; i < lines; i++)
for (j = 0; j < columns; j++) result[i][j] = 0;
for (i=0;i<lines; i++) {
for (j=0; j<columns; j++) {
for (k=0; k<columns; k++) {
result[i][j] = fxp_add( result[i][j], fxp_mult(m2[i][k] , m1[k][j]));
}
}
}
}
}
void double_exp_matrix(unsigned int lines, unsigned int columns, double m1[4][4], unsigned int expNumber, double result[4][4]){
unsigned int i, j, k, l;
double m2[4][4];
if(expNumber == 0){
for (i = 0; i < lines; i++){
for (j = 0; j < columns; j++){
if(i == j){
result[i][j] = 1.0;
} else {
result[i][j] = 0.0;
}
}
}
return;
}
for (i = 0; i < lines; i++)
for (j = 0; j < columns; j++) result[i][j] = m1[i][j];
if(expNumber == 1){
return;
}
for(l = 1; l < expNumber; l++){
for (i = 0; i < lines; i++)
for (j = 0; j < columns; j++) m2[i][j] = result[i][j];
for (i = 0; i < lines; i++)
for (j = 0; j < columns; j++) result[i][j] = 0;
for (i=0;i<lines; i++) {
for (j=0; j<columns; j++) {
for (k=0; k<columns; k++) {
result[i][j] = result[i][j] + (m2[i][k] * m1[k][j]);
}
}
}
}
}
void fxp_add_matrix( unsigned int lines, unsigned int columns, fxp_t m1[4][4], fxp_t m2[4][4], fxp_t result[4][4]){
unsigned int i, j;
for (i = 0; i < lines; i++)
for (j = 0; j < columns; j++) {
result[i][j] = fxp_add(m1[i][j] , m2[i][j]);
}
}
void fxp_sub_matrix( unsigned int lines, unsigned int columns, fxp_t m1[4][4], fxp_t m2[4][4], fxp_t result[4][4]){
unsigned int i, j;
for (i = 0; i < lines; i++)
for (j = 0; j < columns; j++) result[i][j] = fxp_sub(m1[i][j] , m2[i][j]);
}
void print_matrix(double matrix[4][4], unsigned int lines, unsigned int columns){
printf("\nMatrix\n=====================\n\n");
unsigned int i, j;
for (i=0; i<lines; i++) {
for (j=0; j<columns; j++) {
printf("#matrix[%d][%d]: %2.2f ", i,j,matrix[i][j]);
}
printf("\n");
}
printf("\n");
}
double determinant(double a[4][4],int n)
{
int i,j,j1,j2;
double det = 0;
double m[4][4];
if (n < 1) {
} else if (n == 1) {
det = a[0][0];
} else if (n == 2) {
det = a[0][0] * a[1][1] - a[1][0] * a[0][1];
} else {
det = 0;
for (j1=0;j1<n;j1++) {
for (i=0;i<n-1;i++)
for (i=1;i<n;i++) {
j2 = 0;
for (j=0;j<n;j++) {
if (j == j1)
continue;
m[i-1][j2] = a[i][j];
j2++;
}
}
det += internal_pow(-1.0,1.0+j1+1.0) * a[0][j1] * determinant(m,n-1);
}
}
return(det);
}
double fxp_determinant(fxp_t a_fxp[4][4],int n)
{
int i,j,j1,j2;
double a[4][4];
for(i=0; i<n;i++){
for(j=0; j<n;j++){
a[i][j]= fxp_to_double(a_fxp[i][j]);
}
}
double det = 0;
double m[4][4];
if (n < 1) {
} else if (n == 1) {
det = a[0][0];
} else if (n == 2) {
det = a[0][0] * a[1][1] - a[1][0] * a[0][1];
} else {
det = 0;
for (j1=0;j1<n;j1++) {
for (i=0;i<n-1;i++)
for (i=1;i<n;i++) {
j2 = 0;
for (j=0;j<n;j++) {
if (j == j1)
continue;
m[i-1][j2] = a[i][j];
j2++;
}
}
det += internal_pow(-1.0,1.0+j1+1.0) * a[0][j1] * determinant(m,n-1);
}
}
return(det);
}
void transpose(double a[4][4], double b[4][4],int n, int m)
{
int i,j;
for (i=0;i<n;i++) {
for (j=0;j<m;j++) {
b[j][i] = a[i][j];
}
}
}
void fxp_transpose(fxp_t a[4][4], fxp_t b[4][4],int n, int m)
{
int i,j;
for (i=0;i<n;i++) {
for (j=0;j<m;j++) {
b[j][i] = a[i][j];
}
}
}
# 24 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/dsverifier.h" 2
# 1 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/core/functions.h" 1
# 19 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/core/functions.h"
extern int generic_timer;
extern hardware hw;
double generic_timing_shift_l_double(double zIn, double z[], int N) {
generic_timer += ((2 * hw.assembly.push) + (3 * hw.assembly.in) + (3 * hw.assembly.out) + (1 * hw.assembly.sbiw) + (1 * hw.assembly.cli) + (8 * hw.assembly.std));
int i;
double zOut;
zOut = z[0];
generic_timer += ((5 * hw.assembly.ldd) + (2 * hw.assembly.mov) + (4 * hw.assembly.std) + (1 * hw.assembly.ld));
generic_timer += ((2 * hw.assembly.std) + (1 * hw.assembly.rjmp));
for (i = 0; i < N - 1; i++) {
generic_timer += ((17 * hw.assembly.ldd) + (4 * hw.assembly.lsl) + (4 * hw.assembly.rol) + (2 * hw.assembly.add) + (2 * hw.assembly.adc) + (6 * hw.assembly.mov) + (2 * hw.assembly.adiw) + (5 * hw.assembly.std) + (1 * hw.assembly.ld) + (1 * hw.assembly.st) + (1 * hw.assembly.subi) + (1 * hw.assembly.sbc)+ (1 * hw.assembly.cp) + (1 * hw.assembly.cpc) + (1 * hw.assembly.brlt));
z[i] = z[i + 1];
}
z[N - 1] = zIn;
generic_timer += ((12 * hw.assembly.ldd) + (6 * hw.assembly.mov) + (3 * hw.assembly.std) + (2 * hw.assembly.lsl) + (2 * hw.assembly.rol) + (1 * hw.assembly.adc) + (1 * hw.assembly.add) + (1 * hw.assembly.subi) + (1 * hw.assembly.sbci) + (1 * hw.assembly.st) + (1 * hw.assembly.adiw) + (1 * hw.assembly.in)+ (1 * hw.assembly.cli));
generic_timer += ((3 * hw.assembly.out) + (2 * hw.assembly.pop) + (1 * hw.assembly.ret));
return (zOut);
}
double generic_timing_shift_r_double(double zIn, double z[], int N) {
generic_timer += ((2 * hw.assembly.push) + (3 * hw.assembly.in) + (3 * hw.assembly.out) + (1 * hw.assembly.sbiw) + (1 * hw.assembly.cli) + (8 * hw.assembly.std));
int i;
double zOut;
zOut = z[N - 1];
generic_timer += ((7 * hw.assembly.ldd) + (2 * hw.assembly.rol) + (2 * hw.assembly.lsl) + (2 * hw.assembly.mov) + (4 * hw.assembly.std) + (1 * hw.assembly.add) + (1 * hw.assembly.adc) + (1 * hw.assembly.ld) + (1 * hw.assembly.subi) + (1 * hw.assembly.sbci));
generic_timer += ((2 * hw.assembly.ldd) + (2 * hw.assembly.std) + (1 * hw.assembly.sbiw) + (1 * hw.assembly.rjmp));
for (i = N - 1; i > 0; i--) {
z[i] = z[i - 1];
generic_timer += ((15 * hw.assembly.ldd) + (4 * hw.assembly.lsl) + (4 * hw.assembly.rol) + (2 * hw.assembly.add) + (2 * hw.assembly.adc) + (4 * hw.assembly.mov) + (5 * hw.assembly.std) + (1 * hw.assembly.subi) + (1 * hw.assembly.sbci) + (1 * hw.assembly.ld) + (1 * hw.assembly.st) + (1 * hw.assembly.sbiw) + (1 * hw.assembly.cp) + (1 * hw.assembly.cpc) + (1 * hw.assembly.brlt));
}
z[0] = zIn;
generic_timer += ((10 * hw.assembly.ldd) + (5 * hw.assembly.mov) + (3 * hw.assembly.std) + (3 * hw.assembly.out) + (2 * hw.assembly.pop) + (1 * hw.assembly.ret) + (1 * hw.assembly.ret) + (1 * hw.assembly.cli) + (1 * hw.assembly.in) + (1 * hw.assembly.st) + (1 * hw.assembly.adiw));
return zOut;
}
fxp_t shiftL(fxp_t zIn, fxp_t z[], int N) {
int i;
fxp_t zOut;
zOut = z[0];
for (i = 0; i < N - 1; i++) {
z[i] = z[i + 1];
}
z[N - 1] = zIn;
return (zOut);
}
fxp_t shiftR(fxp_t zIn, fxp_t z[], int N) {
int i;
fxp_t zOut;
zOut = z[N - 1];
for (i = N - 1; i > 0; i--) {
z[i] = z[i - 1];
}
z[0] = zIn;
return zOut;
}
float shiftLfloat(float zIn, float z[], int N) {
int i;
float zOut;
zOut = z[0];
for (i = 0; i < N - 1; i++) {
z[i] = z[i + 1];
}
z[N - 1] = zIn;
return (zOut);
}
float shiftRfloat(float zIn, float z[], int N) {
int i;
float zOut;
zOut = z[N - 1];
for (i = N - 1; i > 0; i--) {
z[i] = z[i - 1];
}
z[0] = zIn;
return zOut;
}
double shiftRDdouble(double zIn, double z[], int N) {
int i;
double zOut;
zOut = z[0];
for (i = 0; i < N - 1; i++) {
z[i] = z[i + 1];
}
z[N - 1] = zIn;
return (zOut);
}
double shiftRdouble(double zIn, double z[], int N) {
int i;
double zOut;
zOut = z[N - 1];
for (i = N - 1; i > 0; i--) {
z[i] = z[i - 1];
}
z[0] = zIn;
return zOut;
}
double shiftLDouble(double zIn, double z[], int N) {
int i;
double zOut;
zOut = z[0];
for (i = 0; i < N - 1; i++) {
z[i] = z[i + 1];
}
z[N - 1] = zIn;
return (zOut);
}
void shiftLboth(float zfIn, float zf[], fxp_t zIn, fxp_t z[], int N) {
int i;
fxp_t zOut;
float zfOut;
zOut = z[0];
zfOut = zf[0];
for (i = 0; i < N - 1; i++) {
z[i] = z[i + 1];
zf[i] = zf[i + 1];
}
z[N - 1] = zIn;
zf[N - 1] = zfIn;
}
void shiftRboth(float zfIn, float zf[], fxp_t zIn, fxp_t z[], int N) {
int i;
fxp_t zOut;
float zfOut;
zOut = z[N - 1];
zfOut = zf[N - 1];
for (i = N - 1; i > 0; i--) {
z[i] = z[i - 1];
zf[i] = zf[i - 1];
}
z[0] = zIn;
zf[0] = zfIn;
}
int order(int Na, int Nb) {
return Na > Nb ? Na - 1 : Nb - 1;
}
void fxp_check_limit_cycle(fxp_t y[], int y_size){
fxp_t reference = y[y_size - 1];
int idx = 0;
int window_size = 1;
for(idx = (y_size-2); idx >= 0; idx--){
if (y[idx] != reference){
window_size++;
}else{
break;
}
}
__DSVERIFIER_assume(window_size != y_size && window_size != 1);
printf("window_size %d\n", window_size);
int desired_elements = 2 * window_size;
int found_elements = 0;
for(idx = (y_size-1); idx >= 0; idx--){
if (idx > (y_size-window_size-1)){
printf("%.0f == %.0f\n", y[idx], y[idx-window_size]);
int cmp_idx = idx - window_size;
if ((cmp_idx > 0) && (y[idx] == y[idx-window_size])){
found_elements = found_elements + 2;
}else{
break;
}
}
}
__DSVERIFIER_assume(found_elements > 0);
printf("desired_elements %d\n", desired_elements);
printf("found_elements %d\n", found_elements);
__DSVERIFIER_assume(found_elements == desired_elements);
__DSVERIFIER_assert(0);
}
void fxp_check_persistent_limit_cycle(fxp_t * y, int y_size){
int idy = 0;
int count_same = 0;
int window_size = 0;
fxp_t reference = y[0];
for(idy = 0; idy < y_size; idy++){
if (y[idy] != reference){
window_size++;
} else if (window_size != 0){
break;
} else {
count_same++;
}
}
window_size += count_same;
__DSVERIFIER_assume(window_size > 1 && window_size <= y_size/2);
fxp_t lco_elements[window_size];
for(idy = 0; idy < y_size; idy++){
if (idy < window_size){
lco_elements[idy] = y[idy];
}
}
idy = 0;
int lco_idy = 0;
_Bool is_persistent = 0;
while (idy < y_size){
if(y[idy++] == lco_elements[lco_idy++]){
is_persistent = 1;
}else{
is_persistent = 0;
break;
}
if (lco_idy == window_size){
lco_idy = 0;
}
}
__DSVERIFIER_assert(is_persistent == 0);
}
void fxp_check_oscillations(fxp_t y[] , int y_size){
__DSVERIFIER_assume((y[0] != y[y_size - 1]) && (y[y_size - 1] != y[y_size - 2]));
int window_timer = 0;
int window_count = 0;
int i, j;
for (i = 2; i < y_size; i++){
int window_size = i;
for(j=0; j<y_size; j++){
if (window_timer > window_size){
window_timer = 0;
window_count = 0;
}
int window_index = j + window_size;
if (window_index < y_size){
if (y[j] == y[window_index]){
window_count++;
__DSVERIFIER_assert(!(window_count == window_size));
}
}else{
break;
}
window_timer++;
}
}
}
int fxp_ln(int x) {
int t, y;
y = 0xa65af;
if (x < 0x00008000)
x <<= 16, y -= 0xb1721;
if (x < 0x00800000)
x <<= 8, y -= 0x58b91;
if (x < 0x08000000)
x <<= 4, y -= 0x2c5c8;
if (x < 0x20000000)
x <<= 2, y -= 0x162e4;
if (x < 0x40000000)
x <<= 1, y -= 0x0b172;
t = x + (x >> 1);
if ((t & 0x80000000) == 0)
x = t, y -= 0x067cd;
t = x + (x >> 2);
if ((t & 0x80000000) == 0)
x = t, y -= 0x03920;
t = x + (x >> 3);
if ((t & 0x80000000) == 0)
x = t, y -= 0x01e27;
t = x + (x >> 4);
if ((t & 0x80000000) == 0)
x = t, y -= 0x00f85;
t = x + (x >> 5);
if ((t & 0x80000000) == 0)
x = t, y -= 0x007e1;
t = x + (x >> 6);
if ((t & 0x80000000) == 0)
x = t, y -= 0x003f8;
t = x + (x >> 7);
if ((t & 0x80000000) == 0)
x = t, y -= 0x001fe;
x = 0x80000000 - x;
y -= x >> 15;
return y;
}
double fxp_log10_low(double x) {
int xint = (int) (x * 65536.0 + 0.5);
int lnum = fxp_ln(xint);
int lden = fxp_ln(655360);
return ((double) lnum / (double) lden);
}
double fxp_log10(double x) {
if (x > 32767.0) {
if (x > 1073676289.0) {
x = x / 1073676289.0;
return fxp_log10_low(x) + 9.030873362;
}
x = x / 32767.0;
return fxp_log10_low(x) + 4.515436681;
}
return fxp_log10_low(x);
}
float snrVariance(float s[], float n[], int blksz) {
int i;
double sm = 0, nm = 0, sv = 0, nv = 0, snr;
for (i = 0; i < blksz; i++) {
sm += s[i];
nm += n[i];
}
sm /= blksz;
nm /= blksz;
for (i = 0; i < blksz; i++) {
sv += (s[i] - sm) * (s[i] - sm);
nv += (n[i] - nm) * (n[i] - nm);
}
if (nv != 0.0f) {
# 373 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/core/functions.h" 3 4
((void) sizeof ((
# 373 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/core/functions.h"
sv >= nv
# 373 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/core/functions.h" 3 4
) ? 1 : 0), __extension__ ({ if (
# 373 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/core/functions.h"
sv >= nv
# 373 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/core/functions.h" 3 4
) ; else __assert_fail (
# 373 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/core/functions.h"
"sv >= nv"
# 373 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/core/functions.h" 3 4
, "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/core/functions.h", 373, __extension__ __PRETTY_FUNCTION__); }))
# 373 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/core/functions.h"
;
snr = sv / nv;
return snr;
} else {
return 9999.9f;
}
}
float snrPower(float s[], float n[], int blksz) {
int i;
double sv = 0, nv = 0, snr;
for (i = 0; i < blksz; i++) {
sv += s[i] * s[i];
nv += n[i] * n[i];
}
if (nv != 0.0f) {
# 394 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/core/functions.h" 3 4
((void) sizeof ((
# 394 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/core/functions.h"
sv >= nv
# 394 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/core/functions.h" 3 4
) ? 1 : 0), __extension__ ({ if (
# 394 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/core/functions.h"
sv >= nv
# 394 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/core/functions.h" 3 4
) ; else __assert_fail (
# 394 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/core/functions.h"
"sv >= nv"
# 394 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/core/functions.h" 3 4
, "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/core/functions.h", 394, __extension__ __PRETTY_FUNCTION__); }))
# 394 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/core/functions.h"
;
snr = sv / nv;
return snr;
} else {
return 9999.9f;
}
}
float snrPoint(float s[], float n[], int blksz) {
int i;
double ratio = 0, power = 0;
for (i = 0; i < blksz; i++) {
if(n[i] == 0) continue;
ratio = s[i] / n[i];
if(ratio > 150.0f || ratio < -150.0f) continue;
power = ratio * ratio;
# 412 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/core/functions.h" 3 4
((void) sizeof ((
# 412 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/core/functions.h"
power >= 1.0f
# 412 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/core/functions.h" 3 4
) ? 1 : 0), __extension__ ({ if (
# 412 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/core/functions.h"
power >= 1.0f
# 412 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/core/functions.h" 3 4
) ; else __assert_fail (
# 412 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/core/functions.h"
"power >= 1.0f"
# 412 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/core/functions.h" 3 4
, "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/core/functions.h", 412, __extension__ __PRETTY_FUNCTION__); }))
# 412 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/core/functions.h"
;
}
return 9999.9f;
}
unsigned long next = 1;
int rand(void)
{
next = next*1103515245 + 12345;
return (unsigned int)(next/65536) % 32768;
}
void srand(unsigned int seed)
{
next = seed;
}
float iirIIOutTime(float w[], float x, float a[], float b[], int Na, int Nb) {
int timer1 = 0;
float *a_ptr, *b_ptr, *w_ptr;
float sum = 0;
a_ptr = &a[1];
b_ptr = &b[0];
w_ptr = &w[1];
int k, j;
timer1 += 71;
for (j = 1; j < Na; j++) {
w[0] -= *a_ptr++ * *w_ptr++;
timer1 += 54;
}
w[0] += x;
w_ptr = &w[0];
for (k = 0; k < Nb; k++) {
sum += *b_ptr++ * *w_ptr++;
timer1 += 46;
}
timer1 += 38;
# 450 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/core/functions.h" 3 4
((void) sizeof ((
# 450 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/core/functions.h"
(double)timer1*1 / 16000000 <= (double)1 / 100
# 450 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/core/functions.h" 3 4
) ? 1 : 0), __extension__ ({ if (
# 450 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/core/functions.h"
(double)timer1*1 / 16000000 <= (double)1 / 100
# 450 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/core/functions.h" 3 4
) ; else __assert_fail (
# 450 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/core/functions.h"
"(double)timer1*CYCLE <= (double)DEADLINE"
# 450 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/core/functions.h" 3 4
, "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/core/functions.h", 450, __extension__ __PRETTY_FUNCTION__); }))
# 450 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/core/functions.h"
;
return sum;
}
float iirIItOutTime(float w[], float x, float a[], float b[], int Na, int Nb) {
int timer1 = 0;
float *a_ptr, *b_ptr;
float yout = 0;
a_ptr = &a[1];
b_ptr = &b[0];
int Nw = Na > Nb ? Na : Nb;
yout = (*b_ptr++ * x) + w[0];
int j;
timer1 += 105;
for (j = 0; j < Nw - 1; j++) {
w[j] = w[j + 1];
if (j < Na - 1) {
w[j] -= *a_ptr++ * yout;
timer1 += 41;
}
if (j < Nb - 1) {
w[j] += *b_ptr++ * x;
timer1 += 38;
}
timer1 += 54;
}
timer1 += 7;
# 477 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/core/functions.h" 3 4
((void) sizeof ((
# 477 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/core/functions.h"
(double)timer1*1 / 16000000 <= (double)1 / 100
# 477 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/core/functions.h" 3 4
) ? 1 : 0), __extension__ ({ if (
# 477 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/core/functions.h"
(double)timer1*1 / 16000000 <= (double)1 / 100
# 477 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/core/functions.h" 3 4
) ; else __assert_fail (
# 477 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/core/functions.h"
"(double)timer1*CYCLE <= (double)DEADLINE"
# 477 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/core/functions.h" 3 4
, "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/core/functions.h", 477, __extension__ __PRETTY_FUNCTION__); }))
# 477 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/core/functions.h"
;
return yout;
}
double iirIItOutTime_double(double w[], double x, double a[], double b[], int Na, int Nb) {
int timer1 = 0;
double *a_ptr, *b_ptr;
double yout = 0;
a_ptr = &a[1];
b_ptr = &b[0];
int Nw = Na > Nb ? Na : Nb;
yout = (*b_ptr++ * x) + w[0];
int j;
timer1 += 105;
for (j = 0; j < Nw - 1; j++) {
w[j] = w[j + 1];
if (j < Na - 1) {
w[j] -= *a_ptr++ * yout;
timer1 += 41;
}
if (j < Nb - 1) {
w[j] += *b_ptr++ * x;
timer1 += 38;
}
timer1 += 54;
}
timer1 += 7;
# 504 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/core/functions.h" 3 4
((void) sizeof ((
# 504 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/core/functions.h"
(double)timer1*1 / 16000000 <= (double)1 / 100
# 504 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/core/functions.h" 3 4
) ? 1 : 0), __extension__ ({ if (
# 504 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/core/functions.h"
(double)timer1*1 / 16000000 <= (double)1 / 100
# 504 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/core/functions.h" 3 4
) ; else __assert_fail (
# 504 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/core/functions.h"
"(double)timer1*CYCLE <= (double)DEADLINE"
# 504 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/core/functions.h" 3 4
, "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/core/functions.h", 504, __extension__ __PRETTY_FUNCTION__); }))
# 504 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/core/functions.h"
;
return yout;
}
void iirOutBoth(float yf[], float xf[], float af[], float bf[], float *sumf_ref,
fxp_t y[], fxp_t x[], fxp_t a[], fxp_t b[], fxp_t *sum_ref, int Na, int Nb) {
fxp_t *a_ptr, *y_ptr, *b_ptr, *x_ptr;
float *af_ptr, *yf_ptr, *bf_ptr, *xf_ptr;
fxp_t sum = 0;
float sumf = 0;
a_ptr = &a[1];
y_ptr = &y[Na - 1];
b_ptr = &b[0];
x_ptr = &x[Nb - 1];
af_ptr = &af[1];
yf_ptr = &yf[Na - 1];
bf_ptr = &bf[0];
xf_ptr = &xf[Nb - 1];
int i, j;
for (i = 0; i < Nb; i++) {
sum = fxp_add(sum, fxp_mult(*b_ptr++, *x_ptr--));
sumf += *bf_ptr++ * *xf_ptr--;
}
for (j = 1; j < Na; j++) {
sum = fxp_sub(sum, fxp_mult(*a_ptr++, *y_ptr--));
sumf -= *af_ptr++ * *yf_ptr--;
}
*sum_ref = sum;
*sumf_ref = sumf;
}
fxp_t iirOutFixedL(fxp_t y[], fxp_t x[], fxp_t xin, fxp_t a[], fxp_t b[], int Na, int Nb) {
fxp_t *a_ptr, *y_ptr, *b_ptr, *x_ptr;
fxp_t sum = 0;
a_ptr = &a[Na - 1];
y_ptr = &y[1];
b_ptr = &b[Nb - 1];
x_ptr = &x[0];
int i, j;
for (i = 0; i < Nb - 1; i++) {
x[i] = x[i+1];
sum = fxp_add(sum, fxp_mult(*b_ptr--, *x_ptr++));
}
x[Nb - 1] = xin;
sum = fxp_add(sum, fxp_mult(*b_ptr--, *x_ptr++));
for (j = 1; j < Na - 1; j++) {
sum = fxp_sub(sum, fxp_mult(*a_ptr--, *y_ptr++));
y[j] = y[j+1];
}
if(Na>1) sum = fxp_sub(sum, fxp_mult(*a_ptr--, *y_ptr++));
y[Na - 1] = sum;
return sum;
}
float iirOutFloatL(float y[], float x[], float xin, float a[], float b[], int Na, int Nb) {
float *a_ptr, *y_ptr, *b_ptr, *x_ptr;
float sum = 0;
a_ptr = &a[Na - 1];
y_ptr = &y[1];
b_ptr = &b[Nb - 1];
x_ptr = &x[0];
int i, j;
for (i = 0; i < Nb - 1; i++) {
x[i] = x[i+1];
sum += *b_ptr-- * *x_ptr++;
}
x[Nb - 1] = xin;
sum += *b_ptr-- * *x_ptr++;
for (j = 1; j < Na - 1; j++) {
sum -= *a_ptr-- * *y_ptr++;
y[j] = y[j+1];
}
if(Na>1) sum -= *a_ptr-- * *y_ptr++;
y[Na - 1] = sum;
return sum;
}
float iirOutBothL(float yf[], float xf[], float af[], float bf[], float xfin,
fxp_t y[], fxp_t x[], fxp_t a[], fxp_t b[], fxp_t xin, int Na, int Nb) {
fxp_t *a_ptr, *y_ptr, *b_ptr, *x_ptr;
fxp_t sum = 0;
a_ptr = &a[Na - 1];
y_ptr = &y[1];
b_ptr = &b[Nb - 1];
x_ptr = &x[0];
float *af_ptr, *yf_ptr, *bf_ptr, *xf_ptr;
float sumf = 0;
af_ptr = &af[Na - 1];
yf_ptr = &yf[1];
bf_ptr = &bf[Nb - 1];
xf_ptr = &xf[0];
int i, j;
for (i = 0; i < Nb - 1; i++) {
x[i] = x[i+1];
sum = fxp_add(sum, fxp_mult(*b_ptr--, *x_ptr++));
xf[i] = xf[i+1];
sumf += *bf_ptr-- * *xf_ptr++;
}
x[Nb - 1] = xin;
sum = fxp_add(sum, fxp_mult(*b_ptr--, *x_ptr++));
xf[Nb - 1] = xfin;
sumf += *bf_ptr-- * *xf_ptr++;
for (j = 1; j < Na - 1; j++) {
sum = fxp_sub(sum, fxp_mult(*a_ptr--, *y_ptr++));
y[j] = y[j+1];
sumf -= *af_ptr-- * *yf_ptr++;
yf[j] = yf[j+1];
}
if(Na>1) sum = fxp_sub(sum, fxp_mult(*a_ptr--, *y_ptr++));
y[Na - 1] = sum;
if(Na>1) sumf -= *af_ptr-- * *yf_ptr++;
yf[Na - 1] = sumf;
return fxp_to_float(sum) - sumf;
}
float iirOutBothL2(float yf[], float xf[], float af[], float bf[], float xfin,
fxp_t y[], fxp_t x[], fxp_t a[], fxp_t b[], fxp_t xin, int Na, int Nb) {
fxp_t *a_ptr, *y_ptr, *b_ptr, *x_ptr;
fxp_t sum = 0;
a_ptr = &a[Na - 1];
y_ptr = &y[1];
b_ptr = &b[Nb - 1];
x_ptr = &x[0];
float *af_ptr, *yf_ptr, *bf_ptr, *xf_ptr;
float sumf = 0;
af_ptr = &af[Na - 1];
yf_ptr = &yf[1];
bf_ptr = &bf[Nb - 1];
xf_ptr = &xf[0];
int i=0, j=1;
for (i = 0; i < Nb - 1; i++) {
x[i] = x[i+1];
sum = fxp_add(sum, fxp_mult(b[Nb - 1 - i], x[i]));
xf[i] = xf[i+1];
sumf += bf[Nb - 1 - i] * xf[i];
}
x[Nb - 1] = xin;
sum = fxp_add(sum, fxp_mult(b[Nb - 1 - i], x[i]));
xf[Nb - 1] = xfin;
sumf += bf[Nb - 1 - i] * xf[i];
for (j = 1; j < Na - 1; j++) {
sum = fxp_sub(sum, fxp_mult(a[Na - j], y[j]));
y[j] = y[j+1];
sumf -= af[Na - j] * yf[j];
yf[j] = yf[j+1];
}
if(Na>1) sum = fxp_sub(sum, fxp_mult(a[Na - j], y[j]));
y[Na - 1] = sum;
if(Na>1) sumf -= af[Na - j] * yf[j];
yf[Na - 1] = sumf;
return fxp_to_float(sum) - sumf;
}
# 25 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/dsverifier.h" 2
# 1 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/core/realizations.h" 1
# 19 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/core/realizations.h"
extern digital_system ds;
extern hardware hw;
extern int generic_timer;
fxp_t fxp_direct_form_1(fxp_t y[], fxp_t x[], fxp_t a[], fxp_t b[], int Na, int Nb) {
fxp_t *a_ptr, *y_ptr, *b_ptr, *x_ptr;
fxp_t sum = 0;
a_ptr = &a[1];
y_ptr = &y[Na - 1];
b_ptr = &b[0];
x_ptr = &x[Nb - 1];
int i, j;
for (i = 0; i < Nb; i++) {
sum = fxp_add(sum, fxp_mult(*b_ptr++, *x_ptr--));
}
for (j = 1; j < Na; j++) {
sum = fxp_sub(sum, fxp_mult(*a_ptr++, *y_ptr--));
}
fxp_verify_overflow_node(sum, "An Overflow Occurred in the node a0");
sum = fxp_div(sum,a[0]);
return fxp_quantize(sum);
}
fxp_t fxp_direct_form_2(fxp_t w[], fxp_t x, fxp_t a[], fxp_t b[], int Na, int Nb) {
fxp_t *a_ptr, *b_ptr, *w_ptr;
fxp_t sum = 0;
a_ptr = &a[1];
b_ptr = &b[0];
w_ptr = &w[1];
int k, j;
for (j = 1; j < Na; j++) {
w[0] = fxp_sub(w[0], fxp_mult(*a_ptr++, *w_ptr++));
}
w[0] = fxp_add(w[0], x);
w[0] = fxp_div(w[0], a[0]);
fxp_verify_overflow_node(w[0], "An Overflow Occurred in the node b0");
w_ptr = &w[0];
for (k = 0; k < Nb; k++) {
sum = fxp_add(sum, fxp_mult(*b_ptr++, *w_ptr++));
}
return fxp_quantize(sum);
}
fxp_t fxp_transposed_direct_form_2(fxp_t w[], fxp_t x, fxp_t a[], fxp_t b[], int Na, int Nb) {
fxp_t *a_ptr, *b_ptr;
fxp_t yout = 0;
a_ptr = &a[1];
b_ptr = &b[0];
int Nw = Na > Nb ? Na : Nb;
yout = fxp_add(fxp_mult(*b_ptr++, x), w[0]);
yout = fxp_div(yout, a[0]);
int j;
for (j = 0; j < Nw - 1; j++) {
w[j] = w[j + 1];
if (j < Na - 1) {
w[j] = fxp_sub(w[j], fxp_mult(*a_ptr++, yout));
}
if (j < Nb - 1) {
w[j] = fxp_add(w[j], fxp_mult(*b_ptr++, x));
}
}
fxp_verify_overflow_node(w[j], "An Overflow Occurred in the node a0");
return fxp_quantize(yout);
}
double double_direct_form_1(double y[], double x[], double a[], double b[], int Na, int Nb) {
double *a_ptr, *y_ptr, *b_ptr, *x_ptr;
double sum = 0;
a_ptr = &a[1];
y_ptr = &y[Na - 1];
b_ptr = &b[0];
x_ptr = &x[Nb - 1];
int i, j;
for (i = 0; i < Nb; i++) {
sum += *b_ptr++ * *x_ptr--;
}
for (j = 1; j < Na; j++) {
sum -= *a_ptr++ * *y_ptr--;
}
sum = (sum / a[0]);
return sum;
}
double double_direct_form_2(double w[], double x, double a[], double b[], int Na, int Nb) {
double *a_ptr, *b_ptr, *w_ptr;
double sum = 0;
a_ptr = &a[1];
b_ptr = &b[0];
w_ptr = &w[1];
int k, j;
for (j = 1; j < Na; j++) {
w[0] -= *a_ptr++ * *w_ptr++;
}
w[0] += x;
w[0] = w[0] / a[0];
w_ptr = &w[0];
for (k = 0; k < Nb; k++) {
sum += *b_ptr++ * *w_ptr++;
}
return sum;
}
double double_transposed_direct_form_2(double w[], double x, double a[], double b[], int Na, int Nb) {
double *a_ptr, *b_ptr;
double yout = 0;
a_ptr = &a[1];
b_ptr = &b[0];
int Nw = Na > Nb ? Na : Nb;
yout = (*b_ptr++ * x) + w[0];
yout = yout / a[0];
int j;
for (j = 0; j < Nw - 1; j++) {
w[j] = w[j + 1];
if (j < Na - 1) {
w[j] -= *a_ptr++ * yout;
}
if (j < Nb - 1) {
w[j] += *b_ptr++ * x;
}
}
return yout;
}
float float_direct_form_1(float y[], float x[], float a[], float b[], int Na, int Nb) {
float *a_ptr, *y_ptr, *b_ptr, *x_ptr;
float sum = 0;
a_ptr = &a[1];
y_ptr = &y[Na - 1];
b_ptr = &b[0];
x_ptr = &x[Nb - 1];
int i, j;
for (i = 0; i < Nb; i++) {
sum += *b_ptr++ * *x_ptr--;
}
for (j = 1; j < Na; j++) {
sum -= *a_ptr++ * *y_ptr--;
}
sum = (sum / a[0]);
return sum;
}
float float_direct_form_2(float w[], float x, float a[], float b[], int Na, int Nb) {
float *a_ptr, *b_ptr, *w_ptr;
float sum = 0;
a_ptr = &a[1];
b_ptr = &b[0];
w_ptr = &w[1];
int k, j;
for (j = 1; j < Na; j++) {
w[0] -= *a_ptr++ * *w_ptr++;
}
w[0] += x;
w[0] = w[0] / a[0];
w_ptr = &w[0];
for (k = 0; k < Nb; k++) {
sum += *b_ptr++ * *w_ptr++;
}
return sum;
}
float float_transposed_direct_form_2(float w[], float x, float a[], float b[], int Na, int Nb) {
float *a_ptr, *b_ptr;
float yout = 0;
a_ptr = &a[1];
b_ptr = &b[0];
int Nw = Na > Nb ? Na : Nb;
yout = (*b_ptr++ * x) + w[0];
yout = yout / a[0];
int j;
for (j = 0; j < Nw - 1; j++) {
w[j] = w[j + 1];
if (j < Na - 1) {
w[j] -= *a_ptr++ * yout;
}
if (j < Nb - 1) {
w[j] += *b_ptr++ * x;
}
}
return yout;
}
double double_direct_form_1_MSP430(double y[], double x[], double a[], double b[], int Na, int Nb){
int timer1 = 0;
double *a_ptr, *y_ptr, *b_ptr, *x_ptr;
double sum = 0;
a_ptr = &a[1];
y_ptr = &y[Na-1];
b_ptr = &b[0];
x_ptr = &x[Nb-1];
int i, j;
timer1 += 91;
for (i = 0; i < Nb; i++){
sum += *b_ptr++ * *x_ptr--;
timer1 += 47;
}
for (j = 1; j < Na; j++){
sum -= *a_ptr++ * *y_ptr--;
timer1 += 57;
}
timer1 += 3;
# 235 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/core/realizations.h" 3 4
((void) sizeof ((
# 235 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/core/realizations.h"
(double) timer1 * hw.cycle <= ds.sample_time
# 235 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/core/realizations.h" 3 4
) ? 1 : 0), __extension__ ({ if (
# 235 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/core/realizations.h"
(double) timer1 * hw.cycle <= ds.sample_time
# 235 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/core/realizations.h" 3 4
) ; else __assert_fail (
# 235 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/core/realizations.h"
"(double) timer1 * hw.cycle <= ds.sample_time"
# 235 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/core/realizations.h" 3 4
, "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/core/realizations.h", 235, __extension__ __PRETTY_FUNCTION__); }))
# 235 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/core/realizations.h"
;
return sum;
}
double double_direct_form_2_MSP430(double w[], double x, double a[], double b[], int Na, int Nb) {
int timer1 = 0;
double *a_ptr, *b_ptr, *w_ptr;
double sum = 0;
a_ptr = &a[1];
b_ptr = &b[0];
w_ptr = &w[1];
int k, j;
timer1 += 71;
for (j = 1; j < Na; j++) {
w[0] -= *a_ptr++ * *w_ptr++;
timer1 += 54;
}
w[0] += x;
w[0] = w[0] / a[0];
w_ptr = &w[0];
for (k = 0; k < Nb; k++) {
sum += *b_ptr++ * *w_ptr++;
timer1 += 46;
}
timer1 += 38;
# 262 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/core/realizations.h" 3 4
((void) sizeof ((
# 262 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/core/realizations.h"
(double) timer1 * hw.cycle <= ds.sample_time
# 262 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/core/realizations.h" 3 4
) ? 1 : 0), __extension__ ({ if (
# 262 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/core/realizations.h"
(double) timer1 * hw.cycle <= ds.sample_time
# 262 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/core/realizations.h" 3 4
) ; else __assert_fail (
# 262 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/core/realizations.h"
"(double) timer1 * hw.cycle <= ds.sample_time"
# 262 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/core/realizations.h" 3 4
, "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/core/realizations.h", 262, __extension__ __PRETTY_FUNCTION__); }))
# 262 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/core/realizations.h"
;
return sum;
}
double double_transposed_direct_form_2_MSP430(double w[], double x, double a[], double b[], int Na, int Nb) {
int timer1 = 0;
double *a_ptr, *b_ptr;
double yout = 0;
a_ptr = &a[1];
b_ptr = &b[0];
int Nw = Na > Nb ? Na : Nb;
yout = (*b_ptr++ * x) + w[0];
int j;
timer1 += 105;
for (j = 0; j < Nw - 1; j++) {
w[j] = w[j + 1];
if (j < Na - 1) {
w[j] -= *a_ptr++ * yout;
timer1 += 41;
}
if (j < Nb - 1) {
w[j] += *b_ptr++ * x;
timer1 += 38;
}
timer1 += 54;
}
timer1 += 7;
# 291 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/core/realizations.h" 3 4
((void) sizeof ((
# 291 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/core/realizations.h"
(double) timer1 * hw.cycle <= ds.sample_time
# 291 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/core/realizations.h" 3 4
) ? 1 : 0), __extension__ ({ if (
# 291 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/core/realizations.h"
(double) timer1 * hw.cycle <= ds.sample_time
# 291 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/core/realizations.h" 3 4
) ; else __assert_fail (
# 291 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/core/realizations.h"
"(double) timer1 * hw.cycle <= ds.sample_time"
# 291 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/core/realizations.h" 3 4
, "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/core/realizations.h", 291, __extension__ __PRETTY_FUNCTION__); }))
# 291 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/core/realizations.h"
;
return yout;
}
double generic_timing_double_direct_form_1(double y[], double x[], double a[], double b[], int Na, int Nb){
generic_timer += ((6 * hw.assembly.push) + (3 * hw.assembly.in) + (1 * hw.assembly.sbiw) + (1 * hw.assembly.cli) + (3 * hw.assembly.out) + (12 * hw.assembly.std));
double *a_ptr, *y_ptr, *b_ptr, *x_ptr;
double sum = 0;
a_ptr = &a[1];
y_ptr = &y[Na-1];
b_ptr = &b[0];
x_ptr = &x[Nb-1];
generic_timer += ((12 * hw.assembly.std) + (12 * hw.assembly.ldd) + (2 * hw.assembly.subi) + (2 * hw.assembly.sbci) + (4 * hw.assembly.lsl) + (4 * hw.assembly.rol) + (2 * hw.assembly.add) + (2 * hw.assembly.adc) + (1 * hw.assembly.adiw));
int i, j;
generic_timer += ((2 * hw.assembly.std) + (1 * hw.assembly.rjmp));
for (i = 0; i < Nb; i++){
generic_timer += ((20 * hw.assembly.ldd) + (24 * hw.assembly.mov) + (2 * hw.assembly.subi) + (1 * hw.assembly.sbci) + (1 * hw.assembly.sbc) + (10 * hw.assembly.std) + (2 * hw.assembly.ld) + (2 * hw.assembly.rcall) + (1 * hw.assembly.adiw) + (1 * hw.assembly.cp) + (1 * hw.assembly.cpc) + (1 * hw.assembly.adiw) + (1 * hw.assembly.brge) + (1 * hw.assembly.rjmp));
sum += *b_ptr++ * *x_ptr--;
}
generic_timer += ((2 * hw.assembly.ldi) + (2 * hw.assembly.std) + (1 * hw.assembly.rjmp));
for (j = 1; j < Na; j++){
generic_timer += ((22 * hw.assembly.ldd) + (24 * hw.assembly.mov) + (2 * hw.assembly.subi) + (8 * hw.assembly.std) + (1 * hw.assembly.sbci) + (2 * hw.assembly.ld) + (2 * hw.assembly.rcall) + (1 * hw.assembly.sbc) + (1 * hw.assembly.adiw) + (1 * hw.assembly.cp) + (1 * hw.assembly.cpc) + (1 * hw.assembly.adiw) + (1 * hw.assembly.brge) + (1 * hw.assembly.rjmp));
sum -= *a_ptr++ * *y_ptr--;
}
generic_timer += ((4 * hw.assembly.ldd) + (4 * hw.assembly.mov) + (1 * hw.assembly.adiw) + (1 * hw.assembly.in) + (1 * hw.assembly.cli) + (3 * hw.assembly.out) + (6 * hw.assembly.pop) + (1 * hw.assembly.ret));
return sum;
}
double generic_timing_double_direct_form_2(double w[], double x, double a[], double b[], int Na, int Nb) {
generic_timer += ((8 * hw.assembly.push) + (14 * hw.assembly.std) + (3 * hw.assembly.out) + (3 * hw.assembly.in) + (1 * hw.assembly.sbiw) + (1 * hw.assembly.cli));
double *a_ptr, *b_ptr, *w_ptr;
double sum = 0;
a_ptr = &a[1];
b_ptr = &b[0];
w_ptr = &w[1];
int k, j;
generic_timer += ((10 * hw.assembly.std) + (6 * hw.assembly.ldd) + (2 * hw.assembly.adiw));
generic_timer += ((2 * hw.assembly.ldi) + (2 * hw.assembly.std) + (1 * hw.assembly.rjmp));
for (j = 1; j < Na; j++) {
w[0] -= *a_ptr++ * *w_ptr++;
generic_timer += ((23 * hw.assembly.ldd) + (32 * hw.assembly.mov) + (9 * hw.assembly.std) + (2 * hw.assembly.subi) + (3 * hw.assembly.ld) + (2 * hw.assembly.rcall) + (2 * hw.assembly.sbci) + (1 * hw.assembly.st) + (1 * hw.assembly.adiw) + (1 * hw.assembly.cp) + (1 * hw.assembly.cpc) + (1 * hw.assembly.brge));
}
w[0] += x;
w_ptr = &w[0];
generic_timer += ((13 * hw.assembly.ldd) + (12 * hw.assembly.mov) + (5 * hw.assembly.std) + (1 * hw.assembly.st) + (1 * hw.assembly.ld) + (1 * hw.assembly.rcall));
generic_timer += ((2 * hw.assembly.std) + (1 * hw.assembly.rjmp));
for (k = 0; k < Nb; k++) {
sum += *b_ptr++ * *w_ptr++;
generic_timer += ((20 * hw.assembly.ldd) + (24 * hw.assembly.mov) + (10 * hw.assembly.std) + (2 * hw.assembly.rcall) + (2 * hw.assembly.ld) + (2 * hw.assembly.subi) + (2 * hw.assembly.sbci) + (1 * hw.assembly.adiw) + (1 * hw.assembly.cp) + (1 * hw.assembly.cpc) + (1 * hw.assembly.brge) + (1 * hw.assembly.rjmp));
}
generic_timer += ((4 * hw.assembly.ldd) + (4 * hw.assembly.mov) + (1 * hw.assembly.adiw) + (1 * hw.assembly.in) + (1 * hw.assembly.cli) + (3 * hw.assembly.out) + (8 * hw.assembly.pop) + (1 * hw.assembly.ret));
return sum;
}
double generic_timing_double_transposed_direct_form_2(double w[], double x, double a[], double b[], int Na, int Nb) {
generic_timer += ((8 * hw.assembly.push) + (14 * hw.assembly.std) + (3 * hw.assembly.out) + (3 * hw.assembly.in) + (1 * hw.assembly.sbiw) + (1 * hw.assembly.cli));
double *a_ptr, *b_ptr;
double yout = 0;
a_ptr = &a[1];
b_ptr = &b[0];
int Nw = Na > Nb ? Na : Nb;
yout = (*b_ptr++ * x) + w[0];
int j;
generic_timer += ((15 * hw.assembly.std) + (22 * hw.assembly.ldd) + (24 * hw.assembly.mov) + (2 * hw.assembly.rcall) + (2 * hw.assembly.ld) + (1 * hw.assembly.cp) + (1 * hw.assembly.cpc) + (1 * hw.assembly.subi) + (1 * hw.assembly.sbci) + (1 * hw.assembly.brge) + (1 * hw.assembly.adiw));
generic_timer += ((2 * hw.assembly.std) + (1 * hw.assembly.rjmp));
for (j = 0; j < Nw - 1; j++) {
w[j] = w[j + 1];
if (j < Na - 1) {
w[j] -= *a_ptr++ * yout;
}
if (j < Nb - 1) {
w[j] += *b_ptr++ * x;
}
generic_timer += ((70 * hw.assembly.mov) + (65 * hw.assembly.ldd) + (12 * hw.assembly.lsl) + (12 * hw.assembly.rol) + (15 * hw.assembly.std) + (6 * hw.assembly.add) + (6 * hw.assembly.adc) + (2 * hw.assembly.adiw) + (3 * hw.assembly.cpc) + (3 * hw.assembly.cp) + (5 * hw.assembly.ld) + (4 * hw.assembly.rcall) + (5 * hw.assembly.subi) + (3 * hw.assembly.rjmp) + (2 * hw.assembly.brlt) + (3 * hw.assembly.st) + (2 * hw.assembly.sbci) + (3 * hw.assembly.sbc) + (1 * hw.assembly.brge));
}
generic_timer += ((4 * hw.assembly.ldd) + (4 * hw.assembly.mov) + (8 * hw.assembly.pop) + (3 * hw.assembly.out) + (1 * hw.assembly.in) + (1 * hw.assembly.cli) + (1 * hw.assembly.adiw) + (1 * hw.assembly.ret));
return yout;
}
void double_direct_form_1_impl2(double x[], int x_size, double b[], int b_size, double a[], int a_size, double y[]){
int i = 0; int j = 0;
double v[x_size];
for(i = 0; i < x_size; i++){
v[i] = 0;
for(j = 0; j < b_size; j++){
if (j > i) break;
v[i] = v[i] + x[i-j] * b[j];
}
}
y[0] = v[0];
for(i = 1; i < x_size; i++){
y[i] = 0;
y[i] = y[i] + v[i];
for(j = 1; j < a_size; j++){
if (j > i) break;
y[i] = y[i] + y[i-j] * ((-1) * a[j]);
}
}
}
void fxp_direct_form_1_impl2(fxp_t x[], int x_size, fxp_t b[], int b_size, fxp_t a[], int a_size, fxp_t y[]){
int i = 0; int j = 0;
fxp_t v[x_size];
for(i = 0; i < x_size; i++){
v[i] = 0;
for(j = 0; j < b_size; j++){
if (j > i) break;
v[i] = fxp_add(v[i], fxp_mult(x[i-j], b[j]));
}
}
y[0] = v[0];
for(i = 1; i < x_size; i++){
y[i] = 0;
y[i] = fxp_add(y[i], v[i]);
for(j = 1; j < a_size; j++){
if (j > i) break;
y[i] = fxp_add(y[i], fxp_mult(y[i-j] , -a[j]));
}
}
}
# 26 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/dsverifier.h" 2
# 1 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/core/delta-operator.h" 1
# 19 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/core/delta-operator.h"
# 1 "/usr/include/assert.h" 1 3 4
# 20 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/core/delta-operator.h" 2
# 1 "/usr/include/assert.h" 1 3 4
# 23 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/core/delta-operator.h" 2
int nchoosek(int n, int k){
if (k == 0)
return 1;
return (n * nchoosek(n - 1, k - 1)) / k;
}
void generate_delta_coefficients(double vetor[], double out[], int n, double delta){
int i,j;
int N = n - 1;
double sum_delta_operator;
for(i=0; i<=N; i++)
{
sum_delta_operator = 0;
for(j=0; j<=i; j++)
{
sum_delta_operator = sum_delta_operator + vetor[j]*nchoosek(N-j,i-j);
}
out[i] = internal_pow(delta,N-i)*sum_delta_operator;
}
}
void get_delta_transfer_function(double b[], double b_out[], int b_size, double a[], double a_out[], int a_size, double delta){
generate_delta_coefficients(b, b_out, b_size, delta);
generate_delta_coefficients(a, a_out, a_size, delta);
}
void get_delta_transfer_function_with_base(double b[], double b_out[], int b_size, double a[], double a_out[], int a_size, double delta){
int i,j;
int N = a_size - 1;
int M = b_size - 1;
double sum_delta_operator;
for(i=0; i<=N; i++)
{
sum_delta_operator = 0;
for(j=0; j<=i; j++)
{
sum_delta_operator = sum_delta_operator + a[j]*nchoosek(N-j,i-j);
}
a_out[i] = internal_pow(delta,N-i)*sum_delta_operator;
}
for(i=0; i<=M; i++)
{
sum_delta_operator = 0;
for(j=0; j<=i; j++)
{
sum_delta_operator = sum_delta_operator + b[j]*nchoosek(M-j,i-j);
}
b_out[i] = internal_pow(delta,M-i)*sum_delta_operator;
}
}
# 27 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/dsverifier.h" 2
# 1 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/core/closed-loop.h" 1
# 28 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/core/closed-loop.h"
void ft_closedloop_series(double c_num[], int Nc_num, double c_den[], int Nc_den, double model_num[], int Nmodel_num, double model_den[], int Nmodel_den, double ans_num[], int Nans_num, double ans_den[], int Nans_den){
Nans_num = Nc_num + Nmodel_num - 1;
Nans_den = Nc_den + Nmodel_den - 1 ;
double den_mult [Nans_den];
poly_mult(c_num, Nc_num, model_num, Nmodel_num, ans_num, Nans_num);
poly_mult(c_den, Nc_den, model_den, Nmodel_den, den_mult, Nans_den );
poly_sum(ans_num, Nans_num , den_mult, Nans_den , ans_den, Nans_den);
}
void ft_closedloop_sensitivity(double c_num[], int Nc_num, double c_den[], int Nc_den, double model_num[], int Nmodel_num, double model_den[], int Nmodel_den, double ans_num[], int Nans_num, double ans_den[], int Nans_den){
int Nans_num_p = Nc_num + Nmodel_num-1;
Nans_den = Nc_den + Nmodel_den-1;
Nans_num = Nc_den + Nmodel_den-1;
double num_mult [Nans_num_p];
poly_mult(c_den, Nc_den, model_den, Nmodel_den, ans_num, Nans_num);
poly_mult(c_num, Nc_num, model_num, Nmodel_num, num_mult, Nans_num_p);
poly_sum(ans_num, Nans_num, num_mult, Nans_num_p, ans_den, Nans_den);
}
void ft_closedloop_feedback(double c_num[], int Nc_num, double c_den[], int Nc_den, double model_num[], int Nmodel_num, double model_den[], int Nmodel_den, double ans_num[], int Nans_num, double ans_den[], int Nans_den){
Nans_num = Nc_den + Nmodel_num - 1;
Nans_den = Nc_den + Nmodel_den - 1;
int Nnum_mult = Nc_num + Nmodel_num - 1;
double den_mult [Nans_den];
double num_mult [Nnum_mult];
poly_mult(c_num, Nc_num, model_num, Nmodel_num, num_mult, Nnum_mult);
poly_mult(c_den, Nc_den, model_den, Nmodel_den, den_mult, Nans_den);
poly_sum(num_mult, Nnum_mult, den_mult, Nans_den, ans_den, Nans_den);
poly_mult(c_den, Nc_den, model_num, Nmodel_num, ans_num, Nans_num);
}
int check_stability_closedloop(double a[], int n, double plant_num[], int p_num_size, double plant_den[], int p_den_size){
int columns = n;
double m[2 * n - 1][n];
int i,j;
int first_is_positive = 0;
double * p_num = plant_num;
double * p_den = plant_den;
double sum = 0;
for (i=0; i < n; i++){
sum += a[i];
}
__DSVERIFIER_assert(sum > 0);
sum = 0;
for (i=0; i < n; i++){
sum += a[i] * internal_pow(-1, n-1-i);
}
sum = sum * internal_pow(-1, n-1);
__DSVERIFIER_assert(sum > 0);
__DSVERIFIER_assert(internal_abs(a[n-1]) < a[0]);
for (i=0; i < 2 * n - 1; i++){
for (j=0; j < columns; j++){
m[i][j] = 0;
if (i == 0){
m[i][j] = a[j];
continue;
}
if (i % 2 != 0 ){
int x;
for(x=0; x<columns;x++){
m[i][x] = m[i-1][columns-x-1];
}
columns = columns - 1;
j = columns;
}else{
__DSVERIFIER_assert(m[i-2][0] > 0);
m[i][j] = m[i-2][j] - (m[i-2][columns] / m[i-2][0]) * m[i-1][j];
__DSVERIFIER_assert((m[0][0] >= 0) && (m[i][0] >= 0));
}
}
}
return 1;
}
# 28 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/dsverifier.h" 2
# 1 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/core/initialization.h" 1
# 17 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/core/initialization.h"
extern digital_system ds;
extern digital_system plant;
extern digital_system control;
extern implementation impl;
extern filter_parameters filter;
extern hardware hw;
void initialization(){
if (impl.frac_bits >= 32){
printf("impl.frac_bits must be less than word width!\n");
}
if (impl.int_bits >= 32 - impl.frac_bits){
printf("impl.int_bits must be less than word width subtracted by precision!\n");
# 33 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/core/initialization.h" 3 4
((void) sizeof ((
# 33 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/core/initialization.h"
0
# 33 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/core/initialization.h" 3 4
) ? 1 : 0), __extension__ ({ if (
# 33 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/core/initialization.h"
0
# 33 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/core/initialization.h" 3 4
) ; else __assert_fail (
# 33 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/core/initialization.h"
"0"
# 33 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/core/initialization.h" 3 4
, "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/core/initialization.h", 33, __extension__ __PRETTY_FUNCTION__); }))
# 33 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/core/initialization.h"
;
}
if(impl.frac_bits >= 31){
_fxp_one = 0x7fffffff;
}else{
_fxp_one = (0x00000001 << impl.frac_bits);
}
_fxp_half = (0x00000001 << (impl.frac_bits - 1));
_fxp_minus_one = -(0x00000001 << impl.frac_bits);
_fxp_min = -(0x00000001 << (impl.frac_bits + impl.int_bits - 1));
_fxp_max = (0x00000001 << (impl.frac_bits + impl.int_bits - 1)) - 1;
_fxp_fmask = ((((int32_t) 1) << impl.frac_bits) - 1);
_fxp_imask = ((0x80000000) >> (32 - impl.frac_bits - 1));
_dbl_min = _fxp_min;
_dbl_min /= (1 << impl.frac_bits);
_dbl_max = _fxp_max;
_dbl_max /= (1 << impl.frac_bits);
if ((impl.scale == 0) || (impl.scale == 1)){
impl.scale = 1;
return;
}
if (impl.min != 0){
impl.min = impl.min / impl.scale;
}
if (impl.max != 0){
impl.max = impl.max / impl.scale;
}
# 80 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/core/initialization.h"
}
# 29 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/dsverifier.h" 2
# 1 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/core/state-space.h" 1
# 19 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/core/state-space.h"
extern digital_system_state_space _controller;
extern int nStates;
extern int nInputs;
extern int nOutputs;
double double_state_space_representation(void){
double result1[4][4];
double result2[4][4];
int i, j;
for(i=0; i<4;i++){
for(j=0; j<4;j++){
result1[i][j]=0;
result2[i][j]=0;
}
}
double_matrix_multiplication(nOutputs,nStates,nStates,1,_controller.C,_controller.states,result1);
double_matrix_multiplication(nOutputs,nInputs,nInputs,1,_controller.D,_controller.inputs,result2);
double_add_matrix(nOutputs,
1,
result1,
result2,
_controller.outputs);
double_matrix_multiplication(nStates,nStates,nStates,1,_controller.A,_controller.states,result1);
double_matrix_multiplication(nStates,nInputs,nInputs,1,_controller.B,_controller.inputs,result2);
double_add_matrix(nStates,
1,
result1,
result2,
_controller.states);
return _controller.outputs[0][0];
}
double fxp_state_space_representation(void){
fxp_t result1[4][4];
fxp_t result2[4][4];
int i, j;
for(i=0; i<4;i++){
for(j=0; j<4;j++){
result1[i][j]=0;
result2[i][j]=0;
}
}
fxp_t A_fpx[4][4];
fxp_t B_fpx[4][4];
fxp_t C_fpx[4][4];
fxp_t D_fpx[4][4];
fxp_t states_fpx[4][4];
fxp_t inputs_fpx[4][4];
fxp_t outputs_fpx[4][4];
for(i=0; i<4;i++){
for(j=0; j<4;j++){
A_fpx[i][j]=0;
}
}
for(i=0; i<4;i++){
for(j=0; j<4;j++){
B_fpx[i][j]=0;
}
}
for(i=0; i<4;i++){
for(j=0; j<4;j++){
C_fpx[i][j]=0;
}
}
for(i=0; i<4;i++){
for(j=0; j<4;j++){
D_fpx[i][j]=0;
}
}
for(i=0; i<4;i++){
for(j=0; j<4;j++){
states_fpx[i][j]=0;
}
}
for(i=0; i<4;i++){
for(j=0; j<4;j++){
inputs_fpx[i][j]=0;
}
}
for(i=0; i<4;i++){
for(j=0; j<4;j++){
outputs_fpx[i][j]=0;
}
}
for(i=0; i<nStates;i++){
for(j=0; j<nStates;j++){
A_fpx[i][j]= fxp_double_to_fxp(_controller.A[i][j]);
}
}
for(i=0; i<nStates;i++){
for(j=0; j<nInputs;j++){
B_fpx[i][j]= fxp_double_to_fxp(_controller.B[i][j]);
}
}
for(i=0; i<nOutputs;i++){
for(j=0; j<nStates;j++){
C_fpx[i][j]= fxp_double_to_fxp(_controller.C[i][j]);
}
}
for(i=0; i<nOutputs;i++){
for(j=0; j<nInputs;j++){
D_fpx[i][j]= fxp_double_to_fxp(_controller.D[i][j]);
}
}
for(i=0; i<nStates;i++){
for(j=0; j<1;j++){
states_fpx[i][j]= fxp_double_to_fxp(_controller.states[i][j]);
}
}
for(i=0; i<nInputs;i++){
for(j=0; j<1;j++){
inputs_fpx[i][j]= fxp_double_to_fxp(_controller.inputs[i][j]);
}
}
for(i=0; i<nOutputs;i++){
for(j=0; j<1;j++){
outputs_fpx[i][j]= fxp_double_to_fxp(_controller.outputs[i][j]);
}
}
fxp_matrix_multiplication(nOutputs,nStates,nStates,1,C_fpx,states_fpx,result1);
fxp_matrix_multiplication(nOutputs,nInputs,nInputs,1,D_fpx,inputs_fpx,result2);
fxp_add_matrix(nOutputs,
1,
result1,
result2,
outputs_fpx);
fxp_matrix_multiplication(nStates,nStates,nStates,1,A_fpx,states_fpx,result1);
fxp_matrix_multiplication(nStates,nInputs,nInputs,1,B_fpx,inputs_fpx,result2);
fxp_add_matrix(nStates,
1,
result1,
result2,
states_fpx);
for(i=0; i<nStates;i++){
for(j=0; j<1;j++){
_controller.states[i][j]= fxp_to_double(states_fpx[i][j]);
}
}
for(i=0; i<nOutputs;i++){
for(j=0; j<1;j++){
_controller.outputs[i][j]= fxp_to_double(outputs_fpx[i][j]);
}
}
return _controller.outputs[0][0];
}
# 30 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/dsverifier.h" 2
# 1 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/core/filter_functions.h" 1
# 20 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/core/filter_functions.h"
double sinTyl(double x, int precision){
double sine;
double xsquared = x*x;
double aux;
if (precision < 0)
{
printf("Warning: Function sinTyl from bmc/core/filter_functions.h: "
"Precision must be a positive integer. Assuming 0 precision\n");
precision = 0;
}
if (precision >= 0)
{
aux = 0;
sine = aux;
if (precision >= 1)
{
aux = x;
sine += aux;
if (precision >= 2)
{
aux = aux*xsquared;
sine -= aux/6;
if (precision >= 3)
{
aux = aux*xsquared;
sine +=aux/120;
if(precision >=4)
{
aux = aux*xsquared;
sine -=aux/5040;
if(precision >= 5)
{
aux = aux*xsquared;
sine +=aux/362880;
if(precision >= 6)
{
aux = aux*xsquared;
sine -=aux/39916800;
if (precision >= 7)
printf("Warning: Function sinTyl "
"from bmc/core/filter_functions.h: Precision "
"representation exceeded. Assuming maximum precision of 6\n");
}
}
}
}
}
}
}
return sine;
}
double cosTyl(double x, int precision){
double cosine;
double xsquared = x*x;
double aux;
if (precision < 0)
{
printf("Warning: Function cosTyl from bmc/core/filter_functions.h: "
"Precision must be a positive integer. Assuming 0 precision\n");
precision = 0;
}
if (precision >= 0)
{
aux = 0;
cosine = aux;
if (precision >= 1)
{
aux = 1;
cosine = 1;
if (precision >= 2)
{
aux = xsquared;
cosine -= aux/2;
if (precision >= 3)
{
aux = aux*xsquared;
cosine += aux/24;
if(precision >=4)
{
aux = aux*xsquared;
cosine -=aux/720;
if(precision >= 5)
{
aux = aux*xsquared;
cosine +=aux/40320;
if(precision >= 6)
{
aux = aux*xsquared;
cosine -=aux/3628800;
if (precision >= 7) printf("Warning: Function sinTyl "
"from bmc/core/filter_functions.h: Precision "
"representation exceeded. Assuming maximum precision of 6\n");
}
}
}
}
}
}
}
return cosine;
}
double atanTyl(double x, int precision){
double atangent;
double xsquared = x*x;
double aux;
if (precision < 0)
{
printf("Warning: Function sinTyl from bmc/core/filter_functions.h: "
"Precision must be a positive integer. Assuming 0 precision\n");
precision = 0;
}
if (precision >= 0)
{
aux = 0;
atangent = aux;
if (precision >= 1)
{
aux = x;
atangent = aux;
if (precision >= 2)
{
aux = xsquared;
atangent -= aux/3;
if (precision >= 3)
{
aux = aux*xsquared;
atangent += aux/5;
if(precision >=4)
{
aux = aux*xsquared;
atangent -=aux/7;
if (precision >= 7)
printf("Warning: Function sinTyl from bmc/core/filter_functions.h: "
"Precision representation exceeded. Assuming maximum precision of 4\n");
}
}
}
}
}
return atangent;
}
float sqrt1(const float x)
{
const float xhalf = 0.5f*x;
union
{
float x;
int i;
} u;
u.x = x;
u.i = 0x5f3759df - (u.i >> 1);
return x*u.x*(1.5f - xhalf*u.x*u.x);
}
float sqrt2(const float x)
{
union
{
int i;
float x;
} u;
u.x = x;
u.i = (1<<29) + (u.i >> 1) - (1<<22);
return u.x;
}
float fabsolut(float x)
{
if (x < 0)
x = -x;
return x;
}
static float sqrt3(float val)
{
float x = val/10;
float dx;
double diff;
double min_tol = 0.00001;
int i, flag;
flag = 0;
if (val == 0 ) x = 0;
else
{
for (i=1;i<20;i++)
{
if (!flag)
{
dx = (val - (x*x)) / (2.0 * x);
x = x + dx;
diff = val - (x*x);
if (fabsolut(diff) <= min_tol) flag = 1;
}
else x =x;
}
}
return (x);
}
# 31 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/dsverifier.h" 2
# 1 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/engine/verify_overflow.h" 1
# 19 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/engine/verify_overflow.h"
int nondet_int();
float nondet_float();
extern digital_system ds;
extern implementation impl;
int verify_overflow(void) {
fxp_t a_fxp[ds.a_size];
fxp_t b_fxp[ds.b_size];
fxp_double_to_fxp_array(ds.a, a_fxp, ds.a_size);
fxp_double_to_fxp_array(ds.b, b_fxp, ds.b_size);
# 73 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/engine/verify_overflow.h"
fxp_t min_fxp = fxp_double_to_fxp(impl.min);
fxp_t max_fxp = fxp_double_to_fxp(impl.max);
fxp_t y[X_SIZE_VALUE];
fxp_t x[X_SIZE_VALUE];
int i;
for (i = 0; i < X_SIZE_VALUE; ++i) {
y[i] = 0;
x[i] = nondet_int();
__DSVERIFIER_assume(x[i] >= min_fxp && x[i] <= max_fxp);
}
int Nw = 0;
Nw = ds.a_size > ds.b_size ? ds.a_size : ds.b_size;
fxp_t yaux[ds.a_size];
fxp_t xaux[ds.b_size];
fxp_t waux[Nw];
for (i = 0; i < ds.a_size; ++i) {
yaux[i] = 0;
}
for (i = 0; i < ds.b_size; ++i) {
xaux[i] = 0;
}
for (i = 0; i < Nw; ++i) {
waux[i] = 0;
}
fxp_t xk, temp;
fxp_t *aptr, *bptr, *xptr, *yptr, *wptr;
int j;
for (i = 0; i < X_SIZE_VALUE; ++i) {
# 129 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/engine/verify_overflow.h"
y[i] = fxp_transposed_direct_form_2(waux, x[i], a_fxp, b_fxp, ds.a_size, ds.b_size);
# 174 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/engine/verify_overflow.h"
}
overflow_mode = 1;
fxp_verify_overflow_array(y, X_SIZE_VALUE);
return 0;
}
# 33 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/dsverifier.h" 2
# 1 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/engine/verify_limit_cycle.h" 1
# 15 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/engine/verify_limit_cycle.h"
extern digital_system ds;
extern implementation impl;
extern digital_system_state_space _controller;
extern int nStates;
extern int nInputs;
extern int nOutputs;
int verify_limit_cycle_state_space(void){
double stateMatrix[4][4];
double outputMatrix[4][4];
double arrayLimitCycle[4];
double result1[4][4];
double result2[4][4];
int i, j, k;
for(i=0; i<4;i++){
for(j=0; j<4;j++){
result1[i][j]=0;
result2[i][j]=0;
stateMatrix[i][j]=0;
outputMatrix[i][j]=0;
}
}
double_matrix_multiplication(nOutputs,nStates,nStates,1,_controller.C,_controller.states,result1);
double_matrix_multiplication(nOutputs,nInputs,nInputs,1,_controller.D,_controller.inputs,result2);
double_add_matrix(nOutputs,
1,
result1,
result2,
_controller.outputs);
k = 0;
for (i = 1; i < 0; i++) {
double_matrix_multiplication(nStates,nStates,nStates,1,_controller.A,_controller.states,result1);
double_matrix_multiplication(nStates,nInputs,nInputs,1,_controller.B,_controller.inputs,result2);
double_add_matrix(nStates,
1,
result1,
result2,
_controller.states);
double_matrix_multiplication(nOutputs,nStates,nStates,1,_controller.C,_controller.states,result1);
double_matrix_multiplication(nOutputs,nInputs,nInputs,1,_controller.D,_controller.inputs,result2);
double_add_matrix(nOutputs,
1,
result1,
result2,
_controller.outputs);
int l;
for(l = 0; l < nStates; l++){
stateMatrix[l][k] = _controller.states[l][0];
}
for(l = 0; l < nOutputs; l++){
stateMatrix[l][k] = _controller.outputs[l][0];
}
k++;
}
printf("#matrix STATES -------------------------------");
print_matrix(stateMatrix,nStates,0);
printf("#matrix OUTPUTS -------------------------------");
print_matrix(outputMatrix,nOutputs,0);
# 93 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/engine/verify_limit_cycle.h" 3 4
((void) sizeof ((
# 93 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/engine/verify_limit_cycle.h"
0
# 93 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/engine/verify_limit_cycle.h" 3 4
) ? 1 : 0), __extension__ ({ if (
# 93 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/engine/verify_limit_cycle.h"
0
# 93 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/engine/verify_limit_cycle.h" 3 4
) ; else __assert_fail (
# 93 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/engine/verify_limit_cycle.h"
"0"
# 93 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/engine/verify_limit_cycle.h" 3 4
, "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/engine/verify_limit_cycle.h", 93, __extension__ __PRETTY_FUNCTION__); }))
# 93 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/engine/verify_limit_cycle.h"
;
for(i=0; i<nStates;i++){
for(j=0; j<0;j++){
arrayLimitCycle[j] = stateMatrix[i][j];
}
double_check_persistent_limit_cycle(arrayLimitCycle,0);
}
for(i=0; i<nOutputs;i++){
for(j=0; j<0;j++){
arrayLimitCycle[j] = outputMatrix[i][j];
}
double_check_persistent_limit_cycle(arrayLimitCycle,0);
}
# 110 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/engine/verify_limit_cycle.h" 3 4
((void) sizeof ((
# 110 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/engine/verify_limit_cycle.h"
0
# 110 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/engine/verify_limit_cycle.h" 3 4
) ? 1 : 0), __extension__ ({ if (
# 110 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/engine/verify_limit_cycle.h"
0
# 110 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/engine/verify_limit_cycle.h" 3 4
) ; else __assert_fail (
# 110 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/engine/verify_limit_cycle.h"
"0"
# 110 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/engine/verify_limit_cycle.h" 3 4
, "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/engine/verify_limit_cycle.h", 110, __extension__ __PRETTY_FUNCTION__); }))
# 110 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/engine/verify_limit_cycle.h"
;
}
int verify_limit_cycle(void){
overflow_mode = 3;
int i;
int Set_xsize_at_least_two_times_Na = 2 * ds.a_size;
printf("X_SIZE must be at least 2 * ds.a_size");
__DSVERIFIER_assert(X_SIZE_VALUE >= Set_xsize_at_least_two_times_Na);
fxp_t a_fxp[ds.a_size];
fxp_t b_fxp[ds.b_size];
fxp_double_to_fxp_array(ds.a, a_fxp, ds.a_size);
fxp_double_to_fxp_array(ds.b, b_fxp, ds.b_size);
# 168 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/engine/verify_limit_cycle.h"
fxp_t y[X_SIZE_VALUE];
fxp_t x[X_SIZE_VALUE];
fxp_t min_fxp = fxp_double_to_fxp(impl.min);
fxp_t max_fxp = fxp_double_to_fxp(impl.max);
fxp_t xaux[ds.b_size];
int nondet_constant_input = nondet_int();
__DSVERIFIER_assume(nondet_constant_input >= min_fxp && nondet_constant_input <= max_fxp);
for (i = 0; i < X_SIZE_VALUE; ++i) {
x[i] = nondet_constant_input;
y[i] = 0;
}
for (i = 0; i < ds.b_size; ++i) {
xaux[i] = nondet_constant_input;
}
int Nw = 0;
Nw = ds.a_size > ds.b_size ? ds.a_size : ds.b_size;
fxp_t yaux[ds.a_size];
fxp_t y0[ds.a_size];
fxp_t waux[Nw];
fxp_t w0[Nw];
# 206 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/engine/verify_limit_cycle.h"
for (i = 0; i < Nw; ++i) {
waux[i] = nondet_int();
__DSVERIFIER_assume(waux[i] >= min_fxp && waux[i] <= max_fxp);
w0[i] = waux[i];
}
fxp_t xk, temp;
fxp_t *aptr, *bptr, *xptr, *yptr, *wptr;
int j;
for(i=0; i<X_SIZE_VALUE; ++i){
# 234 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/engine/verify_limit_cycle.h"
y[i] = fxp_transposed_direct_form_2(waux, x[i], a_fxp, b_fxp, ds.a_size, ds.b_size);
# 278 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/engine/verify_limit_cycle.h"
}
fxp_check_persistent_limit_cycle(y, X_SIZE_VALUE);
return 0;
}
# 34 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/dsverifier.h" 2
# 1 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/engine/verify_error.h" 1
# 17 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/engine/verify_error.h"
extern digital_system ds;
extern implementation impl;
int verify_error(void){
overflow_mode = 2;
double a_cascade[100];
int a_cascade_size;
double b_cascade[100];
int b_cascade_size;
fxp_t a_fxp[ds.a_size];
fxp_t b_fxp[ds.b_size];
fxp_double_to_fxp_array(ds.a, a_fxp, ds.a_size);
fxp_double_to_fxp_array(ds.b, b_fxp, ds.b_size);
# 69 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/engine/verify_error.h"
fxp_t min_fxp = fxp_double_to_fxp(impl.min);
fxp_t max_fxp = fxp_double_to_fxp(impl.max);
fxp_t y[X_SIZE_VALUE];
fxp_t x[X_SIZE_VALUE];
double yf[X_SIZE_VALUE];
double xf[X_SIZE_VALUE];
int Nw = 0;
Nw = ds.a_size > ds.b_size ? ds.a_size : ds.b_size;
fxp_t yaux[ds.a_size];
fxp_t xaux[ds.b_size];
fxp_t waux[Nw];
double yfaux[ds.a_size];
double xfaux[ds.b_size];
double wfaux[Nw];
int i;
for (i = 0; i < ds.a_size; ++i) {
yaux[i] = 0;
yfaux[i] = 0;
}
for (i = 0; i < ds.b_size; ++i) {
xaux[i] = 0;
xfaux[i] = 0;
}
for (i = 0; i < Nw; ++i) {
waux[i] = 0;
wfaux[i] = 0;
}
for (i = 0; i < X_SIZE_VALUE; ++i) {
y[i] = 0;
x[i] = nondet_int();
__DSVERIFIER_assume(x[i] >= min_fxp && x[i] <= max_fxp);
yf[i] = 0.0f;
xf[i] = fxp_to_double(x[i]);
}
for (i = 0; i < X_SIZE_VALUE; ++i) {
# 156 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/engine/verify_error.h"
y[i] = fxp_transposed_direct_form_2(waux, x[i], a_fxp, b_fxp, ds.a_size, ds.b_size);
yf[i] = double_transposed_direct_form_2(wfaux, xf[i], ds.a, ds.b, ds.a_size, ds.b_size);
# 169 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/engine/verify_error.h"
double absolute_error = yf[i] - fxp_to_double(y[i]);
__DSVERIFIER_assert(absolute_error < (impl.max_error) && absolute_error > (-impl.max_error));
}
return 0;
}
# 35 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/dsverifier.h" 2
# 1 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/engine/verify_zero_input_limit_cycle.h" 1
# 13 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/engine/verify_zero_input_limit_cycle.h"
extern digital_system ds;
extern implementation impl;
int verify_zero_input_limit_cycle(void){
overflow_mode = 3;
int i,j;
int Set_xsize_at_least_two_times_Na = 2 * ds.a_size;
printf("X_SIZE must be at least 2 * ds.a_size");
# 23 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/engine/verify_zero_input_limit_cycle.h" 3 4
((void) sizeof ((
# 23 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/engine/verify_zero_input_limit_cycle.h"
X_SIZE_VALUE >= Set_xsize_at_least_two_times_Na
# 23 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/engine/verify_zero_input_limit_cycle.h" 3 4
) ? 1 : 0), __extension__ ({ if (
# 23 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/engine/verify_zero_input_limit_cycle.h"
X_SIZE_VALUE >= Set_xsize_at_least_two_times_Na
# 23 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/engine/verify_zero_input_limit_cycle.h" 3 4
) ; else __assert_fail (
# 23 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/engine/verify_zero_input_limit_cycle.h"
"X_SIZE_VALUE >= Set_xsize_at_least_two_times_Na"
# 23 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/engine/verify_zero_input_limit_cycle.h" 3 4
, "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/engine/verify_zero_input_limit_cycle.h", 23, __extension__ __PRETTY_FUNCTION__); }))
# 23 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/engine/verify_zero_input_limit_cycle.h"
;
fxp_t a_fxp[ds.a_size];
fxp_t b_fxp[ds.b_size];
fxp_double_to_fxp_array(ds.a, a_fxp, ds.a_size);
fxp_double_to_fxp_array(ds.b, b_fxp, ds.b_size);
# 71 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/engine/verify_zero_input_limit_cycle.h"
fxp_t min_fxp = fxp_double_to_fxp(impl.min);
fxp_t max_fxp = fxp_double_to_fxp(impl.max);
fxp_t y[X_SIZE_VALUE];
fxp_t x[X_SIZE_VALUE];
for (i = 0; i < X_SIZE_VALUE; ++i) {
y[i] = 0;
x[i] = 0;
}
int Nw = 0;
Nw = ds.a_size > ds.b_size ? ds.a_size : ds.b_size;
fxp_t yaux[ds.a_size];
fxp_t xaux[ds.b_size];
fxp_t waux[Nw];
fxp_t y0[ds.a_size];
fxp_t w0[Nw];
# 104 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/engine/verify_zero_input_limit_cycle.h"
for (i = 0; i < Nw; ++i) {
waux[i] = nondet_int();
__DSVERIFIER_assume(waux[i] >= min_fxp && waux[i] <= max_fxp);
w0[i] = waux[i];
}
for (i = 0; i < ds.b_size; ++i) {
xaux[i] = 0;
}
fxp_t xk, temp;
fxp_t *aptr, *bptr, *xptr, *yptr, *wptr;
for(i=0; i<X_SIZE_VALUE; ++i){
# 141 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/engine/verify_zero_input_limit_cycle.h"
y[i] = fxp_transposed_direct_form_2(waux, x[i], a_fxp, b_fxp, ds.a_size, ds.b_size);
# 188 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/engine/verify_zero_input_limit_cycle.h"
}
fxp_check_persistent_limit_cycle(y, X_SIZE_VALUE);
return 0;
}
# 36 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/dsverifier.h" 2
# 1 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/engine/verify_generic_timing.h" 1
# 16 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/engine/verify_generic_timing.h"
int nondet_int();
float nondet_float();
extern digital_system ds;
extern implementation impl;
extern hardware hw;
int generic_timer = 0;
int verify_generic_timing(void) {
double y[X_SIZE_VALUE];
double x[X_SIZE_VALUE];
int i;
for (i = 0; i < X_SIZE_VALUE; ++i) {
y[i] = 0;
x[i] = nondet_float();
__DSVERIFIER_assume(x[i] >= impl.min && x[i] <= impl.max);
}
int Nw = 0;
Nw = ds.a_size > ds.b_size ? ds.a_size : ds.b_size;
double yaux[ds.a_size];
double xaux[ds.b_size];
double waux[Nw];
for (i = 0; i < ds.a_size; ++i) {
yaux[i] = 0;
}
for (i = 0; i < ds.b_size; ++i) {
xaux[i] = 0;
}
for (i = 0; i < Nw; ++i) {
waux[i] = 0;
}
double xk, temp;
double *aptr, *bptr, *xptr, *yptr, *wptr;
int j;
generic_timer += ((2 * hw.assembly.std) + (1 * hw.assembly.rjmp));
double initial_timer = generic_timer;
for (i = 0; i < X_SIZE_VALUE; ++i) {
generic_timer += ((2 * hw.assembly.ldd) + (1 * hw.assembly.adiw) + (2 * hw.assembly.std));
generic_timer += ((2 * hw.assembly.ldd) + (1 * hw.assembly.cpi) + (1 * hw.assembly.cpc) + (1 * hw.assembly.brlt));
# 85 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/engine/verify_generic_timing.h"
y[i] = generic_timing_double_transposed_direct_form_2(waux, x[i], ds.a, ds.b, ds.a_size, ds.b_size);
double spent_time = (((double) generic_timer) * hw.cycle);
# 89 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/engine/verify_generic_timing.h" 3 4
((void) sizeof ((
# 89 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/engine/verify_generic_timing.h"
spent_time <= ds.sample_time
# 89 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/engine/verify_generic_timing.h" 3 4
) ? 1 : 0), __extension__ ({ if (
# 89 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/engine/verify_generic_timing.h"
spent_time <= ds.sample_time
# 89 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/engine/verify_generic_timing.h" 3 4
) ; else __assert_fail (
# 89 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/engine/verify_generic_timing.h"
"spent_time <= ds.sample_time"
# 89 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/engine/verify_generic_timing.h" 3 4
, "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/engine/verify_generic_timing.h", 89, __extension__ __PRETTY_FUNCTION__); }))
# 89 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/engine/verify_generic_timing.h"
;
generic_timer = initial_timer;
}
return 0;
}
# 37 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/dsverifier.h" 2
# 1 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/engine/verify_timing_msp430.h" 1
# 16 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/engine/verify_timing_msp430.h"
int nondet_int();
float nondet_float();
extern digital_system ds;
extern implementation impl;
int verify_timing_msp_430(void) {
double y[X_SIZE_VALUE];
double x[X_SIZE_VALUE];
int i;
for (i = 0; i < X_SIZE_VALUE; ++i) {
y[i] = 0;
x[i] = nondet_float();
__DSVERIFIER_assume(x[i] >= impl.min && x[i] <= impl.max);
}
int Nw = 0;
Nw = ds.a_size > ds.b_size ? ds.a_size : ds.b_size;
double yaux[ds.a_size];
double xaux[ds.b_size];
double waux[Nw];
for (i = 0; i < ds.a_size; ++i) {
yaux[i] = 0;
}
for (i = 0; i < ds.b_size; ++i) {
xaux[i] = 0;
}
for (i = 0; i < Nw; ++i) {
waux[i] = 0;
}
double xk, temp;
double *aptr, *bptr, *xptr, *yptr, *wptr;
int j;
for (i = 0; i < X_SIZE_VALUE; ++i) {
# 75 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/engine/verify_timing_msp430.h"
y[i] = double_transposed_direct_form_2_MSP430(waux, x[i], ds.a, ds.b, ds.a_size, ds.b_size);
# 121 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/engine/verify_timing_msp430.h"
}
return 0;
}
# 38 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/dsverifier.h" 2
# 1 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/engine/verify_stability.h" 1
# 21 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/engine/verify_stability.h"
extern digital_system ds;
extern implementation impl;
int verify_stability(void){
overflow_mode = 0;
fxp_t a_fxp[ds.a_size];
fxp_double_to_fxp_array(ds.a, a_fxp, ds.a_size);
double _a[ds.a_size];
fxp_to_double_array(_a, a_fxp, ds.a_size);
# 37 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/engine/verify_stability.h" 3 4
((void) sizeof ((
# 37 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/engine/verify_stability.h"
check_stability(_a, ds.a_size)
# 37 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/engine/verify_stability.h" 3 4
) ? 1 : 0), __extension__ ({ if (
# 37 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/engine/verify_stability.h"
check_stability(_a, ds.a_size)
# 37 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/engine/verify_stability.h" 3 4
) ; else __assert_fail (
# 37 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/engine/verify_stability.h"
"check_stability(_a, ds.a_size)"
# 37 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/engine/verify_stability.h" 3 4
, "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/engine/verify_stability.h", 37, __extension__ __PRETTY_FUNCTION__); }))
# 37 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/engine/verify_stability.h"
;
# 83 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/engine/verify_stability.h"
return 0;
}
# 39 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/dsverifier.h" 2
# 1 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/engine/verify_minimum_phase.h" 1
# 21 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/engine/verify_minimum_phase.h"
extern digital_system ds;
extern implementation impl;
int verify_minimum_phase(void){
overflow_mode = 0;
fxp_t b_fxp[ds.b_size];
fxp_double_to_fxp_array(ds.b, b_fxp, ds.b_size);
double _b[ds.b_size];
fxp_to_double_array(_b, b_fxp, ds.b_size);
__DSVERIFIER_assert(check_stability(_b, ds.b_size));
# 85 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/engine/verify_minimum_phase.h"
return 0;
}
# 40 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/dsverifier.h" 2
# 1 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/engine/verify_stability_closedloop.h" 1
# 17 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/engine/verify_stability_closedloop.h"
extern digital_system plant;
extern digital_system plant_cbmc;
extern digital_system controller;
int verify_stability_closedloop_using_dslib(void){
double * c_num = controller.b;
int c_num_size = controller.b_size;
double * c_den = controller.a;
int c_den_size = controller.a_size;
fxp_t c_num_fxp[controller.b_size];
fxp_double_to_fxp_array(c_num, c_num_fxp, controller.b_size);
fxp_t c_den_fxp[controller.a_size];
fxp_double_to_fxp_array(c_den, c_den_fxp, controller.a_size);
double c_num_qtz[controller.b_size];
fxp_to_double_array(c_num_qtz, c_num_fxp, controller.b_size);
double c_den_qtz[controller.a_size];
fxp_to_double_array(c_den_qtz, c_den_fxp, controller.a_size);
double * p_num = plant.b;
int p_num_size = plant.b_size;
double * p_den = plant.a;
int p_den_size = plant.a_size;
double ans_num[100];
int ans_num_size = controller.b_size + plant.b_size - 1;
double ans_den[100];
int ans_den_size = controller.a_size + plant.a_size - 1;
# 68 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/engine/verify_stability_closedloop.h"
printf("Verifying stability for closedloop function\n");
__DSVERIFIER_assert(check_stability_closedloop(ans_den, ans_den_size, p_num, p_num_size, p_den, p_den_size));
return 0;
}
# 41 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/dsverifier.h" 2
# 1 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/engine/verify_limit_cycle_closedloop.h" 1
# 23 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/engine/verify_limit_cycle_closedloop.h"
extern digital_system plant;
extern digital_system plant_cbmc;
extern digital_system controller;
double nondet_double();
int verify_limit_cycle_closed_loop(void){
overflow_mode = 3;
double * c_num = controller.b;
int c_num_size = controller.b_size;
double * c_den = controller.a;
int c_den_size = controller.a_size;
fxp_t c_num_fxp[controller.b_size];
fxp_double_to_fxp_array(c_num, c_num_fxp, controller.b_size);
fxp_t c_den_fxp[controller.a_size];
fxp_double_to_fxp_array(c_den, c_den_fxp, controller.a_size);
double c_num_qtz[controller.b_size];
fxp_to_double_array(c_num_qtz, c_num_fxp, controller.b_size);
double c_den_qtz[controller.a_size];
fxp_to_double_array(c_den_qtz, c_den_fxp, controller.a_size);
double * p_num = plant.b;
int p_num_size = plant.b_size;
double * p_den = plant.a;
int p_den_size = plant.a_size;
double ans_num[100];
int ans_num_size = controller.b_size + plant.b_size - 1;
double ans_den[100];
int ans_den_size = controller.a_size + plant.a_size - 1;
int i;
double y[X_SIZE_VALUE];
double x[X_SIZE_VALUE];
double xaux[ans_num_size];
double nondet_constant_input = nondet_double();
__DSVERIFIER_assume(nondet_constant_input >= impl.min && nondet_constant_input <= impl.max);
for (i = 0; i < X_SIZE_VALUE; ++i) {
x[i] = nondet_constant_input;
y[i] = 0;
}
for (i = 0; i < ans_num_size; ++i) {
xaux[i] = nondet_constant_input;
}
double yaux[ans_den_size];
double y0[ans_den_size];
int Nw = ans_den_size > ans_num_size ? ans_den_size : ans_num_size;
double waux[Nw];
double w0[Nw];
# 105 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/engine/verify_limit_cycle_closedloop.h"
for (i = 0; i < Nw; ++i) {
waux[i] = nondet_int();
__DSVERIFIER_assume(waux[i] >= impl.min && waux[i] <= impl.max);
w0[i] = waux[i];
}
double xk, temp;
double *aptr, *bptr, *xptr, *yptr, *wptr;
int j;
for(i=0; i<X_SIZE_VALUE; ++i){
# 134 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/engine/verify_limit_cycle_closedloop.h"
y[i] = double_transposed_direct_form_2(waux, x[i], ans_den, ans_num, ans_den_size, ans_num_size);
}
double_check_persistent_limit_cycle(y, X_SIZE_VALUE);
return 0;
}
# 42 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/dsverifier.h" 2
# 1 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/engine/verify_error_closedloop.h" 1
# 23 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/engine/verify_error_closedloop.h"
extern digital_system plant;
extern digital_system plant_cbmc;
extern digital_system controller;
int verify_error_closedloop(void){
overflow_mode = 3;
double * c_num = controller.b;
int c_num_size = controller.b_size;
double * c_den = controller.a;
int c_den_size = controller.a_size;
fxp_t c_num_fxp[controller.b_size];
fxp_double_to_fxp_array(c_num, c_num_fxp, controller.b_size);
fxp_t c_den_fxp[controller.a_size];
fxp_double_to_fxp_array(c_den, c_den_fxp, controller.a_size);
double c_num_qtz[controller.b_size];
fxp_to_double_array(c_num_qtz, c_num_fxp, controller.b_size);
double c_den_qtz[controller.a_size];
fxp_to_double_array(c_den_qtz, c_den_fxp, controller.a_size);
double * p_num = plant.b;
int p_num_size = plant.b_size;
double * p_den = plant.a;
int p_den_size = plant.a_size;
double ans_num_double[100];
double ans_num_qtz[100];
int ans_num_size = controller.b_size + plant.b_size - 1;
double ans_den_qtz[100];
double ans_den_double[100];
int ans_den_size = controller.a_size + plant.a_size - 1;
# 77 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/engine/verify_error_closedloop.h"
int i;
double y_qtz[X_SIZE_VALUE];
double y_double[X_SIZE_VALUE];
double x_qtz[X_SIZE_VALUE];
double x_double[X_SIZE_VALUE];
double xaux_qtz[ans_num_size];
double xaux_double[ans_num_size];
double xaux[ans_num_size];
double nondet_constant_input = nondet_double();
__DSVERIFIER_assume(nondet_constant_input >= impl.min && nondet_constant_input <= impl.max);
for (i = 0; i < X_SIZE_VALUE; ++i) {
x_qtz[i] = nondet_constant_input;
x_double[i] = nondet_constant_input;
y_qtz[i] = 0;
y_double[i] = 0;
}
for (i = 0; i < ans_num_size; ++i) {
xaux_qtz[i] = nondet_constant_input;
xaux_double[i] = nondet_constant_input;
}
double yaux_qtz[ans_den_size];
double yaux_double[ans_den_size];
double y0_qtz[ans_den_size];
double y0_double[ans_den_size];
int Nw = ans_den_size > ans_num_size ? ans_den_size : ans_num_size;
double waux_qtz[Nw];
double waux_double[Nw];
double w0_qtz[Nw];
double w0_double[Nw];
for (i = 0; i < Nw; ++i) {
waux_qtz[i] = 0;
waux_double[i] = 0;
}
for(i=0; i<X_SIZE_VALUE; ++i){
# 150 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/engine/verify_error_closedloop.h"
y_qtz[i] = double_transposed_direct_form_2(waux_qtz, x_qtz[i], ans_den_qtz, ans_num_qtz, ans_den_size, ans_num_size);
y_double[i] = double_transposed_direct_form_2(waux_double, x_double[i], ans_den_double, ans_num_double, ans_den_size, ans_num_size);
double absolute_error = y_double[i] - fxp_to_double(y_qtz[i]);
__DSVERIFIER_assert(absolute_error < (impl.max_error) && absolute_error > (-impl.max_error));
}
return 0;
}
# 43 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/dsverifier.h" 2
# 1 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/engine/verify_error_state_space.h" 1
# 20 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/engine/verify_error_state_space.h"
extern digital_system_state_space _controller;
extern double error_limit;
extern int closed_loop;
double new_state[4][4];
double new_stateFWL[4][4];
digital_system_state_space _controller_fxp;
digital_system_state_space _controller_double;
double ss_system_quantization_error(fxp_t inputs){
digital_system_state_space __backupController;
int i;
int j;
_controller.inputs[0][0] = inputs;
for(i=0; i<nStates;i++){
for(j=0; j<nStates;j++){
__backupController.A[i][j]= (_controller.A[i][j]);
}
}
for(i=0; i<nStates;i++){
for(j=0; j<nInputs;j++){
__backupController.B[i][j]= (_controller.B[i][j]);
}
}
for(i=0; i<nOutputs;i++){
for(j=0; j<nStates;j++){
__backupController.C[i][j]= (_controller.C[i][j]);
}
}
for(i=0; i<nOutputs;i++){
for(j=0; j<nInputs;j++){
__backupController.D[i][j]= (_controller.D[i][j]);
}
}
for(i=0; i<nStates;i++){
for(j=0; j<1;j++){
__backupController.states[i][j]= (_controller.states[i][j]);
}
}
for(i=0; i<nInputs;i++){
for(j=0; j<1;j++){
__backupController.inputs[i][j]= (_controller.inputs[i][j]);
}
}
for(i=0; i<nOutputs;i++){
for(j=0; j<1;j++){
__backupController.outputs[i][j]= (_controller.outputs[i][j]);
}
}
double __quant_error = 0.0;
for(i=0; i<nStates;i++){
for(j=0; j<1;j++){
_controller.states[i][j]= (new_state[i][j]);
}
}
double output_double = double_state_space_representation();
for(i=0; i<nStates;i++){
for(j=0; j<1;j++){
new_state[i][j]= (_controller.states[i][j]);
}
}
__backupController.inputs[0][0] = inputs;
for(i=0; i<nStates;i++){
for(j=0; j<nStates;j++){
_controller.A[i][j] = __backupController.A[i][j];
}
}
for(i=0; i<nStates;i++){
for(j=0; j<nInputs;j++){
_controller.B[i][j] = __backupController.B[i][j];
}
}
for(i=0; i<nOutputs;i++){
for(j=0; j<nStates;j++){
_controller.C[i][j] = __backupController.C[i][j];
}
}
for(i=0; i<nOutputs;i++){
for(j=0; j<nInputs;j++){
_controller.D[i][j] = __backupController.D[i][j];
}
}
for(i=0; i<nStates;i++){
for(j=0; j<1;j++){
_controller.states[i][j] = __backupController.states[i][j];
}
}
for(i=0; i<nInputs;i++){
for(j=0; j<1;j++){
_controller.inputs[i][j] = __backupController.inputs[i][j];
}
}
for(i=0; i<nOutputs;i++){
for(j=0; j<1;j++){
_controller.outputs[i][j] = __backupController.outputs[i][j];
}
}
for(i=0; i<nStates;i++){
for(j=0; j<1;j++){
_controller.states[i][j]= (new_stateFWL[i][j]);
}
}
double output_fxp = fxp_state_space_representation();
for(i=0; i<nStates;i++){
for(j=0; j<1;j++){
new_stateFWL[i][j]= (_controller.states[i][j]);
}
}
__quant_error = output_double - output_fxp;
return __quant_error;
}
double fxp_ss_closed_loop_quantization_error(double reference){
double reference_aux[4][4];
double result1[4][4];
double temp_result1[4][4];
double result2[4][4];
double temp_states[4][4];
fxp_t K_fxp[4][4];
fxp_t states_fxp[4][4];
fxp_t result_fxp[4][4];
unsigned int i;
unsigned int j;
unsigned int k;
short unsigned int flag = 0;
for(i=0; i<nOutputs;i++){
for(j=0; j<nInputs;j++){
if(_controller_fxp.D[i][j] != 0){
flag = 1;
}
}
}
for(i=0; i<4;i++){
for(j=0; j<4;j++){
reference_aux[i][j]=0;
K_fxp[i][j] = 0;
}
}
for(i=0; i<nInputs;i++){
reference_aux[i][0]= reference;
}
for(i=0; i<4;i++){
states_fxp[i][0]=0;
}
for(i=0; i<nStates;i++){
K_fxp[0][i]= fxp_double_to_fxp(_controller_fxp.K[0][i]);
}
for(i=0; i<4;i++){
for(j=0; j<4;j++){
result1[i][j]=0;
result2[i][j]=0;
}
}
for(k=0; k<nStates;k++)
{
states_fxp[k][0]= fxp_double_to_fxp(_controller_fxp.states[k][0]);
}
fxp_matrix_multiplication(nOutputs,nStates,nStates,1,K_fxp,states_fxp,result_fxp);
fxp_t reference_fxp[4][4];
fxp_t result_fxp2[4][4];
for(k=0;k<nInputs;k++)
{
reference_fxp[k][0] =fxp_double_to_fxp(fxp_quantize(reference_aux[k][0]));
}
fxp_sub_matrix(nInputs,1, reference_fxp, result_fxp, result_fxp2);
for(k=0; k<nInputs;k++)
{
_controller_fxp.inputs[k][0] = fxp_to_double(fxp_quantize(result_fxp2[k][0]));
}
double_matrix_multiplication(nOutputs,nStates,nStates,1,_controller_fxp.C,_controller_fxp.states,result1);
if(flag == 1)
{
double_matrix_multiplication(nOutputs,nInputs,nInputs,1,_controller_fxp.D,_controller_fxp.inputs,result2);
}
double_add_matrix(nOutputs,1,result1,result2,_controller_fxp.outputs);
double_matrix_multiplication(nStates,nStates,nStates,1,_controller_fxp.A,_controller_fxp.states,result1);
double_matrix_multiplication(nStates,nInputs,nInputs,1,_controller_fxp.B,_controller_fxp.inputs,result2);
double_add_matrix(nStates,1,result1,result2,_controller_fxp.states);
return _controller_fxp.outputs[0][0];
}
double ss_closed_loop_quantization_error(double reference){
double reference_aux[4][4];
double result1[4][4];
double result2[4][4];
unsigned int i;
unsigned int j;
short unsigned int flag = 0;
for(i=0; i<nOutputs;i++){
for(j=0; j<nInputs;j++){
if(_controller_double.D[i][j] != 0){
flag = 1;
}
}
}
for(i=0; i<nInputs;i++){
for(j=0; j<1;j++){
reference_aux[i][j]= reference;
}
}
for(i=0; i<4;i++){
for(j=0; j<4;j++){
result1[i][j]=0;
result2[i][j]=0;
}
}
double_matrix_multiplication(nOutputs,nStates,nStates,1,_controller_double.K,_controller_double.states,result1);
double_sub_matrix(nInputs,1,reference_aux,result1, _controller_double.inputs);
double_matrix_multiplication(nOutputs,nStates,nStates,1,_controller_double.C,_controller_double.states,result1);
if(flag == 1)
double_matrix_multiplication(nOutputs,nInputs,nInputs,1,_controller_double.D,_controller_double.inputs,result2);
double_add_matrix(nOutputs,1,result1,result2,_controller_double.outputs);
double_matrix_multiplication(nStates,nStates,nStates,1,_controller_double.A,_controller_double.states,result1);
double_matrix_multiplication(nStates,nInputs,nInputs,1,_controller_double.B,_controller_double.inputs,result2);
double_add_matrix(nStates,1,result1,result2,_controller_double.states);
return _controller_double.outputs[0][0];
}
int verify_error_state_space(void){
int i,j;
for(i=0; i<nStates;i++){
for(j=0; j<1;j++){
new_state[i][j]= (_controller.states[i][j]);
}
}
for(i=0; i<nStates;i++){
for(j=0; j<1;j++){
new_stateFWL[i][j]= (_controller.states[i][j]);
}
}
_controller_fxp = _controller;
_controller_double = _controller;
overflow_mode = 0;
fxp_t x[0];
fxp_t min_fxp = fxp_double_to_fxp(impl.min);
fxp_t max_fxp = fxp_double_to_fxp(impl.max);
double nondet_constant_input = nondet_double();
__DSVERIFIER_assume(nondet_constant_input >= min_fxp && nondet_constant_input <= max_fxp);
for (i = 0; i < 0; ++i) {
x[i] = nondet_constant_input;
}
double __quant_error;
if(closed_loop){
for (i = 0; i < 0; ++i) {
__quant_error = ss_closed_loop_quantization_error(x[i]) - fxp_ss_closed_loop_quantization_error(x[i]);
# 354 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/engine/verify_error_state_space.h" 3 4
((void) sizeof ((
# 354 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/engine/verify_error_state_space.h"
__quant_error < error_limit && __quant_error > ((-1)*error_limit)
# 354 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/engine/verify_error_state_space.h" 3 4
) ? 1 : 0), __extension__ ({ if (
# 354 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/engine/verify_error_state_space.h"
__quant_error < error_limit && __quant_error > ((-1)*error_limit)
# 354 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/engine/verify_error_state_space.h" 3 4
) ; else __assert_fail (
# 354 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/engine/verify_error_state_space.h"
"__quant_error < error_limit && __quant_error > ((-1)*error_limit)"
# 354 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/engine/verify_error_state_space.h" 3 4
, "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/engine/verify_error_state_space.h", 354, __extension__ __PRETTY_FUNCTION__); }))
# 354 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/engine/verify_error_state_space.h"
;
}
}
else {
for (i=0; i < 0; i++)
{
__quant_error = ss_system_quantization_error(x[i]);
# 361 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/engine/verify_error_state_space.h" 3 4
((void) sizeof ((
# 361 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/engine/verify_error_state_space.h"
__quant_error < error_limit && __quant_error > ((-1)*error_limit)
# 361 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/engine/verify_error_state_space.h" 3 4
) ? 1 : 0), __extension__ ({ if (
# 361 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/engine/verify_error_state_space.h"
__quant_error < error_limit && __quant_error > ((-1)*error_limit)
# 361 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/engine/verify_error_state_space.h" 3 4
) ; else __assert_fail (
# 361 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/engine/verify_error_state_space.h"
"__quant_error < error_limit && __quant_error > ((-1)*error_limit)"
# 361 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/engine/verify_error_state_space.h" 3 4
, "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/engine/verify_error_state_space.h", 361, __extension__ __PRETTY_FUNCTION__); }))
# 361 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/engine/verify_error_state_space.h"
;
}
}
return 0;
}
# 44 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/dsverifier.h" 2
# 1 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/engine/verify_safety_state_space.h" 1
# 17 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/engine/verify_safety_state_space.h"
extern digital_system_state_space _controller;
extern double error_limit;
extern int closed_loop;
double fxp_ss_closed_loop_safety(){
double reference[4][4];
double result1[4][4];
double result2[4][4];
fxp_t K_fpx[4][4];
fxp_t outputs_fpx[4][4];
fxp_t result_fxp[4][4];
unsigned int i;
unsigned int j;
unsigned int k;
short unsigned int flag = 0;
for(i=0; i<nOutputs;i++){
for(j=0; j<nInputs;j++){
if(_controller.D[i][j] != 0){
flag = 1;
}
}
}
for(i=0; i<nInputs;i++){
for(j=0; j<1;j++){
reference[i][j]= (_controller.inputs[i][j]);
}
}
for(i=0; i<nInputs;i++){
for(j=0; j<nOutputs;j++){
K_fpx[i][j]=0;
}
}
for(i=0; i<nOutputs;i++){
for(j=0; j<1;j++){
outputs_fpx[i][j]=0;
}
}
for(i=0; i<4;i++){
for(j=0; j<4;j++){
result_fxp[i][j]=0;
}
}
for(i=0; i<nInputs;i++){
for(j=0; j<nOutputs;j++){
K_fpx[i][j]= fxp_double_to_fxp(_controller.K[i][j]);
}
}
for(i=0; i<4;i++){
for(j=0; j<4;j++){
result1[i][j]=0;
result2[i][j]=0;
}
}
for (i = 1; i < 0; i++) {
double_matrix_multiplication(nOutputs,nStates,nStates,1,_controller.C,_controller.states,result1);
if(flag == 1){
double_matrix_multiplication(nOutputs,nInputs,nInputs,1,_controller.D,_controller.inputs,result2);
}
double_add_matrix(nOutputs,
1,
result1,
result2,
_controller.outputs);
for(k=0; k<nOutputs;k++){
for(j=0; j<1;j++){
outputs_fpx[k][j]= fxp_double_to_fxp(_controller.outputs[k][j]);
}
}
fxp_matrix_multiplication(nInputs,nOutputs,nOutputs,1,K_fpx,outputs_fpx,result_fxp);
for(k=0; k<nInputs;k++){
for(j=0; j<1;j++){
result1[k][j]= fxp_to_double(result_fxp[k][j]);
}
}
printf("### fxp: U (before) = %.9f", _controller.inputs[0][0]);
printf("### fxp: reference = %.9f", reference[0][0]);
printf("### fxp: result1 = %.9f", result1[0][0]);
printf("### fxp: reference - result1 = %.9f", (reference[0][0] - result1[0][0]));
double_sub_matrix(nInputs,
1,
reference,
result1,
_controller.inputs);
printf("### fxp: Y = %.9f", _controller.outputs[0][0]);
printf("### fxp: U (after) = %.9f \n### \n### ", _controller.inputs[0][0]);
double_matrix_multiplication(nStates,nStates,nStates,1,_controller.A,_controller.states,result1);
double_matrix_multiplication(nStates,nInputs,nInputs,1,_controller.B,_controller.inputs,result2);
double_add_matrix(nStates,
1,
result1,
result2,
_controller.states);
}
return _controller.outputs[0][0];
}
int verify_safety_state_space(void){
fxp_t output_fxp = fxp_ss_closed_loop_safety();
double output_double = fxp_to_double(output_fxp);
# 140 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/engine/verify_safety_state_space.h" 3 4
((void) sizeof ((
# 140 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/engine/verify_safety_state_space.h"
output_double <= error_limit
# 140 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/engine/verify_safety_state_space.h" 3 4
) ? 1 : 0), __extension__ ({ if (
# 140 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/engine/verify_safety_state_space.h"
output_double <= error_limit
# 140 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/engine/verify_safety_state_space.h" 3 4
) ; else __assert_fail (
# 140 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/engine/verify_safety_state_space.h"
"output_double <= error_limit"
# 140 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/engine/verify_safety_state_space.h" 3 4
, "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/engine/verify_safety_state_space.h", 140, __extension__ __PRETTY_FUNCTION__); }))
# 140 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/engine/verify_safety_state_space.h"
;
return 0;
}
# 45 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/dsverifier.h" 2
# 1 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/engine/verify_controllability.h" 1
# 14 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/engine/verify_controllability.h"
extern digital_system_state_space _controller;
int verify_controllability(void){
int i;
int j;
fxp_t A_fpx[4][4];
fxp_t B_fpx[4][4];
fxp_t controllabilityMatrix[4][4];
fxp_t backup[4][4];
fxp_t backupSecond[4][4];
double controllabilityMatrix_double[4][4];
for(i=0; i<nStates;i++){
for(j=0; j<(nStates*nInputs);j++){
A_fpx[i][j] = 0.0;
B_fpx[i][j] = 0.0;
controllabilityMatrix[i][j] = 0.0;
backup[i][j] = 0.0;
backupSecond[i][j] = 0.0;
controllabilityMatrix_double[i][j] = 0.0;
}
}
for(i=0; i<nStates;i++){
for(j=0; j<nStates;j++){
A_fpx[i][j]= fxp_double_to_fxp(_controller.A[i][j]);
}
}
for(i=0; i<nStates;i++){
for(j=0; j<nInputs;j++){
B_fpx[i][j]= fxp_double_to_fxp(_controller.B[i][j]);
}
}
if(nInputs > 1){
int l = 0;
for(j=0; j<(nStates*nInputs);){
fxp_exp_matrix(nStates,nStates,A_fpx,l,backup);
l++;
fxp_matrix_multiplication(nStates,nStates,nStates,nInputs,backup,B_fpx,backupSecond);
for(int k = 0; k < nInputs; k++){
for(i = 0; i<nStates;i++){
controllabilityMatrix[i][j]= backupSecond[i][k];
}
j++;
}
}
for(i=0; i<nStates;i++){
for(j=0; j<(nStates*nInputs);j++){
backup[i][j]= 0.0;
}
}
fxp_transpose(controllabilityMatrix,backup,nStates,(nStates*nInputs));
fxp_t mimo_controllabilityMatrix_fxp[4][4];
fxp_matrix_multiplication(nStates,(nStates*nInputs),(nStates*nInputs),nStates,controllabilityMatrix,backup,mimo_controllabilityMatrix_fxp);
for(i=0; i<nStates;i++){
for(j=0; j<nStates;j++){
controllabilityMatrix_double[i][j]= fxp_to_double(mimo_controllabilityMatrix_fxp[i][j]);
}
}
# 91 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/engine/verify_controllability.h" 3 4
((void) sizeof ((
# 91 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/engine/verify_controllability.h"
determinant(controllabilityMatrix_double,nStates) != 0
# 91 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/engine/verify_controllability.h" 3 4
) ? 1 : 0), __extension__ ({ if (
# 91 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/engine/verify_controllability.h"
determinant(controllabilityMatrix_double,nStates) != 0
# 91 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/engine/verify_controllability.h" 3 4
) ; else __assert_fail (
# 91 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/engine/verify_controllability.h"
"determinant(controllabilityMatrix_double,nStates) != 0"
# 91 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/engine/verify_controllability.h" 3 4
, "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/engine/verify_controllability.h", 91, __extension__ __PRETTY_FUNCTION__); }))
# 91 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/engine/verify_controllability.h"
;
} else {
for(j=0; j<nStates;j++){
fxp_exp_matrix(nStates,nStates,A_fpx,j,backup);
fxp_matrix_multiplication(nStates,nStates,nStates,nInputs,backup,B_fpx,backupSecond);
for(i = 0; i<nStates;i++){
controllabilityMatrix[i][j]= backupSecond[i][0];
}
}
for(i=0; i<nStates;i++){
for(j=0; j<nStates;j++){
controllabilityMatrix_double[i][j]= fxp_to_double(controllabilityMatrix[i][j]);
}
}
# 113 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/engine/verify_controllability.h" 3 4
((void) sizeof ((
# 113 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/engine/verify_controllability.h"
determinant(controllabilityMatrix_double,nStates) != 0
# 113 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/engine/verify_controllability.h" 3 4
) ? 1 : 0), __extension__ ({ if (
# 113 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/engine/verify_controllability.h"
determinant(controllabilityMatrix_double,nStates) != 0
# 113 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/engine/verify_controllability.h" 3 4
) ; else __assert_fail (
# 113 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/engine/verify_controllability.h"
"determinant(controllabilityMatrix_double,nStates) != 0"
# 113 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/engine/verify_controllability.h" 3 4
, "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/engine/verify_controllability.h", 113, __extension__ __PRETTY_FUNCTION__); }))
# 113 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/engine/verify_controllability.h"
;
}
return 0;
}
int verify_controllability_double(void){
int i;
int j;
double controllabilityMatrix[4][4];
double backup[4][4];
double backupSecond[4][4];
double controllabilityMatrix_double[4][4];
if(nInputs > 1){
int l = 0;
for(j=0; j<(nStates*nInputs);){
double_exp_matrix(nStates,nStates,_controller.A,l,backup);
l++;
double_matrix_multiplication(nStates,nStates,nStates,nInputs,backup,_controller.B,backupSecond);
for(int k = 0; k < nInputs; k++){
for(i = 0; i<nStates;i++){
controllabilityMatrix[i][j]= backupSecond[i][k];
}
j++;
}
}
for(i=0; i<nStates;i++){
for(j=0; j<(nStates*nInputs);j++){
backup[i][j]= 0.0;
}
}
transpose(controllabilityMatrix,backup,nStates,(nStates*nInputs));
double mimo_controllabilityMatrix_double[4][4];
double_matrix_multiplication(nStates,(nStates*nInputs),(nStates*nInputs),nStates,controllabilityMatrix,backup,mimo_controllabilityMatrix_double);
# 154 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/engine/verify_controllability.h" 3 4
((void) sizeof ((
# 154 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/engine/verify_controllability.h"
determinant(mimo_controllabilityMatrix_double,nStates) != 0
# 154 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/engine/verify_controllability.h" 3 4
) ? 1 : 0), __extension__ ({ if (
# 154 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/engine/verify_controllability.h"
determinant(mimo_controllabilityMatrix_double,nStates) != 0
# 154 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/engine/verify_controllability.h" 3 4
) ; else __assert_fail (
# 154 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/engine/verify_controllability.h"
"determinant(mimo_controllabilityMatrix_double,nStates) != 0"
# 154 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/engine/verify_controllability.h" 3 4
, "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/engine/verify_controllability.h", 154, __extension__ __PRETTY_FUNCTION__); }))
# 154 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/engine/verify_controllability.h"
;
} else {
for(j=0; j<nStates;j++){
double_exp_matrix(nStates,nStates,_controller.A,j,backup);
double_matrix_multiplication(nStates,nStates,nStates,nInputs,backup,_controller.B,backupSecond);
for(i = 0; i<nStates;i++){
controllabilityMatrix[i][j]= backupSecond[i][0];
}
}
# 163 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/engine/verify_controllability.h" 3 4
((void) sizeof ((
# 163 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/engine/verify_controllability.h"
determinant(controllabilityMatrix,nStates) != 0
# 163 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/engine/verify_controllability.h" 3 4
) ? 1 : 0), __extension__ ({ if (
# 163 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/engine/verify_controllability.h"
determinant(controllabilityMatrix,nStates) != 0
# 163 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/engine/verify_controllability.h" 3 4
) ; else __assert_fail (
# 163 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/engine/verify_controllability.h"
"determinant(controllabilityMatrix,nStates) != 0"
# 163 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/engine/verify_controllability.h" 3 4
, "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/engine/verify_controllability.h", 163, __extension__ __PRETTY_FUNCTION__); }))
# 163 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/engine/verify_controllability.h"
;
}
return 0;
}
# 46 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/dsverifier.h" 2
# 1 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/engine/verify_observability.h" 1
# 17 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/engine/verify_observability.h"
extern digital_system_state_space _controller;
int verify_observability(void){
int i;
int j;
fxp_t A_fpx[4][4];
fxp_t C_fpx[4][4];
fxp_t observabilityMatrix[4][4];
fxp_t backup[4][4];
fxp_t backupSecond[4][4];
double observabilityMatrix_double[4][4];
for(i=0; i<nStates;i++){
for(j=0; j<nStates;j++){
observabilityMatrix[i][j]= 0;
A_fpx[i][j]=0;
C_fpx[i][j]= 0;
backup[i][j]= 0;
backupSecond[i][j]= 0;
}
}
for(i=0; i<nStates;i++){
for(j=0; j<nStates;j++){
A_fpx[i][j]= fxp_double_to_fxp(_controller.A[i][j]);
}
}
for(i=0; i<nOutputs;i++){
for(j=0; j<nStates;j++){
C_fpx[i][j]= fxp_double_to_fxp(_controller.C[i][j]);
}
}
if(nOutputs > 1){
int l;
j = 0;
for(l=0; l<nStates;){
fxp_exp_matrix(nStates,nStates,A_fpx,l,backup);
l++;
fxp_matrix_multiplication(nOutputs,nStates,nStates,nStates,C_fpx,backup,backupSecond);
for(int k = 0; k < nOutputs; k++){
for(i = 0; i<nStates;i++){
observabilityMatrix[j][i]= backupSecond[k][i];
}
j++;
}
}
# 80 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/engine/verify_observability.h"
for(i=0; i<nStates;i++){
for(j=0; j<(nStates*nOutputs);j++){
backup[i][j]= 0.0;
}
}
fxp_transpose(observabilityMatrix,backup,(nStates*nOutputs),nStates);
# 99 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/engine/verify_observability.h"
fxp_t mimo_observabilityMatrix_fxp[4][4];
fxp_matrix_multiplication(nStates,(nStates*nOutputs),(nStates*nOutputs),nStates,backup,observabilityMatrix,mimo_observabilityMatrix_fxp);
# 112 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/engine/verify_observability.h"
for(i=0; i<nStates;i++){
for(j=0; j<nStates;j++){
observabilityMatrix_double[i][j]= fxp_to_double(mimo_observabilityMatrix_fxp[i][j]);
}
}
# 119 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/engine/verify_observability.h" 3 4
((void) sizeof ((
# 119 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/engine/verify_observability.h"
determinant(observabilityMatrix_double,nStates) != 0
# 119 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/engine/verify_observability.h" 3 4
) ? 1 : 0), __extension__ ({ if (
# 119 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/engine/verify_observability.h"
determinant(observabilityMatrix_double,nStates) != 0
# 119 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/engine/verify_observability.h" 3 4
) ; else __assert_fail (
# 119 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/engine/verify_observability.h"
"determinant(observabilityMatrix_double,nStates) != 0"
# 119 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/engine/verify_observability.h" 3 4
, "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/engine/verify_observability.h", 119, __extension__ __PRETTY_FUNCTION__); }))
# 119 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/engine/verify_observability.h"
;
}else{
for(i=0; i<nStates;i++){
fxp_exp_matrix(nStates,nStates,A_fpx,i,backup);
fxp_matrix_multiplication(nOutputs,nStates,nStates,nStates,C_fpx,backup,backupSecond);
for(j = 0; j<nStates;j++){
observabilityMatrix[i][j]= backupSecond[0][j];
}
}
for(i=0; i<nStates;i++){
for(j=0; j<nStates;j++){
observabilityMatrix_double[i][j]= fxp_to_double(observabilityMatrix[i][j]);
}
}
# 134 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/engine/verify_observability.h" 3 4
((void) sizeof ((
# 134 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/engine/verify_observability.h"
determinant(observabilityMatrix_double,nStates) != 0
# 134 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/engine/verify_observability.h" 3 4
) ? 1 : 0), __extension__ ({ if (
# 134 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/engine/verify_observability.h"
determinant(observabilityMatrix_double,nStates) != 0
# 134 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/engine/verify_observability.h" 3 4
) ; else __assert_fail (
# 134 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/engine/verify_observability.h"
"determinant(observabilityMatrix_double,nStates) != 0"
# 134 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/engine/verify_observability.h" 3 4
, "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/engine/verify_observability.h", 134, __extension__ __PRETTY_FUNCTION__); }))
# 134 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/engine/verify_observability.h"
;
}
return 0;
}
# 47 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/dsverifier.h" 2
# 1 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/engine/verify_magnitude.h" 1
# 16 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/engine/verify_magnitude.h"
extern filter_parameters filter;
extern implementation impl;
extern digital_system ds;
# 28 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/engine/verify_magnitude.h"
void resp_mag(double* num, int lnum, double* den, int lden, double* res, int N) {
double w;
int m, i;
double out_numRe[N + 1];
double out_numIm[N + 1];
double out_denRe[N + 1];
double out_denIm[N + 1];
double old_out_Re;
double zero_test;
for (w = 0, i = 0; w <= 3.14159265358979323846; w += 3.14159265358979323846 / N, ++i) {
out_numRe[i] = num[0];
out_numIm[i] = 0;
for (m = 1; m < lnum; ++m) {
old_out_Re = out_numRe[i];
out_numRe[i] = cosTyl(w, 6) * out_numRe[i] - sinTyl(w, 6) * out_numIm[i] + num[m];
out_numIm[i] = sinTyl(w, 6) * old_out_Re + cosTyl(w, 6) * out_numIm[i];
}
out_denRe[i] = den[0];
out_denIm[i] = 0;
for (m = 1; m < lden; ++m) {
old_out_Re = out_denRe[i];
out_denRe[i] = cosTyl(w, 6) * out_denRe[i] - sinTyl(w, 6) * out_denIm[i] + den[m];
out_denIm[i] = sinTyl(w, 6) * old_out_Re + cosTyl(w, 6) * out_denIm[i];
}
res[i] = sqrt3(out_numRe[i] * out_numRe[i] + out_numIm[i] * out_numIm[i]);
zero_test = sqrt3(out_denRe[i] * out_denRe[i] + out_denIm[i] * out_denIm[i]);
__DSVERIFIER_assume(zero_test != 0);
res[i] = res[i] / zero_test;
}
}
int verify_magnitude(void) {
int freq_response_samples = 100;
double w;
double w_incr = 1.0 / freq_response_samples;
double res[freq_response_samples+1];
int i,j;
fxp_t a_fxp[ds.a_size];
fxp_double_to_fxp_array(ds.a, a_fxp, ds.a_size);
double _a[ds.a_size];
fxp_to_double_array(_a, a_fxp, ds.a_size);
fxp_t b_fxp[ds.b_size];
fxp_double_to_fxp_array(ds.b, b_fxp, ds.b_size);
double _b[ds.b_size];
fxp_to_double_array(_b, b_fxp, ds.b_size);
resp_mag(ds.b, ds.b_size, ds.a, ds.a_size, res, freq_response_samples);
if (filter.type == 1) {
for (i = 0, w = 0; (w <= 1.0); ++i, w += w_incr) {
if (w <= filter.wp) {
__DSVERIFIER_assert_msg(res[i] >= filter.Ap, "|----------------Passband Failure-------------|");
} else if (w == filter.wc) {
__DSVERIFIER_assert_msg(res[i] <= filter.Ac, "|-------------Cutoff Frequency Failure--------|");
} else if ((w >= filter.wr) && (w <= 1)) {
__DSVERIFIER_assert_msg(res[i] <= filter.Ar, "|----------------Stopband Failure-------------|");
}
}
} else if (filter.type == 2) {
for (i = 0, w = 0; (w <= 1.0); ++i, w += w_incr) {
if (w <= filter.wr) {
__DSVERIFIER_assert_msg(res[i] <= filter.Ar, "|----------------Stopband Failure-------------|");
} else if (w == filter.wc) {
__DSVERIFIER_assert_msg(res[i] <= filter.Ac, "|-------------Cutoff Frequency Failure--------|");
} else if ((w > filter.wp) && (w <= 1)) {
__DSVERIFIER_assert_msg(res[i] >= filter.Ap, "|----------------Passband Failure-------------|");
}
}
} else {
__DSVERIFIER_assert(0);
}
return 0;
}
# 48 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/dsverifier.h" 2
extern digital_system ds;
extern digital_system plant;
digital_system plant_cbmc;
extern digital_system controller;
extern implementation impl;
extern hardware hw;
extern digital_system_state_space _controller;
extern filter_parameters filter;
unsigned int nondet_uint();
extern void initials();
void validation();
void call_verification_task(void * verification_task);
void call_closedloop_verification_task(void * closedloop_verification_task);
float nondet_float();
double nondet_double();
int main(){
initialization();
validation();
if (1 == 0)
rounding_mode = 0;
else if (1 == 1)
rounding_mode = 1;
else if (1 == 2)
rounding_mode = 2;
if (3 == 3)
{
call_verification_task(&verify_overflow);
}
else if (3 == 2)
{
call_verification_task(&verify_limit_cycle);
}
else if (3 == 6)
{
call_verification_task(&verify_error);
}
else if (3 == 1)
{
call_verification_task(&verify_zero_input_limit_cycle);
}
else if (3 == 4)
{
call_verification_task(&verify_timing_msp_430);
}
else if (3 == 5)
{
call_verification_task(&verify_generic_timing);
}
else if (3 == 7)
{
call_verification_task(&verify_stability);
}
else if (3 == 8)
{
call_verification_task(&verify_minimum_phase);
}
else if (3 == 9)
{
call_closedloop_verification_task(&verify_stability_closedloop_using_dslib);
}
else if (3 == 10)
{
call_closedloop_verification_task(&verify_limit_cycle_closed_loop);
}
else if (3 == 11)
{
call_closedloop_verification_task(&verify_error_closedloop);
}
else if (3 == 12)
{
verify_error_state_space();
}
else if (3 == 16)
{
verify_safety_state_space();
}
else if (3 == 13)
{
verify_controllability();
}
else if (3 == 14)
{
verify_observability();
}
else if (3 == 15)
{
verify_limit_cycle_state_space();
}
else if (3 == 18)
{
call_verification_task(&verify_magnitude);
}
return 0;
}
void validation()
{
if (3 == 12 || 3 == 16 ||
3 == 15 || 3 == 13 ||
3 == 14)
{
if (0 == 0)
{
printf("\n\n********************************************************************************************\n");
printf("* set a K_SIZE to use this property in DSVerifier (use: -DK_SIZE=VALUE) *\n");
printf("********************************************************************************************\n");
__DSVERIFIER_assert(0);
exit(1);
}
initials();
return;
}
if (((3 != 9) && (3 != 10) &&
(3 != 11)) && (ds.a_size == 0 || ds.b_size == 0))
{
printf("\n\n****************************************************************************\n");
printf("* set (ds and impl) parameters to check with DSVerifier *\n");
printf("****************************************************************************\n");
__DSVERIFIER_assert(0);
}
if ((3 == 9) || (3 == 10) ||
(3 == 11))
{
if (controller.a_size == 0 || plant.b_size == 0 || impl.int_bits == 0 )
{
printf("\n\n*****************************************************************************************************\n");
printf("* set (controller, plant, and impl) parameters to check CLOSED LOOP with DSVerifier *\n");
printf("*****************************************************************************************************\n");
__DSVERIFIER_assert(0);
}
else
{
printf("\n\n*****************************************************************************************************\n");
printf("* set (controller and impl) parameters so that they do not overflow *\n");
printf("*****************************************************************************************************\n");
unsigned j;
for (j = 0; j < controller.a_size; ++j)
{
const double value=controller.a[j];
__DSVERIFIER_assert(value <= _dbl_max);
__DSVERIFIER_assert(value >= _dbl_min);
}
for (j = 0; j < controller.b_size; ++j)
{
const double value=controller.b[j];
__DSVERIFIER_assert(value <= _dbl_max);
__DSVERIFIER_assert(value >= _dbl_min);
}
}
if (controller.b_size > 0)
{
unsigned j, zeros=0;
for (j = 0; j < controller.b_size; ++j)
{
if (controller.b[j]==0)
++zeros;
}
if (zeros == controller.b_size)
{
printf("\n\n*****************************************************************************************************\n");
printf("* The controller numerator must not be zero *\n");
printf("*****************************************************************************************************\n");
__DSVERIFIER_assert(0);
}
}
if (controller.a_size > 0)
{
unsigned j, zeros=0;
for (j = 0; j < controller.a_size; ++j)
{
if (controller.a[j]==0)
++zeros;
}
if (zeros == controller.a_size)
{
printf("\n\n*****************************************************************************************************\n");
printf("* The controller denominator must not be zero *\n");
printf("*****************************************************************************************************\n");
__DSVERIFIER_assert(0);
}
}
if (0 == 0)
{
printf("\n\n***************************************************************************************************************\n");
printf("* set a connection mode to check CLOSED LOOP with DSVerifier (use: --connection-mode TYPE) *\n");
printf("***************************************************************************************************************\n");
__DSVERIFIER_assert(0);
}
}
if (3 == 0)
{
printf("\n\n***************************************************************************************\n");
printf("* set the property to check with DSVerifier (use: --property NAME) *\n");
printf("***************************************************************************************\n");
__DSVERIFIER_assert(0);
}
if ((3 == 3) || (3 == 2) || (3 == 1) ||
(3 == 10) || (3 == 11) ||
(3 == 4 || 3 == 5) || 3 == 6)
{
if ((15 == 0) && !(0 == 1))
{
printf("\n\n********************************************************************************************\n");
printf("* set a X_SIZE to use this property in DSVerifier (use: --x-size VALUE) *\n");
printf("********************************************************************************************\n");
__DSVERIFIER_assert(0);
}
else if (0 == 1)
{
X_SIZE_VALUE = nondet_uint();
__DSVERIFIER_assume( X_SIZE_VALUE > (2 * ds.a_size));
}
else if (15 < 0)
{
printf("\n\n********************************************************************************************\n");
printf("* set a X_SIZE > 0 *\n");
printf("********************************************************************************************\n");
__DSVERIFIER_assert(0);
}
else
{
X_SIZE_VALUE = 15;
}
}
if ((3 == 0) && (3 != 9) && (3 != 18))
{
printf("\n\n*********************************************************************************************\n");
printf("* set the realization to check with DSVerifier (use: --realization NAME) *\n");
printf("*********************************************************************************************\n");
__DSVERIFIER_assert(0);
}
if (3 == 6 || 3 == 11)
{
if (impl.max_error == 0)
{
printf("\n\n***********************************************************************\n");
printf("* provide the maximum expected error (use: impl.max_error) *\n");
printf("***********************************************************************\n");
__DSVERIFIER_assert(0);
}
}
if (3 == 4 || 3 == 5)
{
if (3 == 5 || 3 == 4)
{
if (hw.clock == 0l)
{
printf("\n\n***************************\n");
printf("* Clock could not be zero *\n");
printf("***************************\n");
__DSVERIFIER_assert(0);
}
hw.cycle = ((double) 1.0 / hw.clock);
if (hw.cycle < 0)
{
printf("\n\n*********************************************\n");
printf("* The cycle time could not be representable *\n");
printf("*********************************************\n");
__DSVERIFIER_assert(0);
}
if (ds.sample_time == 0)
{
printf("\n\n*****************************************************************************\n");
printf("* provide the sample time of the digital system (ds.sample_time) *\n");
printf("*****************************************************************************\n");
__DSVERIFIER_assert(0);
}
}
}
if (3 == 18)
{
if (!((filter.Ap > 0) && (filter.Ac >0) && (filter.Ar >0)))
{
printf("\n\n*****************************************************************************\n");
printf("* set values bigger than 0 for Ap, Ac and Ar* \n");
printf("*****************************************************************************\n");
__DSVERIFIER_assert(0);
}
}
if ((3 == 7) || (3 == 8) || (3 == 9) ||
(3 == 10) || (3 == 11) || (3 == 12))
{
printf("\n\n******************************************\n");
printf("* Temporarily the cascade modes are disabled *\n");
printf("**********************************************\n");
__DSVERIFIER_assert(0);
}
}
void call_verification_task(void * verification_task)
{
int i = 0;
_Bool base_case_executed = 0;
if (0 == 2)
{
for(i=0; i<ds.b_size; i++)
{
if (ds.b_uncertainty[i] > 0)
{
double factor = ds.b_uncertainty[i];
factor = factor < 0 ? factor * (-1) : factor;
double min = ds.b[i] - factor;
double max = ds.b[i] + factor;
if ((factor == 0) && (base_case_executed == 1))
{
continue;
}
else if ((factor == 0) && (base_case_executed == 0))
{
base_case_executed = 1;
}
ds.b[i] = nondet_double();
__DSVERIFIER_assume((ds.b[i] >= min) && (ds.b[i] <= max));
}
}
for(i=0; i<ds.a_size; i++)
{
if (ds.a_uncertainty[i] > 0)
{
double factor = ds.a_uncertainty[i];
factor = factor < 0 ? factor * (-1) : factor;
double min = ds.a[i] - factor;
double max = ds.a[i] + factor;
if ((factor == 0) && (base_case_executed == 1))
{
continue;
}
else if ((factor == 0) && (base_case_executed == 0))
{
base_case_executed = 1;
}
ds.a[i] = nondet_double();
__DSVERIFIER_assume((ds.a[i] >= min) && (ds.a[i] <= max));
}
}
}
else
{
int i=0;
for(i=0; i<ds.b_size; i++)
{
if (ds.b_uncertainty[i] > 0)
{
double factor = ((ds.b[i] * ds.b_uncertainty[i]) / 100);
factor = factor < 0 ? factor * (-1) : factor;
double min = ds.b[i] - factor;
double max = ds.b[i] + factor;
if ((factor == 0) && (base_case_executed == 1))
{
continue;
}
else if ((factor == 0) && (base_case_executed == 0))
{
base_case_executed = 1;
}
ds.b[i] = nondet_double();
__DSVERIFIER_assume((ds.b[i] >= min) && (ds.b[i] <= max));
}
}
for(i=0; i<ds.a_size; i++)
{
if (ds.a_uncertainty[i] > 0)
{
double factor = ((ds.a[i] * ds.a_uncertainty[i]) / 100);
factor = factor < 0 ? factor * (-1) : factor;
double min = ds.a[i] - factor;
double max = ds.a[i] + factor;
if ((factor == 0) && (base_case_executed == 1))
{
continue;
}
else if ((factor == 0) && (base_case_executed == 0))
{
base_case_executed = 1;
}
ds.a[i] = nondet_double();
__DSVERIFIER_assume((ds.a[i] >= min) && (ds.a[i] <= max));
}
}
}
((void(*)())verification_task)();
}
void call_closedloop_verification_task(void * closedloop_verification_task)
{
_Bool base_case_executed = 0;
int i=0;
for(i=0; i<plant.b_size; i++)
{
if (plant.b_uncertainty[i] > 0)
{
double factor = ((plant.b[i] * plant.b_uncertainty[i]) / 100);
factor = factor < 0 ? factor * (-1) : factor;
double min = plant.b[i] - factor;
double max = plant.b[i] + factor;
if ((factor == 0) && (base_case_executed == 1))
{
continue;
}
else if ((factor == 0) && (base_case_executed == 0))
{
base_case_executed = 1;
}
plant.b[i] = nondet_double();
__DSVERIFIER_assume((plant.b[i] >= min) && (plant.b[i] <= max));
}else{
}
}
for(i=0; i<plant.a_size; i++)
{
if (plant.a_uncertainty[i] > 0)
{
double factor = ((plant.a[i] * plant.a_uncertainty[i]) / 100);
factor = factor < 0 ? factor * (-1) : factor;
double min = plant.a[i] - factor;
double max = plant.a[i] + factor;
if ((factor == 0) && (base_case_executed == 1))
{
continue;
}
else if ((factor == 0) && (base_case_executed == 0))
{
base_case_executed = 1;
}
plant.a[i] = nondet_double();
__DSVERIFIER_assume((plant.a[i] >= min) && (plant.a[i] <= max));
}
else
{
}
}
((void(*)())closedloop_verification_task)();
}
# 2 "benchmarks/ds-04-impl1.c" 2
digital_system ds = {
.b = { 135.0, -260.0, 125.0 },
.b_size = 3,
.a = { 1.0, -1.0, 0.0 },
.a_size = 3,
.sample_time = 0.02
};
implementation impl = {
.int_bits = 8,
.frac_bits = 8,
.max = 1.0,
.min = -1.0
};
|
the_stack_data/208461.c | /*
* %CopyrightBegin%
*
* Copyright Ericsson AB 1997-2016. All Rights Reserved.
*
* Licensed under the Apache License, Version 2.0 (the "License");
* you may not use this file except in compliance with the License.
* You may obtain a copy of the License at
*
* http://www.apache.org/licenses/LICENSE-2.0
*
* Unless required by applicable law or agreed to in writing, software
* distributed under the License is distributed on an "AS IS" BASIS,
* WITHOUT WARRANTIES OR CONDITIONS OF ANY KIND, either express or implied.
* See the License for the specific language governing permissions and
* limitations under the License.
*
* %CopyrightEnd%
*/
/*
* CPU supervision
*
* Uses kstat library only available on Solaris 2
* Compile with: gcc -o cpu_sup cpu_sup.c -lkstat
*
* Use open_port({spawn,Prog},[stream]) to communicate.
*
*/
#include <stdio.h>
#include <stdlib.h>
#include <unistd.h>
#include <string.h>
#if (defined(__APPLE__) && defined(__MACH__)) || defined(__OpenBSD__) || defined(__FreeBSD__) || defined(__DragonFly__)
#include <sys/param.h>
#include <sys/sysctl.h>
#include <limits.h>
#include <fcntl.h>
#endif
#if defined(__FreeBSD__) || defined(__DragonFly__)
#include <kvm.h>
#include <sys/user.h>
#endif
#if defined(__sun__)
#include <kstat.h>
#endif
#if (defined(__APPLE__) && defined(__MACH__))
#include <mach/mach.h>
#endif
#include <errno.h>
#if defined(__sun__) || defined(__linux__)
#include <sys/sysinfo.h>
#endif
#if defined(__linux__)
#define PROCSTAT "/proc/stat"
#define BUFFERSIZE (256)
typedef struct {
unsigned int id;
unsigned long long
/* total, */
user,
nice_user,
kernel,
idle,
io_wait,
hard_irq,
soft_irq,
steal;
} cpu_t;
#endif
#if (defined(__APPLE__) && defined(__MACH__))
#define CU_OSX_VALUES (5)
#endif
#if defined(__FreeBSD__)
#include <sys/resource.h>
#include <sys/sysctl.h>
#define CU_BSD_VALUES (6)
#endif
#define FD_IN (0)
#define FD_OUT (1)
#define FD_ERR (2)
#define PING 'p'
#define NPROCS 'n'
#define AVG1 '1'
#define AVG5 '5'
#define AVG15 'f'
#define UTIL 'u'
#define QUIT 'q'
#define CU_CPU_ID (0)
#define CU_USER (1)
#define CU_NICE_USER (2)
#define CU_KERNEL (3)
#define CU_IO_WAIT (4)
#define CU_IDLE (5)
#define CU_HARD_IRQ (6)
#define CU_SOFT_IRQ (7)
#define CU_STEAL (8)
#define CU_VALUES (9)
#define CU_KSTAT_VALUES (5)
/*
#define CU_FLG_CPU_ID (0 << 1)
#define CU_FLG_USER (0 << 2)
#define CU_FLG_NICE_USER (0 << 3)
#define CU_FLG_KERNEL (0 << 4)
#define CU_FLG_IO_WAIT (0 << 5)
#define CU_FLG_IDLE (0 << 6)
#define CU_FLG_HARD_IRQ (0 << 7)
#define CU_FLG_SOFT_IRQ (0 << 8)
#define CU_FLG_STEAL (0 << 9)
*/
/* util_measure
* In:
* unsigned int **result_vec
* int *result_sz
* Purpose:
* Retrieve CPU utilization
* result_vec has 2 + np*ne*2 entries where np is number_of_cpus
* |------|------|
* | np | ne |
* |------|------|
* |val_id| value| (One entry)
* |------|------|
* |val_id| value| (One entry)
* |------|------|
* ......
* |------|------|
* |val_id| value|
* |------|------|
* np = number of processors
* ne = number of entries per processor
*/
static void util_measure(unsigned int **result_vec, int *result_sz);
#if defined(__sun__)
static unsigned int misc_measure(char* name);
#endif
static void sendi(unsigned int data);
static void sendv(unsigned int data[], int ints);
static void error(char* err_msg);
#if (defined(__APPLE__) && defined(__MACH__)) || defined(__OpenBSD__) || defined(__FreeBSD__) || defined(__DragonFly__)
static void bsd_count_procs(void);
static void bsd_loadavg(int);
#endif
#if defined(__sun__)
static kstat_ctl_t *kstat_ctl;
#endif
#if defined(__linux__)
static int processors_online() {
return (int)sysconf(_SC_NPROCESSORS_ONLN);
}
#endif
#if (defined(__APPLE__) && defined(__MACH__)) || defined(__FreeBSD__)
void getsysctl(const char *, void *, size_t);
#endif
int main(int argc, char** argv) {
char cmd;
int rc;
int sz;
unsigned int *rv;
#if defined(__linux__) || (defined(__APPLE__) && defined(__MACH__)) ||defined(__FreeBSD__)
unsigned int no_of_cpus = 0;
#endif
#if defined(__sun__)
kstat_ctl = kstat_open();
if(!kstat_ctl)
error("Can't open header kstat");
#endif
#if defined(__linux__)
no_of_cpus = processors_online();
if ( (rv = (unsigned int*)malloc(sizeof(unsigned int)*(2 + 2*no_of_cpus*CU_VALUES))) == NULL) {
error("cpu_sup: malloc error");
}
#endif
#if (defined(__APPLE__) && defined(__MACH__))
getsysctl("hw.ncpu", &no_of_cpus, sizeof(int));
if ( (rv = (unsigned int*)malloc(sizeof(unsigned int)*(2 + 2*no_of_cpus*CU_OSX_VALUES))) == NULL) {
error("cpu_sup: malloc error");
}
#endif
#if defined(__FreeBSD__)
getsysctl("hw.ncpu", &no_of_cpus, sizeof(int));
if ( (rv = (unsigned int*)malloc(sizeof(unsigned int)*(2 + 2*no_of_cpus*CU_BSD_VALUES))) == NULL) {
error("cpu_sup: malloc error");
}
#endif
while(1) {
rc = read(FD_IN, &cmd, 1);
if (rc < 0) {
if (errno == EINTR)
continue;
error("Error reading from Erlang");
}
if(rc == 0)
error("Erlang has closed");
switch(cmd) {
case PING: sendi(4711); break;
#if defined(__sun__)
case NPROCS: sendi(misc_measure("nproc")); break;
case AVG1: sendi(misc_measure("avenrun_1min")); break;
case AVG5: sendi(misc_measure("avenrun_5min")); break;
case AVG15: sendi(misc_measure("avenrun_15min")); break;
#elif defined(__OpenBSD__) || (defined(__APPLE__) && defined(__MACH__)) || defined(__FreeBSD__) || defined(__DragonFly__)
case NPROCS: bsd_count_procs(); break;
case AVG1: bsd_loadavg(0); break;
case AVG5: bsd_loadavg(1); break;
case AVG15: bsd_loadavg(2); break;
#endif
#if defined(__sun__) || defined(__linux__) || (defined(__APPLE__) && defined(__MACH__)) || defined(__FreeBSD__)
case UTIL: util_measure(&rv,&sz); sendv(rv, sz); break;
#endif
case QUIT: free((void*)rv); return 0;
default: error("Bad command"); break;
}
}
return 0; /* suppress warnings */
}
/* ---------------------------- *
* BSD stat functions *
* ---------------------------- */
#if defined(__OpenBSD__) || (defined(__APPLE__) && defined(__MACH__)) || defined(__FreeBSD__) || defined(__DragonFly__)
static void bsd_loadavg(int idx) {
double avgs[3];
if (getloadavg(avgs, 3) < 0) {
error(strerror(errno));
return;
}
sendi((unsigned int)(avgs[idx] * 256));
}
#endif
#if defined(__OpenBSD__)
static void bsd_count_procs(void) {
int err, nproc;
size_t len = sizeof(nproc);
int mib[] = { CTL_KERN, KERN_NPROCS };
err = sysctl(mib, sizeof(mib) / sizeof(mib[0]), &nproc, &len, NULL, 0);
if (err) {
error(strerror(errno));
return;
}
sendi((unsigned int)nproc);
}
#elif defined(__FreeBSD__) || defined(__DragonFly__)
static void bsd_count_procs(void) {
kvm_t *kd;
struct kinfo_proc *kp;
char err[_POSIX2_LINE_MAX];
int cnt = 0;
if ((kd = kvm_open(NULL, "/dev/null", NULL, O_RDONLY, err)) == NULL) {
error(err);
return;
}
#if defined(KERN_PROC_PROC)
if ((kp = kvm_getprocs(kd, KERN_PROC_PROC, 0, &cnt)) == NULL) {
#else
if ((kp = kvm_getprocs(kd, KERN_PROC_ALL, 0, &cnt)) == NULL) {
#endif
error(strerror(errno));
return;
}
(void)kvm_close(kd);
sendi((unsigned int)cnt);
}
#elif (defined(__APPLE__) && defined(__MACH__))
static void bsd_count_procs(void) {
int err;
size_t len = 0;
int mib[] = { CTL_KERN, KERN_PROC, KERN_PROC_ALL };
err = sysctl(mib, sizeof(mib) / sizeof(mib[0]), NULL, &len, NULL, 0);
if (err) {
error(strerror(errno));
return;
}
sendi((unsigned int)(len / sizeof(struct kinfo_proc)));
}
#endif
/* ---------------------------- *
* Linux stat functions *
* ---------------------------- */
#if defined(__linux__)
static cpu_t *read_procstat(FILE *fp, cpu_t *cpu) {
char buffer[BUFFERSIZE];
if (fgets(buffer, BUFFERSIZE, fp) == NULL) {
memset(cpu, 0, sizeof(cpu_t));
return cpu;
}
sscanf(buffer, "cpu%u %Lu %Lu %Lu %Lu %Lu %Lu %Lu %Lu",
&(cpu->id),
&(cpu->user),
&(cpu->nice_user),
&(cpu->kernel),
&(cpu->idle),
&(cpu->io_wait),
&(cpu->hard_irq),
&(cpu->soft_irq),
&(cpu->steal));
return cpu;
}
static void util_measure(unsigned int **result_vec, int *result_sz) {
int no_of_cpus = processors_online();
int i;
char buffer[BUFFERSIZE];
FILE *fp;
unsigned int *rv = NULL;
cpu_t cpu;
if ( (fp = fopen(PROCSTAT,"r")) == NULL) {
/* Check if procfs is mounted,
* otherwise:
* try and try again, bad procsfs.
*/
*result_sz = 0;
return;
}
/*ignore read*/
if (fgets(buffer, BUFFERSIZE, fp) == NULL) {
*result_sz = 0;
return;
}
rv = *result_vec;
rv[0] = no_of_cpus;
rv[1] = CU_VALUES;
++rv; /* first value is number of cpus */
++rv; /* second value is number of entries */
for (i = 0; i < no_of_cpus; ++i) {
read_procstat(fp, &cpu);
rv[ 0] = CU_CPU_ID; rv[ 1] = cpu.id;
rv[ 2] = CU_USER; rv[ 3] = cpu.user;
rv[ 4] = CU_NICE_USER; rv[ 5] = cpu.nice_user;
rv[ 6] = CU_KERNEL; rv[ 7] = cpu.kernel;
rv[ 8] = CU_IO_WAIT; rv[ 9] = cpu.io_wait;
rv[10] = CU_IDLE; rv[11] = cpu.idle;
rv[12] = CU_HARD_IRQ; rv[13] = cpu.hard_irq;
rv[14] = CU_SOFT_IRQ; rv[15] = cpu.soft_irq;
rv[16] = CU_STEAL; rv[17] = cpu.steal;
rv += CU_VALUES*2;
}
fclose(fp);
*result_sz = 2 + 2*CU_VALUES * no_of_cpus;
}
#endif
/* ---------------------------- *
* Unix kstat functions *
* ---------------------------- */
#if defined(__sun__)
static unsigned int misc_measure(char* name) {
static kstat_t *ksp = NULL;
kstat_named_t* entry;
kid_t kcid;
kcid = kstat_chain_update(kstat_ctl);
if(kcid == -1)
error("Error updating kstat chain");
if (!ksp || kcid != 0) {
/* The kstat chain changed (or we are initializing);
find system misc entry in the new chain... */
ksp = kstat_lookup(kstat_ctl,"unix",0,"system_misc");
if(!ksp)
error("Can't open system_misc kstat");
}
kstat_read(kstat_ctl,ksp,NULL);
entry = kstat_data_lookup(ksp,name);
if(!entry)
return -1;
if(entry->data_type != KSTAT_DATA_UINT32)
return -1;
return entry->value.ui32;
}
static int cpu_cmp(const void *p1, const void *p2) {
kstat_t *ksp1 = *((kstat_t **) p1);
kstat_t *ksp2 = *((kstat_t **) p2);
if (ksp1->ks_instance > ksp2->ks_instance)
return 1;
if (ksp1->ks_instance < ksp2->ks_instance)
return -1;
return 0;
}
static void util_measure(unsigned int **result_vec, int *result_sz) {
static int no_of_cpus = 0;
static kstat_t **cpu_ksps = NULL;
static unsigned int * resv = NULL;
unsigned int *rv = NULL;
kstat_t *ksp;
kid_t kcid;
int cpu_stats_read;
int i;
kcid = kstat_chain_update(kstat_ctl);
if(kcid == -1)
error("Error updating kstat chain");
if (no_of_cpus == 0 || kcid != 0) {
/* The kstat chain changed (or we are initializing);
find cpu_stat entries in the new chain... */
no_of_cpus = 0;
for(ksp = kstat_ctl->kc_chain; ksp; ksp = ksp->ks_next) {
if (strcmp(ksp->ks_module, "cpu_stat") == 0
&& ksp->ks_type == KSTAT_TYPE_RAW) {
no_of_cpus++;
/* Assumes that modifications of the cpu_stat_t struct
in future releases of Solaris only are additions
of fields at the end of the struct. */
if(ksp->ks_data_size < sizeof(cpu_stat_t))
error("Error: unexpected kstat data size");
}
}
free((void *) cpu_ksps);
if (no_of_cpus > 0) {
cpu_ksps = (kstat_t **) malloc(no_of_cpus*sizeof(kstat_t *));
if(!cpu_ksps)
error("Error allocating memory");
i = 0;
for(ksp = kstat_ctl->kc_chain;
ksp && i < no_of_cpus;
ksp = ksp->ks_next) {
if (strcmp(ksp->ks_module, "cpu_stat") == 0
&& ksp->ks_type == KSTAT_TYPE_RAW) {
cpu_ksps[i++] = ksp;
}
}
if (i != no_of_cpus)
error("Error: private kstat chain copy unexpectedly changed");
/* Erlang assumes that cpu information are sent in ascending order;
sort them ... */
qsort((void *)cpu_ksps,(size_t)no_of_cpus,sizeof(kstat_t *),cpu_cmp);
}
free((void *) resv);
/* kstat defined values are:
* CU_CPU_ID
* CU_USER
* CU_KERNEL
* CU_IO_WAIT
* CU_IDLE
*/
resv = (unsigned int *) malloc(sizeof(unsigned int)*(2 + 2*no_of_cpus*CU_KSTAT_VALUES));
if(!resv)
error("Error allocating memory");
}
/* Read cpu utilization statistics ... */
rv = resv;
rv++; /*first entry is np*/
rv++; /*second entry is ne*/
cpu_stats_read = 0;
for(i = 0; i < no_of_cpus; i++) {
if (kstat_read(kstat_ctl, cpu_ksps[i], NULL) != -1) {
cpu_stat_t *cpu_stat = (cpu_stat_t *)cpu_ksps[i]->ks_data;
rv[ 0] = CU_CPU_ID; rv[ 1] = cpu_ksps[i]->ks_instance;
rv[ 2] = CU_USER; rv[ 3] = cpu_stat->cpu_sysinfo.cpu[CPU_USER];
rv[ 4] = CU_KERNEL; rv[ 5] = cpu_stat->cpu_sysinfo.cpu[CPU_KERNEL];
rv[ 6] = CU_IO_WAIT; rv[ 7] = cpu_stat->cpu_sysinfo.cpu[CPU_WAIT];
rv[ 8] = CU_IDLE; rv[ 9] = cpu_stat->cpu_sysinfo.cpu[CPU_IDLE];
rv += CU_KSTAT_VALUES*2;
cpu_stats_read++;
}
}
resv[0] = cpu_stats_read;
resv[1] = CU_KSTAT_VALUES;
*result_vec = resv;
*result_sz = 2 + 2* CU_KSTAT_VALUES * cpu_stats_read;
}
#endif
/* ---------------------------- *
* OSX util functions *
* ---------------------------- */
#if (defined(__APPLE__) && defined(__MACH__))
static void util_measure(unsigned int **result_vec, int *result_sz) {
natural_t no_of_cpus;
processor_info_array_t info_array;
mach_msg_type_number_t info_count;
mach_port_t host_port;
kern_return_t error;
processor_cpu_load_info_data_t *cpu_load_info = NULL;
unsigned int *rv = NULL;
int i;
host_port = mach_host_self();
error = host_processor_info(host_port, PROCESSOR_CPU_LOAD_INFO,
&no_of_cpus, &info_array, &info_count);
if (error != KERN_SUCCESS) {
*result_sz = 0;
return;
}
mach_port_deallocate(mach_task_self(), host_port);
cpu_load_info = (processor_cpu_load_info_data_t *) info_array;
rv = *result_vec;
rv[0] = no_of_cpus;
rv[1] = CU_OSX_VALUES;
++rv; /* first value is number of cpus */
++rv; /* second value is number of entries */
for (i = 0; i < no_of_cpus; ++i) {
rv[0] = CU_CPU_ID; rv[1] = i;
rv[2] = CU_USER; rv[3] = cpu_load_info[i].cpu_ticks[CPU_STATE_USER];
rv[4] = CU_NICE_USER; rv[5] = cpu_load_info[i].cpu_ticks[CPU_STATE_NICE];
rv[6] = CU_KERNEL; rv[7] = cpu_load_info[i].cpu_ticks[CPU_STATE_SYSTEM];
rv[8] = CU_IDLE; rv[9] = cpu_load_info[i].cpu_ticks[CPU_STATE_IDLE];
rv += CU_OSX_VALUES*2;
}
*result_sz = 2 + 2*CU_OSX_VALUES * no_of_cpus;
error = vm_deallocate(mach_task_self(), (vm_address_t)info_array,
info_count * sizeof(int));
if (error != KERN_SUCCESS)
*result_sz = 0;
}
#endif
/* ---------------------------- *
* Utils for OSX and FreeBSD *
* ---------------------------- */
#if (defined(__APPLE__) && defined(__MACH__)) || defined(__FreeBSD__)
#define EXIT_WITH(msg) (rich_error(msg, __FILE__, __LINE__))
#define RICH_BUFLEN (213) /* left in error(char*) */
void rich_error(const char *reason, const char *file, const int line) {
char buf[RICH_BUFLEN];
snprintf(buf, RICH_BUFLEN, "%s (%s:%i)", reason, file, line);
error(buf);
}
#undef RICH_BUFLEN
void getsysctl(const char *name, void *ptr, size_t len)
{
size_t gotlen = len;
if (sysctlbyname(name, ptr, &gotlen, NULL, 0) != 0) {
EXIT_WITH("sysctlbyname failed");
}
if (gotlen != len) {
EXIT_WITH("sysctlbyname: unexpected length");
}
}
#endif
/* ---------------------------- *
* FreeBSD stat functions *
* ---------------------------- */
#if defined(__FreeBSD__)
static void util_measure(unsigned int **result_vec, int *result_sz) {
int no_of_cpus;
size_t size_cpu_times;
unsigned long *cpu_times;
unsigned int *rv = NULL;
int i;
getsysctl("hw.ncpu", &no_of_cpus, sizeof(int));
/* Header constant CPUSTATES = #long values per cpu. */
size_cpu_times = sizeof(long) * CPUSTATES * no_of_cpus;
cpu_times = malloc(size_cpu_times);
if (!cpu_times) {
EXIT_WITH("badalloc");
}
getsysctl("kern.cp_times", cpu_times, size_cpu_times);
rv = *result_vec;
rv[0] = no_of_cpus;
rv[1] = CU_BSD_VALUES;
++rv; /* first value is number of cpus */
++rv; /* second value is number of entries */
for (i = 0; i < no_of_cpus; ++i) {
int offset = i * CPUSTATES;
rv[ 0] = CU_CPU_ID; rv[ 1] = i;
rv[ 2] = CU_USER; rv[ 3] = cpu_times[CP_USER + offset];
rv[ 4] = CU_NICE_USER; rv[ 5] = cpu_times[CP_NICE + offset];
rv[ 6] = CU_KERNEL; rv[ 7] = cpu_times[CP_SYS + offset];
rv[ 8] = CU_IDLE; rv[ 9] = cpu_times[CP_IDLE + offset];
rv[10] = CU_HARD_IRQ; rv[11] = cpu_times[CP_INTR + offset];
rv += CU_BSD_VALUES*2;
}
*result_sz = 2 + 2*CU_BSD_VALUES * no_of_cpus;
}
#endif
/* ---------------------------- *
* Generic functions *
* ---------------------------- */
static void sendi(unsigned int data) { sendv(&data, 1); }
static void sendv(unsigned int data[], int ints) {
static unsigned char *buf = NULL;
static int bufsz = 0;
int rc, di, bi, msgsz;
/* Assumes 32-bit integers... */
msgsz = 4*ints;
if(bufsz < msgsz) {
if (buf != NULL) free((void *) buf);
buf = malloc(msgsz);
if (!buf) error("Error allocating memory");
bufsz = msgsz;
}
for(bi = 0, di = 0; di < ints; di++) {
buf[bi++] = (data[di] >> 24) & 0xff;
buf[bi++] = (data[di] >> 16) & 0xff;
buf[bi++] = (data[di] >> 8) & 0xff;
buf[bi++] = (data[di] ) & 0xff;
}
bi = 0;
do {
rc = write(FD_OUT, &buf[bi], msgsz - bi);
if (rc < 0) {
if (errno == EINTR)
continue;
error("Error writing to Erlang");
}
bi += rc;
} while(msgsz - bi > 0);
}
static void error(char* err_msg) {
/*
* if we get error here we have trouble,
* silence unnecessary warnings
*/
char buffer[256] = "[os_mon] cpu supervisor port (cpu_sup): ";
int i = strlen(buffer), j = 0;
int n = strlen(err_msg);
while(i < 253 && j < n) {
buffer[i++] = err_msg[j++];
}
buffer[i++] = '\r';
buffer[i++] = '\n';
/* try to use one write only */
if(write(FD_ERR, buffer, i))
;
exit(-1);
}
|
the_stack_data/190766858.c | # 1 "benchmarks/ds-02-impl1.c"
# 1 "<built-in>"
# 1 "<command-line>"
# 1 "/usr/include/stdc-predef.h" 1 3 4
# 1 "<command-line>" 2
# 1 "benchmarks/ds-02-impl1.c"
# 1 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/dsverifier.h" 1
# 20 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/dsverifier.h"
# 1 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/core/definitions.h" 1
# 132 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/core/definitions.h"
int X_SIZE_VALUE = 0;
int overflow_mode = 1;
int rounding_mode = 0;
# 155 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/core/definitions.h"
typedef struct {
double a[100];
int a_size;
double b[100];
int b_size;
double sample_time;
double a_uncertainty[100];
double b_uncertainty[100];
} digital_system;
typedef struct {
double A[4][4];
double B[4][4];
double C[4][4];
double D[4][4];
double states[4][4];
double outputs[4][4];
double inputs[4][4];
double K[4][4];
unsigned int nStates;
unsigned int nInputs;
unsigned int nOutputs;
} digital_system_state_space;
typedef struct {
int int_bits;
int frac_bits;
double max;
double min;
int default_realization;
double delta;
int scale;
double max_error;
} implementation;
typedef struct {
int push;
int in;
int sbiw;
int cli;
int out;
int std;
int ldd;
int subi;
int sbci;
int lsl;
int rol;
int add;
int adc;
int adiw;
int rjmp;
int mov;
int sbc;
int ld;
int rcall;
int cp;
int cpc;
int ldi;
int brge;
int pop;
int ret;
int st;
int brlt;
int cpi;
} instructions;
typedef struct {
long clock;
int device;
double cycle;
instructions assembly;
} hardware;
typedef struct{
float Ap, Ar, Ac;
float wp, wc, wr;
int type;
}filter_parameters;
# 21 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/dsverifier.h" 2
# 1 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/core/compatibility.h" 1
# 17 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/core/compatibility.h"
# 1 "/usr/include/stdlib.h" 1 3 4
# 25 "/usr/include/stdlib.h" 3 4
# 1 "/usr/include/x86_64-linux-gnu/bits/libc-header-start.h" 1 3 4
# 33 "/usr/include/x86_64-linux-gnu/bits/libc-header-start.h" 3 4
# 1 "/usr/include/features.h" 1 3 4
# 461 "/usr/include/features.h" 3 4
# 1 "/usr/include/x86_64-linux-gnu/sys/cdefs.h" 1 3 4
# 452 "/usr/include/x86_64-linux-gnu/sys/cdefs.h" 3 4
# 1 "/usr/include/x86_64-linux-gnu/bits/wordsize.h" 1 3 4
# 453 "/usr/include/x86_64-linux-gnu/sys/cdefs.h" 2 3 4
# 1 "/usr/include/x86_64-linux-gnu/bits/long-double.h" 1 3 4
# 454 "/usr/include/x86_64-linux-gnu/sys/cdefs.h" 2 3 4
# 462 "/usr/include/features.h" 2 3 4
# 485 "/usr/include/features.h" 3 4
# 1 "/usr/include/x86_64-linux-gnu/gnu/stubs.h" 1 3 4
# 10 "/usr/include/x86_64-linux-gnu/gnu/stubs.h" 3 4
# 1 "/usr/include/x86_64-linux-gnu/gnu/stubs-64.h" 1 3 4
# 11 "/usr/include/x86_64-linux-gnu/gnu/stubs.h" 2 3 4
# 486 "/usr/include/features.h" 2 3 4
# 34 "/usr/include/x86_64-linux-gnu/bits/libc-header-start.h" 2 3 4
# 26 "/usr/include/stdlib.h" 2 3 4
# 1 "/usr/lib/gcc/x86_64-linux-gnu/9/include/stddef.h" 1 3 4
# 209 "/usr/lib/gcc/x86_64-linux-gnu/9/include/stddef.h" 3 4
# 209 "/usr/lib/gcc/x86_64-linux-gnu/9/include/stddef.h" 3 4
typedef long unsigned int size_t;
# 321 "/usr/lib/gcc/x86_64-linux-gnu/9/include/stddef.h" 3 4
typedef int wchar_t;
# 32 "/usr/include/stdlib.h" 2 3 4
# 1 "/usr/include/x86_64-linux-gnu/bits/waitflags.h" 1 3 4
# 52 "/usr/include/x86_64-linux-gnu/bits/waitflags.h" 3 4
typedef enum
{
P_ALL,
P_PID,
P_PGID
} idtype_t;
# 40 "/usr/include/stdlib.h" 2 3 4
# 1 "/usr/include/x86_64-linux-gnu/bits/waitstatus.h" 1 3 4
# 41 "/usr/include/stdlib.h" 2 3 4
# 55 "/usr/include/stdlib.h" 3 4
# 1 "/usr/include/x86_64-linux-gnu/bits/floatn.h" 1 3 4
# 120 "/usr/include/x86_64-linux-gnu/bits/floatn.h" 3 4
# 1 "/usr/include/x86_64-linux-gnu/bits/floatn-common.h" 1 3 4
# 24 "/usr/include/x86_64-linux-gnu/bits/floatn-common.h" 3 4
# 1 "/usr/include/x86_64-linux-gnu/bits/long-double.h" 1 3 4
# 25 "/usr/include/x86_64-linux-gnu/bits/floatn-common.h" 2 3 4
# 121 "/usr/include/x86_64-linux-gnu/bits/floatn.h" 2 3 4
# 56 "/usr/include/stdlib.h" 2 3 4
typedef struct
{
int quot;
int rem;
} div_t;
typedef struct
{
long int quot;
long int rem;
} ldiv_t;
__extension__ typedef struct
{
long long int quot;
long long int rem;
} lldiv_t;
# 97 "/usr/include/stdlib.h" 3 4
extern size_t __ctype_get_mb_cur_max (void) __attribute__ ((__nothrow__ , __leaf__)) ;
extern double atof (const char *__nptr)
__attribute__ ((__nothrow__ , __leaf__)) __attribute__ ((__pure__)) __attribute__ ((__nonnull__ (1))) ;
extern int atoi (const char *__nptr)
__attribute__ ((__nothrow__ , __leaf__)) __attribute__ ((__pure__)) __attribute__ ((__nonnull__ (1))) ;
extern long int atol (const char *__nptr)
__attribute__ ((__nothrow__ , __leaf__)) __attribute__ ((__pure__)) __attribute__ ((__nonnull__ (1))) ;
__extension__ extern long long int atoll (const char *__nptr)
__attribute__ ((__nothrow__ , __leaf__)) __attribute__ ((__pure__)) __attribute__ ((__nonnull__ (1))) ;
extern double strtod (const char *__restrict __nptr,
char **__restrict __endptr)
__attribute__ ((__nothrow__ , __leaf__)) __attribute__ ((__nonnull__ (1)));
extern float strtof (const char *__restrict __nptr,
char **__restrict __endptr) __attribute__ ((__nothrow__ , __leaf__)) __attribute__ ((__nonnull__ (1)));
extern long double strtold (const char *__restrict __nptr,
char **__restrict __endptr)
__attribute__ ((__nothrow__ , __leaf__)) __attribute__ ((__nonnull__ (1)));
# 176 "/usr/include/stdlib.h" 3 4
extern long int strtol (const char *__restrict __nptr,
char **__restrict __endptr, int __base)
__attribute__ ((__nothrow__ , __leaf__)) __attribute__ ((__nonnull__ (1)));
extern unsigned long int strtoul (const char *__restrict __nptr,
char **__restrict __endptr, int __base)
__attribute__ ((__nothrow__ , __leaf__)) __attribute__ ((__nonnull__ (1)));
__extension__
extern long long int strtoq (const char *__restrict __nptr,
char **__restrict __endptr, int __base)
__attribute__ ((__nothrow__ , __leaf__)) __attribute__ ((__nonnull__ (1)));
__extension__
extern unsigned long long int strtouq (const char *__restrict __nptr,
char **__restrict __endptr, int __base)
__attribute__ ((__nothrow__ , __leaf__)) __attribute__ ((__nonnull__ (1)));
__extension__
extern long long int strtoll (const char *__restrict __nptr,
char **__restrict __endptr, int __base)
__attribute__ ((__nothrow__ , __leaf__)) __attribute__ ((__nonnull__ (1)));
__extension__
extern unsigned long long int strtoull (const char *__restrict __nptr,
char **__restrict __endptr, int __base)
__attribute__ ((__nothrow__ , __leaf__)) __attribute__ ((__nonnull__ (1)));
# 385 "/usr/include/stdlib.h" 3 4
extern char *l64a (long int __n) __attribute__ ((__nothrow__ , __leaf__)) ;
extern long int a64l (const char *__s)
__attribute__ ((__nothrow__ , __leaf__)) __attribute__ ((__pure__)) __attribute__ ((__nonnull__ (1))) ;
# 1 "/usr/include/x86_64-linux-gnu/sys/types.h" 1 3 4
# 27 "/usr/include/x86_64-linux-gnu/sys/types.h" 3 4
# 1 "/usr/include/x86_64-linux-gnu/bits/types.h" 1 3 4
# 27 "/usr/include/x86_64-linux-gnu/bits/types.h" 3 4
# 1 "/usr/include/x86_64-linux-gnu/bits/wordsize.h" 1 3 4
# 28 "/usr/include/x86_64-linux-gnu/bits/types.h" 2 3 4
# 1 "/usr/include/x86_64-linux-gnu/bits/timesize.h" 1 3 4
# 29 "/usr/include/x86_64-linux-gnu/bits/types.h" 2 3 4
typedef unsigned char __u_char;
typedef unsigned short int __u_short;
typedef unsigned int __u_int;
typedef unsigned long int __u_long;
typedef signed char __int8_t;
typedef unsigned char __uint8_t;
typedef signed short int __int16_t;
typedef unsigned short int __uint16_t;
typedef signed int __int32_t;
typedef unsigned int __uint32_t;
typedef signed long int __int64_t;
typedef unsigned long int __uint64_t;
typedef __int8_t __int_least8_t;
typedef __uint8_t __uint_least8_t;
typedef __int16_t __int_least16_t;
typedef __uint16_t __uint_least16_t;
typedef __int32_t __int_least32_t;
typedef __uint32_t __uint_least32_t;
typedef __int64_t __int_least64_t;
typedef __uint64_t __uint_least64_t;
typedef long int __quad_t;
typedef unsigned long int __u_quad_t;
typedef long int __intmax_t;
typedef unsigned long int __uintmax_t;
# 141 "/usr/include/x86_64-linux-gnu/bits/types.h" 3 4
# 1 "/usr/include/x86_64-linux-gnu/bits/typesizes.h" 1 3 4
# 142 "/usr/include/x86_64-linux-gnu/bits/types.h" 2 3 4
# 1 "/usr/include/x86_64-linux-gnu/bits/time64.h" 1 3 4
# 143 "/usr/include/x86_64-linux-gnu/bits/types.h" 2 3 4
typedef unsigned long int __dev_t;
typedef unsigned int __uid_t;
typedef unsigned int __gid_t;
typedef unsigned long int __ino_t;
typedef unsigned long int __ino64_t;
typedef unsigned int __mode_t;
typedef unsigned long int __nlink_t;
typedef long int __off_t;
typedef long int __off64_t;
typedef int __pid_t;
typedef struct { int __val[2]; } __fsid_t;
typedef long int __clock_t;
typedef unsigned long int __rlim_t;
typedef unsigned long int __rlim64_t;
typedef unsigned int __id_t;
typedef long int __time_t;
typedef unsigned int __useconds_t;
typedef long int __suseconds_t;
typedef int __daddr_t;
typedef int __key_t;
typedef int __clockid_t;
typedef void * __timer_t;
typedef long int __blksize_t;
typedef long int __blkcnt_t;
typedef long int __blkcnt64_t;
typedef unsigned long int __fsblkcnt_t;
typedef unsigned long int __fsblkcnt64_t;
typedef unsigned long int __fsfilcnt_t;
typedef unsigned long int __fsfilcnt64_t;
typedef long int __fsword_t;
typedef long int __ssize_t;
typedef long int __syscall_slong_t;
typedef unsigned long int __syscall_ulong_t;
typedef __off64_t __loff_t;
typedef char *__caddr_t;
typedef long int __intptr_t;
typedef unsigned int __socklen_t;
typedef int __sig_atomic_t;
# 30 "/usr/include/x86_64-linux-gnu/sys/types.h" 2 3 4
typedef __u_char u_char;
typedef __u_short u_short;
typedef __u_int u_int;
typedef __u_long u_long;
typedef __quad_t quad_t;
typedef __u_quad_t u_quad_t;
typedef __fsid_t fsid_t;
typedef __loff_t loff_t;
typedef __ino_t ino_t;
# 59 "/usr/include/x86_64-linux-gnu/sys/types.h" 3 4
typedef __dev_t dev_t;
typedef __gid_t gid_t;
typedef __mode_t mode_t;
typedef __nlink_t nlink_t;
typedef __uid_t uid_t;
typedef __off_t off_t;
# 97 "/usr/include/x86_64-linux-gnu/sys/types.h" 3 4
typedef __pid_t pid_t;
typedef __id_t id_t;
typedef __ssize_t ssize_t;
typedef __daddr_t daddr_t;
typedef __caddr_t caddr_t;
typedef __key_t key_t;
# 1 "/usr/include/x86_64-linux-gnu/bits/types/clock_t.h" 1 3 4
typedef __clock_t clock_t;
# 127 "/usr/include/x86_64-linux-gnu/sys/types.h" 2 3 4
# 1 "/usr/include/x86_64-linux-gnu/bits/types/clockid_t.h" 1 3 4
typedef __clockid_t clockid_t;
# 129 "/usr/include/x86_64-linux-gnu/sys/types.h" 2 3 4
# 1 "/usr/include/x86_64-linux-gnu/bits/types/time_t.h" 1 3 4
typedef __time_t time_t;
# 130 "/usr/include/x86_64-linux-gnu/sys/types.h" 2 3 4
# 1 "/usr/include/x86_64-linux-gnu/bits/types/timer_t.h" 1 3 4
typedef __timer_t timer_t;
# 131 "/usr/include/x86_64-linux-gnu/sys/types.h" 2 3 4
# 144 "/usr/include/x86_64-linux-gnu/sys/types.h" 3 4
# 1 "/usr/lib/gcc/x86_64-linux-gnu/9/include/stddef.h" 1 3 4
# 145 "/usr/include/x86_64-linux-gnu/sys/types.h" 2 3 4
typedef unsigned long int ulong;
typedef unsigned short int ushort;
typedef unsigned int uint;
# 1 "/usr/include/x86_64-linux-gnu/bits/stdint-intn.h" 1 3 4
# 24 "/usr/include/x86_64-linux-gnu/bits/stdint-intn.h" 3 4
typedef __int8_t int8_t;
typedef __int16_t int16_t;
typedef __int32_t int32_t;
typedef __int64_t int64_t;
# 156 "/usr/include/x86_64-linux-gnu/sys/types.h" 2 3 4
typedef __uint8_t u_int8_t;
typedef __uint16_t u_int16_t;
typedef __uint32_t u_int32_t;
typedef __uint64_t u_int64_t;
typedef int register_t __attribute__ ((__mode__ (__word__)));
# 176 "/usr/include/x86_64-linux-gnu/sys/types.h" 3 4
# 1 "/usr/include/endian.h" 1 3 4
# 24 "/usr/include/endian.h" 3 4
# 1 "/usr/include/x86_64-linux-gnu/bits/endian.h" 1 3 4
# 35 "/usr/include/x86_64-linux-gnu/bits/endian.h" 3 4
# 1 "/usr/include/x86_64-linux-gnu/bits/endianness.h" 1 3 4
# 36 "/usr/include/x86_64-linux-gnu/bits/endian.h" 2 3 4
# 25 "/usr/include/endian.h" 2 3 4
# 35 "/usr/include/endian.h" 3 4
# 1 "/usr/include/x86_64-linux-gnu/bits/byteswap.h" 1 3 4
# 33 "/usr/include/x86_64-linux-gnu/bits/byteswap.h" 3 4
static __inline __uint16_t
__bswap_16 (__uint16_t __bsx)
{
return __builtin_bswap16 (__bsx);
}
static __inline __uint32_t
__bswap_32 (__uint32_t __bsx)
{
return __builtin_bswap32 (__bsx);
}
# 69 "/usr/include/x86_64-linux-gnu/bits/byteswap.h" 3 4
__extension__ static __inline __uint64_t
__bswap_64 (__uint64_t __bsx)
{
return __builtin_bswap64 (__bsx);
}
# 36 "/usr/include/endian.h" 2 3 4
# 1 "/usr/include/x86_64-linux-gnu/bits/uintn-identity.h" 1 3 4
# 32 "/usr/include/x86_64-linux-gnu/bits/uintn-identity.h" 3 4
static __inline __uint16_t
__uint16_identity (__uint16_t __x)
{
return __x;
}
static __inline __uint32_t
__uint32_identity (__uint32_t __x)
{
return __x;
}
static __inline __uint64_t
__uint64_identity (__uint64_t __x)
{
return __x;
}
# 37 "/usr/include/endian.h" 2 3 4
# 177 "/usr/include/x86_64-linux-gnu/sys/types.h" 2 3 4
# 1 "/usr/include/x86_64-linux-gnu/sys/select.h" 1 3 4
# 30 "/usr/include/x86_64-linux-gnu/sys/select.h" 3 4
# 1 "/usr/include/x86_64-linux-gnu/bits/select.h" 1 3 4
# 22 "/usr/include/x86_64-linux-gnu/bits/select.h" 3 4
# 1 "/usr/include/x86_64-linux-gnu/bits/wordsize.h" 1 3 4
# 23 "/usr/include/x86_64-linux-gnu/bits/select.h" 2 3 4
# 31 "/usr/include/x86_64-linux-gnu/sys/select.h" 2 3 4
# 1 "/usr/include/x86_64-linux-gnu/bits/types/sigset_t.h" 1 3 4
# 1 "/usr/include/x86_64-linux-gnu/bits/types/__sigset_t.h" 1 3 4
typedef struct
{
unsigned long int __val[(1024 / (8 * sizeof (unsigned long int)))];
} __sigset_t;
# 5 "/usr/include/x86_64-linux-gnu/bits/types/sigset_t.h" 2 3 4
typedef __sigset_t sigset_t;
# 34 "/usr/include/x86_64-linux-gnu/sys/select.h" 2 3 4
# 1 "/usr/include/x86_64-linux-gnu/bits/types/struct_timeval.h" 1 3 4
struct timeval
{
__time_t tv_sec;
__suseconds_t tv_usec;
};
# 38 "/usr/include/x86_64-linux-gnu/sys/select.h" 2 3 4
# 1 "/usr/include/x86_64-linux-gnu/bits/types/struct_timespec.h" 1 3 4
# 10 "/usr/include/x86_64-linux-gnu/bits/types/struct_timespec.h" 3 4
struct timespec
{
__time_t tv_sec;
__syscall_slong_t tv_nsec;
# 26 "/usr/include/x86_64-linux-gnu/bits/types/struct_timespec.h" 3 4
};
# 40 "/usr/include/x86_64-linux-gnu/sys/select.h" 2 3 4
typedef __suseconds_t suseconds_t;
typedef long int __fd_mask;
# 59 "/usr/include/x86_64-linux-gnu/sys/select.h" 3 4
typedef struct
{
__fd_mask __fds_bits[1024 / (8 * (int) sizeof (__fd_mask))];
} fd_set;
typedef __fd_mask fd_mask;
# 91 "/usr/include/x86_64-linux-gnu/sys/select.h" 3 4
# 101 "/usr/include/x86_64-linux-gnu/sys/select.h" 3 4
extern int select (int __nfds, fd_set *__restrict __readfds,
fd_set *__restrict __writefds,
fd_set *__restrict __exceptfds,
struct timeval *__restrict __timeout);
# 113 "/usr/include/x86_64-linux-gnu/sys/select.h" 3 4
extern int pselect (int __nfds, fd_set *__restrict __readfds,
fd_set *__restrict __writefds,
fd_set *__restrict __exceptfds,
const struct timespec *__restrict __timeout,
const __sigset_t *__restrict __sigmask);
# 126 "/usr/include/x86_64-linux-gnu/sys/select.h" 3 4
# 180 "/usr/include/x86_64-linux-gnu/sys/types.h" 2 3 4
typedef __blksize_t blksize_t;
typedef __blkcnt_t blkcnt_t;
typedef __fsblkcnt_t fsblkcnt_t;
typedef __fsfilcnt_t fsfilcnt_t;
# 227 "/usr/include/x86_64-linux-gnu/sys/types.h" 3 4
# 1 "/usr/include/x86_64-linux-gnu/bits/pthreadtypes.h" 1 3 4
# 23 "/usr/include/x86_64-linux-gnu/bits/pthreadtypes.h" 3 4
# 1 "/usr/include/x86_64-linux-gnu/bits/thread-shared-types.h" 1 3 4
# 44 "/usr/include/x86_64-linux-gnu/bits/thread-shared-types.h" 3 4
# 1 "/usr/include/x86_64-linux-gnu/bits/pthreadtypes-arch.h" 1 3 4
# 21 "/usr/include/x86_64-linux-gnu/bits/pthreadtypes-arch.h" 3 4
# 1 "/usr/include/x86_64-linux-gnu/bits/wordsize.h" 1 3 4
# 22 "/usr/include/x86_64-linux-gnu/bits/pthreadtypes-arch.h" 2 3 4
# 45 "/usr/include/x86_64-linux-gnu/bits/thread-shared-types.h" 2 3 4
typedef struct __pthread_internal_list
{
struct __pthread_internal_list *__prev;
struct __pthread_internal_list *__next;
} __pthread_list_t;
typedef struct __pthread_internal_slist
{
struct __pthread_internal_slist *__next;
} __pthread_slist_t;
# 74 "/usr/include/x86_64-linux-gnu/bits/thread-shared-types.h" 3 4
# 1 "/usr/include/x86_64-linux-gnu/bits/struct_mutex.h" 1 3 4
# 22 "/usr/include/x86_64-linux-gnu/bits/struct_mutex.h" 3 4
struct __pthread_mutex_s
{
int __lock;
unsigned int __count;
int __owner;
unsigned int __nusers;
int __kind;
short __spins;
short __elision;
__pthread_list_t __list;
# 53 "/usr/include/x86_64-linux-gnu/bits/struct_mutex.h" 3 4
};
# 75 "/usr/include/x86_64-linux-gnu/bits/thread-shared-types.h" 2 3 4
# 87 "/usr/include/x86_64-linux-gnu/bits/thread-shared-types.h" 3 4
# 1 "/usr/include/x86_64-linux-gnu/bits/struct_rwlock.h" 1 3 4
# 23 "/usr/include/x86_64-linux-gnu/bits/struct_rwlock.h" 3 4
struct __pthread_rwlock_arch_t
{
unsigned int __readers;
unsigned int __writers;
unsigned int __wrphase_futex;
unsigned int __writers_futex;
unsigned int __pad3;
unsigned int __pad4;
int __cur_writer;
int __shared;
signed char __rwelision;
unsigned char __pad1[7];
unsigned long int __pad2;
unsigned int __flags;
# 55 "/usr/include/x86_64-linux-gnu/bits/struct_rwlock.h" 3 4
};
# 88 "/usr/include/x86_64-linux-gnu/bits/thread-shared-types.h" 2 3 4
struct __pthread_cond_s
{
__extension__ union
{
__extension__ unsigned long long int __wseq;
struct
{
unsigned int __low;
unsigned int __high;
} __wseq32;
};
__extension__ union
{
__extension__ unsigned long long int __g1_start;
struct
{
unsigned int __low;
unsigned int __high;
} __g1_start32;
};
unsigned int __g_refs[2] ;
unsigned int __g_size[2];
unsigned int __g1_orig_size;
unsigned int __wrefs;
unsigned int __g_signals[2];
};
# 24 "/usr/include/x86_64-linux-gnu/bits/pthreadtypes.h" 2 3 4
typedef unsigned long int pthread_t;
typedef union
{
char __size[4];
int __align;
} pthread_mutexattr_t;
typedef union
{
char __size[4];
int __align;
} pthread_condattr_t;
typedef unsigned int pthread_key_t;
typedef int pthread_once_t;
union pthread_attr_t
{
char __size[56];
long int __align;
};
typedef union pthread_attr_t pthread_attr_t;
typedef union
{
struct __pthread_mutex_s __data;
char __size[40];
long int __align;
} pthread_mutex_t;
typedef union
{
struct __pthread_cond_s __data;
char __size[48];
__extension__ long long int __align;
} pthread_cond_t;
typedef union
{
struct __pthread_rwlock_arch_t __data;
char __size[56];
long int __align;
} pthread_rwlock_t;
typedef union
{
char __size[8];
long int __align;
} pthread_rwlockattr_t;
typedef volatile int pthread_spinlock_t;
typedef union
{
char __size[32];
long int __align;
} pthread_barrier_t;
typedef union
{
char __size[4];
int __align;
} pthread_barrierattr_t;
# 228 "/usr/include/x86_64-linux-gnu/sys/types.h" 2 3 4
# 395 "/usr/include/stdlib.h" 2 3 4
extern long int random (void) __attribute__ ((__nothrow__ , __leaf__));
extern void srandom (unsigned int __seed) __attribute__ ((__nothrow__ , __leaf__));
extern char *initstate (unsigned int __seed, char *__statebuf,
size_t __statelen) __attribute__ ((__nothrow__ , __leaf__)) __attribute__ ((__nonnull__ (2)));
extern char *setstate (char *__statebuf) __attribute__ ((__nothrow__ , __leaf__)) __attribute__ ((__nonnull__ (1)));
struct random_data
{
int32_t *fptr;
int32_t *rptr;
int32_t *state;
int rand_type;
int rand_deg;
int rand_sep;
int32_t *end_ptr;
};
extern int random_r (struct random_data *__restrict __buf,
int32_t *__restrict __result) __attribute__ ((__nothrow__ , __leaf__)) __attribute__ ((__nonnull__ (1, 2)));
extern int srandom_r (unsigned int __seed, struct random_data *__buf)
__attribute__ ((__nothrow__ , __leaf__)) __attribute__ ((__nonnull__ (2)));
extern int initstate_r (unsigned int __seed, char *__restrict __statebuf,
size_t __statelen,
struct random_data *__restrict __buf)
__attribute__ ((__nothrow__ , __leaf__)) __attribute__ ((__nonnull__ (2, 4)));
extern int setstate_r (char *__restrict __statebuf,
struct random_data *__restrict __buf)
__attribute__ ((__nothrow__ , __leaf__)) __attribute__ ((__nonnull__ (1, 2)));
extern int rand (void) __attribute__ ((__nothrow__ , __leaf__));
extern void srand (unsigned int __seed) __attribute__ ((__nothrow__ , __leaf__));
extern int rand_r (unsigned int *__seed) __attribute__ ((__nothrow__ , __leaf__));
extern double drand48 (void) __attribute__ ((__nothrow__ , __leaf__));
extern double erand48 (unsigned short int __xsubi[3]) __attribute__ ((__nothrow__ , __leaf__)) __attribute__ ((__nonnull__ (1)));
extern long int lrand48 (void) __attribute__ ((__nothrow__ , __leaf__));
extern long int nrand48 (unsigned short int __xsubi[3])
__attribute__ ((__nothrow__ , __leaf__)) __attribute__ ((__nonnull__ (1)));
extern long int mrand48 (void) __attribute__ ((__nothrow__ , __leaf__));
extern long int jrand48 (unsigned short int __xsubi[3])
__attribute__ ((__nothrow__ , __leaf__)) __attribute__ ((__nonnull__ (1)));
extern void srand48 (long int __seedval) __attribute__ ((__nothrow__ , __leaf__));
extern unsigned short int *seed48 (unsigned short int __seed16v[3])
__attribute__ ((__nothrow__ , __leaf__)) __attribute__ ((__nonnull__ (1)));
extern void lcong48 (unsigned short int __param[7]) __attribute__ ((__nothrow__ , __leaf__)) __attribute__ ((__nonnull__ (1)));
struct drand48_data
{
unsigned short int __x[3];
unsigned short int __old_x[3];
unsigned short int __c;
unsigned short int __init;
__extension__ unsigned long long int __a;
};
extern int drand48_r (struct drand48_data *__restrict __buffer,
double *__restrict __result) __attribute__ ((__nothrow__ , __leaf__)) __attribute__ ((__nonnull__ (1, 2)));
extern int erand48_r (unsigned short int __xsubi[3],
struct drand48_data *__restrict __buffer,
double *__restrict __result) __attribute__ ((__nothrow__ , __leaf__)) __attribute__ ((__nonnull__ (1, 2)));
extern int lrand48_r (struct drand48_data *__restrict __buffer,
long int *__restrict __result)
__attribute__ ((__nothrow__ , __leaf__)) __attribute__ ((__nonnull__ (1, 2)));
extern int nrand48_r (unsigned short int __xsubi[3],
struct drand48_data *__restrict __buffer,
long int *__restrict __result)
__attribute__ ((__nothrow__ , __leaf__)) __attribute__ ((__nonnull__ (1, 2)));
extern int mrand48_r (struct drand48_data *__restrict __buffer,
long int *__restrict __result)
__attribute__ ((__nothrow__ , __leaf__)) __attribute__ ((__nonnull__ (1, 2)));
extern int jrand48_r (unsigned short int __xsubi[3],
struct drand48_data *__restrict __buffer,
long int *__restrict __result)
__attribute__ ((__nothrow__ , __leaf__)) __attribute__ ((__nonnull__ (1, 2)));
extern int srand48_r (long int __seedval, struct drand48_data *__buffer)
__attribute__ ((__nothrow__ , __leaf__)) __attribute__ ((__nonnull__ (2)));
extern int seed48_r (unsigned short int __seed16v[3],
struct drand48_data *__buffer) __attribute__ ((__nothrow__ , __leaf__)) __attribute__ ((__nonnull__ (1, 2)));
extern int lcong48_r (unsigned short int __param[7],
struct drand48_data *__buffer)
__attribute__ ((__nothrow__ , __leaf__)) __attribute__ ((__nonnull__ (1, 2)));
extern void *malloc (size_t __size) __attribute__ ((__nothrow__ , __leaf__)) __attribute__ ((__malloc__))
__attribute__ ((__alloc_size__ (1))) ;
extern void *calloc (size_t __nmemb, size_t __size)
__attribute__ ((__nothrow__ , __leaf__)) __attribute__ ((__malloc__)) __attribute__ ((__alloc_size__ (1, 2))) ;
extern void *realloc (void *__ptr, size_t __size)
__attribute__ ((__nothrow__ , __leaf__)) __attribute__ ((__warn_unused_result__)) __attribute__ ((__alloc_size__ (2)));
extern void *reallocarray (void *__ptr, size_t __nmemb, size_t __size)
__attribute__ ((__nothrow__ , __leaf__)) __attribute__ ((__warn_unused_result__))
__attribute__ ((__alloc_size__ (2, 3)));
extern void free (void *__ptr) __attribute__ ((__nothrow__ , __leaf__));
# 1 "/usr/include/alloca.h" 1 3 4
# 24 "/usr/include/alloca.h" 3 4
# 1 "/usr/lib/gcc/x86_64-linux-gnu/9/include/stddef.h" 1 3 4
# 25 "/usr/include/alloca.h" 2 3 4
extern void *alloca (size_t __size) __attribute__ ((__nothrow__ , __leaf__));
# 569 "/usr/include/stdlib.h" 2 3 4
extern void *valloc (size_t __size) __attribute__ ((__nothrow__ , __leaf__)) __attribute__ ((__malloc__))
__attribute__ ((__alloc_size__ (1))) ;
extern int posix_memalign (void **__memptr, size_t __alignment, size_t __size)
__attribute__ ((__nothrow__ , __leaf__)) __attribute__ ((__nonnull__ (1))) ;
extern void *aligned_alloc (size_t __alignment, size_t __size)
__attribute__ ((__nothrow__ , __leaf__)) __attribute__ ((__malloc__)) __attribute__ ((__alloc_size__ (2))) ;
extern void abort (void) __attribute__ ((__nothrow__ , __leaf__)) __attribute__ ((__noreturn__));
extern int atexit (void (*__func) (void)) __attribute__ ((__nothrow__ , __leaf__)) __attribute__ ((__nonnull__ (1)));
extern int at_quick_exit (void (*__func) (void)) __attribute__ ((__nothrow__ , __leaf__)) __attribute__ ((__nonnull__ (1)));
extern int on_exit (void (*__func) (int __status, void *__arg), void *__arg)
__attribute__ ((__nothrow__ , __leaf__)) __attribute__ ((__nonnull__ (1)));
extern void exit (int __status) __attribute__ ((__nothrow__ , __leaf__)) __attribute__ ((__noreturn__));
extern void quick_exit (int __status) __attribute__ ((__nothrow__ , __leaf__)) __attribute__ ((__noreturn__));
extern void _Exit (int __status) __attribute__ ((__nothrow__ , __leaf__)) __attribute__ ((__noreturn__));
extern char *getenv (const char *__name) __attribute__ ((__nothrow__ , __leaf__)) __attribute__ ((__nonnull__ (1))) ;
# 647 "/usr/include/stdlib.h" 3 4
extern int putenv (char *__string) __attribute__ ((__nothrow__ , __leaf__)) __attribute__ ((__nonnull__ (1)));
extern int setenv (const char *__name, const char *__value, int __replace)
__attribute__ ((__nothrow__ , __leaf__)) __attribute__ ((__nonnull__ (2)));
extern int unsetenv (const char *__name) __attribute__ ((__nothrow__ , __leaf__)) __attribute__ ((__nonnull__ (1)));
extern int clearenv (void) __attribute__ ((__nothrow__ , __leaf__));
# 675 "/usr/include/stdlib.h" 3 4
extern char *mktemp (char *__template) __attribute__ ((__nothrow__ , __leaf__)) __attribute__ ((__nonnull__ (1)));
# 688 "/usr/include/stdlib.h" 3 4
extern int mkstemp (char *__template) __attribute__ ((__nonnull__ (1))) ;
# 710 "/usr/include/stdlib.h" 3 4
extern int mkstemps (char *__template, int __suffixlen) __attribute__ ((__nonnull__ (1))) ;
# 731 "/usr/include/stdlib.h" 3 4
extern char *mkdtemp (char *__template) __attribute__ ((__nothrow__ , __leaf__)) __attribute__ ((__nonnull__ (1))) ;
# 784 "/usr/include/stdlib.h" 3 4
extern int system (const char *__command) ;
# 800 "/usr/include/stdlib.h" 3 4
extern char *realpath (const char *__restrict __name,
char *__restrict __resolved) __attribute__ ((__nothrow__ , __leaf__)) ;
typedef int (*__compar_fn_t) (const void *, const void *);
# 820 "/usr/include/stdlib.h" 3 4
extern void *bsearch (const void *__key, const void *__base,
size_t __nmemb, size_t __size, __compar_fn_t __compar)
__attribute__ ((__nonnull__ (1, 2, 5))) ;
extern void qsort (void *__base, size_t __nmemb, size_t __size,
__compar_fn_t __compar) __attribute__ ((__nonnull__ (1, 4)));
# 840 "/usr/include/stdlib.h" 3 4
extern int abs (int __x) __attribute__ ((__nothrow__ , __leaf__)) __attribute__ ((__const__)) ;
extern long int labs (long int __x) __attribute__ ((__nothrow__ , __leaf__)) __attribute__ ((__const__)) ;
__extension__ extern long long int llabs (long long int __x)
__attribute__ ((__nothrow__ , __leaf__)) __attribute__ ((__const__)) ;
extern div_t div (int __numer, int __denom)
__attribute__ ((__nothrow__ , __leaf__)) __attribute__ ((__const__)) ;
extern ldiv_t ldiv (long int __numer, long int __denom)
__attribute__ ((__nothrow__ , __leaf__)) __attribute__ ((__const__)) ;
__extension__ extern lldiv_t lldiv (long long int __numer,
long long int __denom)
__attribute__ ((__nothrow__ , __leaf__)) __attribute__ ((__const__)) ;
# 872 "/usr/include/stdlib.h" 3 4
extern char *ecvt (double __value, int __ndigit, int *__restrict __decpt,
int *__restrict __sign) __attribute__ ((__nothrow__ , __leaf__)) __attribute__ ((__nonnull__ (3, 4))) ;
extern char *fcvt (double __value, int __ndigit, int *__restrict __decpt,
int *__restrict __sign) __attribute__ ((__nothrow__ , __leaf__)) __attribute__ ((__nonnull__ (3, 4))) ;
extern char *gcvt (double __value, int __ndigit, char *__buf)
__attribute__ ((__nothrow__ , __leaf__)) __attribute__ ((__nonnull__ (3))) ;
extern char *qecvt (long double __value, int __ndigit,
int *__restrict __decpt, int *__restrict __sign)
__attribute__ ((__nothrow__ , __leaf__)) __attribute__ ((__nonnull__ (3, 4))) ;
extern char *qfcvt (long double __value, int __ndigit,
int *__restrict __decpt, int *__restrict __sign)
__attribute__ ((__nothrow__ , __leaf__)) __attribute__ ((__nonnull__ (3, 4))) ;
extern char *qgcvt (long double __value, int __ndigit, char *__buf)
__attribute__ ((__nothrow__ , __leaf__)) __attribute__ ((__nonnull__ (3))) ;
extern int ecvt_r (double __value, int __ndigit, int *__restrict __decpt,
int *__restrict __sign, char *__restrict __buf,
size_t __len) __attribute__ ((__nothrow__ , __leaf__)) __attribute__ ((__nonnull__ (3, 4, 5)));
extern int fcvt_r (double __value, int __ndigit, int *__restrict __decpt,
int *__restrict __sign, char *__restrict __buf,
size_t __len) __attribute__ ((__nothrow__ , __leaf__)) __attribute__ ((__nonnull__ (3, 4, 5)));
extern int qecvt_r (long double __value, int __ndigit,
int *__restrict __decpt, int *__restrict __sign,
char *__restrict __buf, size_t __len)
__attribute__ ((__nothrow__ , __leaf__)) __attribute__ ((__nonnull__ (3, 4, 5)));
extern int qfcvt_r (long double __value, int __ndigit,
int *__restrict __decpt, int *__restrict __sign,
char *__restrict __buf, size_t __len)
__attribute__ ((__nothrow__ , __leaf__)) __attribute__ ((__nonnull__ (3, 4, 5)));
extern int mblen (const char *__s, size_t __n) __attribute__ ((__nothrow__ , __leaf__));
extern int mbtowc (wchar_t *__restrict __pwc,
const char *__restrict __s, size_t __n) __attribute__ ((__nothrow__ , __leaf__));
extern int wctomb (char *__s, wchar_t __wchar) __attribute__ ((__nothrow__ , __leaf__));
extern size_t mbstowcs (wchar_t *__restrict __pwcs,
const char *__restrict __s, size_t __n) __attribute__ ((__nothrow__ , __leaf__));
extern size_t wcstombs (char *__restrict __s,
const wchar_t *__restrict __pwcs, size_t __n)
__attribute__ ((__nothrow__ , __leaf__));
extern int rpmatch (const char *__response) __attribute__ ((__nothrow__ , __leaf__)) __attribute__ ((__nonnull__ (1))) ;
# 957 "/usr/include/stdlib.h" 3 4
extern int getsubopt (char **__restrict __optionp,
char *const *__restrict __tokens,
char **__restrict __valuep)
__attribute__ ((__nothrow__ , __leaf__)) __attribute__ ((__nonnull__ (1, 2, 3))) ;
# 1003 "/usr/include/stdlib.h" 3 4
extern int getloadavg (double __loadavg[], int __nelem)
__attribute__ ((__nothrow__ , __leaf__)) __attribute__ ((__nonnull__ (1)));
# 1013 "/usr/include/stdlib.h" 3 4
# 1 "/usr/include/x86_64-linux-gnu/bits/stdlib-float.h" 1 3 4
# 1014 "/usr/include/stdlib.h" 2 3 4
# 1023 "/usr/include/stdlib.h" 3 4
# 18 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/core/compatibility.h" 2
# 1 "/usr/include/assert.h" 1 3 4
# 66 "/usr/include/assert.h" 3 4
extern void __assert_fail (const char *__assertion, const char *__file,
unsigned int __line, const char *__function)
__attribute__ ((__nothrow__ , __leaf__)) __attribute__ ((__noreturn__));
extern void __assert_perror_fail (int __errnum, const char *__file,
unsigned int __line, const char *__function)
__attribute__ ((__nothrow__ , __leaf__)) __attribute__ ((__noreturn__));
extern void __assert (const char *__assertion, const char *__file, int __line)
__attribute__ ((__nothrow__ , __leaf__)) __attribute__ ((__noreturn__));
# 19 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/core/compatibility.h" 2
# 1 "/usr/include/stdio.h" 1 3 4
# 27 "/usr/include/stdio.h" 3 4
# 1 "/usr/include/x86_64-linux-gnu/bits/libc-header-start.h" 1 3 4
# 28 "/usr/include/stdio.h" 2 3 4
# 1 "/usr/lib/gcc/x86_64-linux-gnu/9/include/stddef.h" 1 3 4
# 34 "/usr/include/stdio.h" 2 3 4
# 1 "/usr/lib/gcc/x86_64-linux-gnu/9/include/stdarg.h" 1 3 4
# 40 "/usr/lib/gcc/x86_64-linux-gnu/9/include/stdarg.h" 3 4
typedef __builtin_va_list __gnuc_va_list;
# 37 "/usr/include/stdio.h" 2 3 4
# 1 "/usr/include/x86_64-linux-gnu/bits/types/__fpos_t.h" 1 3 4
# 1 "/usr/include/x86_64-linux-gnu/bits/types/__mbstate_t.h" 1 3 4
# 13 "/usr/include/x86_64-linux-gnu/bits/types/__mbstate_t.h" 3 4
typedef struct
{
int __count;
union
{
unsigned int __wch;
char __wchb[4];
} __value;
} __mbstate_t;
# 6 "/usr/include/x86_64-linux-gnu/bits/types/__fpos_t.h" 2 3 4
typedef struct _G_fpos_t
{
__off_t __pos;
__mbstate_t __state;
} __fpos_t;
# 40 "/usr/include/stdio.h" 2 3 4
# 1 "/usr/include/x86_64-linux-gnu/bits/types/__fpos64_t.h" 1 3 4
# 10 "/usr/include/x86_64-linux-gnu/bits/types/__fpos64_t.h" 3 4
typedef struct _G_fpos64_t
{
__off64_t __pos;
__mbstate_t __state;
} __fpos64_t;
# 41 "/usr/include/stdio.h" 2 3 4
# 1 "/usr/include/x86_64-linux-gnu/bits/types/__FILE.h" 1 3 4
struct _IO_FILE;
typedef struct _IO_FILE __FILE;
# 42 "/usr/include/stdio.h" 2 3 4
# 1 "/usr/include/x86_64-linux-gnu/bits/types/FILE.h" 1 3 4
struct _IO_FILE;
typedef struct _IO_FILE FILE;
# 43 "/usr/include/stdio.h" 2 3 4
# 1 "/usr/include/x86_64-linux-gnu/bits/types/struct_FILE.h" 1 3 4
# 35 "/usr/include/x86_64-linux-gnu/bits/types/struct_FILE.h" 3 4
struct _IO_FILE;
struct _IO_marker;
struct _IO_codecvt;
struct _IO_wide_data;
typedef void _IO_lock_t;
struct _IO_FILE
{
int _flags;
char *_IO_read_ptr;
char *_IO_read_end;
char *_IO_read_base;
char *_IO_write_base;
char *_IO_write_ptr;
char *_IO_write_end;
char *_IO_buf_base;
char *_IO_buf_end;
char *_IO_save_base;
char *_IO_backup_base;
char *_IO_save_end;
struct _IO_marker *_markers;
struct _IO_FILE *_chain;
int _fileno;
int _flags2;
__off_t _old_offset;
unsigned short _cur_column;
signed char _vtable_offset;
char _shortbuf[1];
_IO_lock_t *_lock;
__off64_t _offset;
struct _IO_codecvt *_codecvt;
struct _IO_wide_data *_wide_data;
struct _IO_FILE *_freeres_list;
void *_freeres_buf;
size_t __pad5;
int _mode;
char _unused2[15 * sizeof (int) - 4 * sizeof (void *) - sizeof (size_t)];
};
# 44 "/usr/include/stdio.h" 2 3 4
# 52 "/usr/include/stdio.h" 3 4
typedef __gnuc_va_list va_list;
# 84 "/usr/include/stdio.h" 3 4
typedef __fpos_t fpos_t;
# 133 "/usr/include/stdio.h" 3 4
# 1 "/usr/include/x86_64-linux-gnu/bits/stdio_lim.h" 1 3 4
# 134 "/usr/include/stdio.h" 2 3 4
extern FILE *stdin;
extern FILE *stdout;
extern FILE *stderr;
extern int remove (const char *__filename) __attribute__ ((__nothrow__ , __leaf__));
extern int rename (const char *__old, const char *__new) __attribute__ ((__nothrow__ , __leaf__));
extern int renameat (int __oldfd, const char *__old, int __newfd,
const char *__new) __attribute__ ((__nothrow__ , __leaf__));
# 173 "/usr/include/stdio.h" 3 4
extern FILE *tmpfile (void) ;
# 187 "/usr/include/stdio.h" 3 4
extern char *tmpnam (char *__s) __attribute__ ((__nothrow__ , __leaf__)) ;
extern char *tmpnam_r (char *__s) __attribute__ ((__nothrow__ , __leaf__)) ;
# 204 "/usr/include/stdio.h" 3 4
extern char *tempnam (const char *__dir, const char *__pfx)
__attribute__ ((__nothrow__ , __leaf__)) __attribute__ ((__malloc__)) ;
extern int fclose (FILE *__stream);
extern int fflush (FILE *__stream);
# 227 "/usr/include/stdio.h" 3 4
extern int fflush_unlocked (FILE *__stream);
# 246 "/usr/include/stdio.h" 3 4
extern FILE *fopen (const char *__restrict __filename,
const char *__restrict __modes) ;
extern FILE *freopen (const char *__restrict __filename,
const char *__restrict __modes,
FILE *__restrict __stream) ;
# 279 "/usr/include/stdio.h" 3 4
extern FILE *fdopen (int __fd, const char *__modes) __attribute__ ((__nothrow__ , __leaf__)) ;
# 292 "/usr/include/stdio.h" 3 4
extern FILE *fmemopen (void *__s, size_t __len, const char *__modes)
__attribute__ ((__nothrow__ , __leaf__)) ;
extern FILE *open_memstream (char **__bufloc, size_t *__sizeloc) __attribute__ ((__nothrow__ , __leaf__)) ;
extern void setbuf (FILE *__restrict __stream, char *__restrict __buf) __attribute__ ((__nothrow__ , __leaf__));
extern int setvbuf (FILE *__restrict __stream, char *__restrict __buf,
int __modes, size_t __n) __attribute__ ((__nothrow__ , __leaf__));
extern void setbuffer (FILE *__restrict __stream, char *__restrict __buf,
size_t __size) __attribute__ ((__nothrow__ , __leaf__));
extern void setlinebuf (FILE *__stream) __attribute__ ((__nothrow__ , __leaf__));
extern int fprintf (FILE *__restrict __stream,
const char *__restrict __format, ...);
extern int printf (const char *__restrict __format, ...);
extern int sprintf (char *__restrict __s,
const char *__restrict __format, ...) __attribute__ ((__nothrow__));
extern int vfprintf (FILE *__restrict __s, const char *__restrict __format,
__gnuc_va_list __arg);
extern int vprintf (const char *__restrict __format, __gnuc_va_list __arg);
extern int vsprintf (char *__restrict __s, const char *__restrict __format,
__gnuc_va_list __arg) __attribute__ ((__nothrow__));
extern int snprintf (char *__restrict __s, size_t __maxlen,
const char *__restrict __format, ...)
__attribute__ ((__nothrow__)) __attribute__ ((__format__ (__printf__, 3, 4)));
extern int vsnprintf (char *__restrict __s, size_t __maxlen,
const char *__restrict __format, __gnuc_va_list __arg)
__attribute__ ((__nothrow__)) __attribute__ ((__format__ (__printf__, 3, 0)));
# 379 "/usr/include/stdio.h" 3 4
extern int vdprintf (int __fd, const char *__restrict __fmt,
__gnuc_va_list __arg)
__attribute__ ((__format__ (__printf__, 2, 0)));
extern int dprintf (int __fd, const char *__restrict __fmt, ...)
__attribute__ ((__format__ (__printf__, 2, 3)));
extern int fscanf (FILE *__restrict __stream,
const char *__restrict __format, ...) ;
extern int scanf (const char *__restrict __format, ...) ;
extern int sscanf (const char *__restrict __s,
const char *__restrict __format, ...) __attribute__ ((__nothrow__ , __leaf__));
extern int fscanf (FILE *__restrict __stream, const char *__restrict __format, ...) __asm__ ("" "__isoc99_fscanf")
;
extern int scanf (const char *__restrict __format, ...) __asm__ ("" "__isoc99_scanf")
;
extern int sscanf (const char *__restrict __s, const char *__restrict __format, ...) __asm__ ("" "__isoc99_sscanf") __attribute__ ((__nothrow__ , __leaf__))
;
# 432 "/usr/include/stdio.h" 3 4
extern int vfscanf (FILE *__restrict __s, const char *__restrict __format,
__gnuc_va_list __arg)
__attribute__ ((__format__ (__scanf__, 2, 0))) ;
extern int vscanf (const char *__restrict __format, __gnuc_va_list __arg)
__attribute__ ((__format__ (__scanf__, 1, 0))) ;
extern int vsscanf (const char *__restrict __s,
const char *__restrict __format, __gnuc_va_list __arg)
__attribute__ ((__nothrow__ , __leaf__)) __attribute__ ((__format__ (__scanf__, 2, 0)));
extern int vfscanf (FILE *__restrict __s, const char *__restrict __format, __gnuc_va_list __arg) __asm__ ("" "__isoc99_vfscanf")
__attribute__ ((__format__ (__scanf__, 2, 0))) ;
extern int vscanf (const char *__restrict __format, __gnuc_va_list __arg) __asm__ ("" "__isoc99_vscanf")
__attribute__ ((__format__ (__scanf__, 1, 0))) ;
extern int vsscanf (const char *__restrict __s, const char *__restrict __format, __gnuc_va_list __arg) __asm__ ("" "__isoc99_vsscanf") __attribute__ ((__nothrow__ , __leaf__))
__attribute__ ((__format__ (__scanf__, 2, 0)));
# 485 "/usr/include/stdio.h" 3 4
extern int fgetc (FILE *__stream);
extern int getc (FILE *__stream);
extern int getchar (void);
extern int getc_unlocked (FILE *__stream);
extern int getchar_unlocked (void);
# 510 "/usr/include/stdio.h" 3 4
extern int fgetc_unlocked (FILE *__stream);
# 521 "/usr/include/stdio.h" 3 4
extern int fputc (int __c, FILE *__stream);
extern int putc (int __c, FILE *__stream);
extern int putchar (int __c);
# 537 "/usr/include/stdio.h" 3 4
extern int fputc_unlocked (int __c, FILE *__stream);
extern int putc_unlocked (int __c, FILE *__stream);
extern int putchar_unlocked (int __c);
extern int getw (FILE *__stream);
extern int putw (int __w, FILE *__stream);
extern char *fgets (char *__restrict __s, int __n, FILE *__restrict __stream)
;
# 603 "/usr/include/stdio.h" 3 4
extern __ssize_t __getdelim (char **__restrict __lineptr,
size_t *__restrict __n, int __delimiter,
FILE *__restrict __stream) ;
extern __ssize_t getdelim (char **__restrict __lineptr,
size_t *__restrict __n, int __delimiter,
FILE *__restrict __stream) ;
extern __ssize_t getline (char **__restrict __lineptr,
size_t *__restrict __n,
FILE *__restrict __stream) ;
extern int fputs (const char *__restrict __s, FILE *__restrict __stream);
extern int puts (const char *__s);
extern int ungetc (int __c, FILE *__stream);
extern size_t fread (void *__restrict __ptr, size_t __size,
size_t __n, FILE *__restrict __stream) ;
extern size_t fwrite (const void *__restrict __ptr, size_t __size,
size_t __n, FILE *__restrict __s);
# 673 "/usr/include/stdio.h" 3 4
extern size_t fread_unlocked (void *__restrict __ptr, size_t __size,
size_t __n, FILE *__restrict __stream) ;
extern size_t fwrite_unlocked (const void *__restrict __ptr, size_t __size,
size_t __n, FILE *__restrict __stream);
extern int fseek (FILE *__stream, long int __off, int __whence);
extern long int ftell (FILE *__stream) ;
extern void rewind (FILE *__stream);
# 707 "/usr/include/stdio.h" 3 4
extern int fseeko (FILE *__stream, __off_t __off, int __whence);
extern __off_t ftello (FILE *__stream) ;
# 731 "/usr/include/stdio.h" 3 4
extern int fgetpos (FILE *__restrict __stream, fpos_t *__restrict __pos);
extern int fsetpos (FILE *__stream, const fpos_t *__pos);
# 757 "/usr/include/stdio.h" 3 4
extern void clearerr (FILE *__stream) __attribute__ ((__nothrow__ , __leaf__));
extern int feof (FILE *__stream) __attribute__ ((__nothrow__ , __leaf__)) ;
extern int ferror (FILE *__stream) __attribute__ ((__nothrow__ , __leaf__)) ;
extern void clearerr_unlocked (FILE *__stream) __attribute__ ((__nothrow__ , __leaf__));
extern int feof_unlocked (FILE *__stream) __attribute__ ((__nothrow__ , __leaf__)) ;
extern int ferror_unlocked (FILE *__stream) __attribute__ ((__nothrow__ , __leaf__)) ;
extern void perror (const char *__s);
# 1 "/usr/include/x86_64-linux-gnu/bits/sys_errlist.h" 1 3 4
# 26 "/usr/include/x86_64-linux-gnu/bits/sys_errlist.h" 3 4
extern int sys_nerr;
extern const char *const sys_errlist[];
# 782 "/usr/include/stdio.h" 2 3 4
extern int fileno (FILE *__stream) __attribute__ ((__nothrow__ , __leaf__)) ;
extern int fileno_unlocked (FILE *__stream) __attribute__ ((__nothrow__ , __leaf__)) ;
# 800 "/usr/include/stdio.h" 3 4
extern FILE *popen (const char *__command, const char *__modes) ;
extern int pclose (FILE *__stream);
extern char *ctermid (char *__s) __attribute__ ((__nothrow__ , __leaf__));
# 840 "/usr/include/stdio.h" 3 4
extern void flockfile (FILE *__stream) __attribute__ ((__nothrow__ , __leaf__));
extern int ftrylockfile (FILE *__stream) __attribute__ ((__nothrow__ , __leaf__)) ;
extern void funlockfile (FILE *__stream) __attribute__ ((__nothrow__ , __leaf__));
# 858 "/usr/include/stdio.h" 3 4
extern int __uflow (FILE *);
extern int __overflow (FILE *, int);
# 873 "/usr/include/stdio.h" 3 4
# 20 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/core/compatibility.h" 2
# 21 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/core/compatibility.h"
void __DSVERIFIER_assume(_Bool expression){
__ESBMC_assume(expression);
# 33 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/core/compatibility.h"
}
void __DSVERIFIER_assert(_Bool expression){
# 36 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/core/compatibility.h" 3 4
((void) sizeof ((
# 36 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/core/compatibility.h"
expression
# 36 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/core/compatibility.h" 3 4
) ? 1 : 0), __extension__ ({ if (
# 36 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/core/compatibility.h"
expression
# 36 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/core/compatibility.h" 3 4
) ; else __assert_fail (
# 36 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/core/compatibility.h"
"expression"
# 36 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/core/compatibility.h" 3 4
, "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/core/compatibility.h", 36, __extension__ __PRETTY_FUNCTION__); }))
# 36 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/core/compatibility.h"
;
}
void __DSVERIFIER_assert_msg(_Bool expression, char * msg){
printf("%s", msg);
# 41 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/core/compatibility.h" 3 4
((void) sizeof ((
# 41 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/core/compatibility.h"
expression
# 41 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/core/compatibility.h" 3 4
) ? 1 : 0), __extension__ ({ if (
# 41 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/core/compatibility.h"
expression
# 41 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/core/compatibility.h" 3 4
) ; else __assert_fail (
# 41 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/core/compatibility.h"
"expression"
# 41 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/core/compatibility.h" 3 4
, "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/core/compatibility.h", 41, __extension__ __PRETTY_FUNCTION__); }))
# 41 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/core/compatibility.h"
;
}
# 22 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/dsverifier.h" 2
# 1 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/core/fixed-point.h" 1
# 27 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/core/fixed-point.h"
# 1 "/usr/lib/gcc/x86_64-linux-gnu/9/include/stdint.h" 1 3 4
# 9 "/usr/lib/gcc/x86_64-linux-gnu/9/include/stdint.h" 3 4
# 1 "/usr/include/stdint.h" 1 3 4
# 26 "/usr/include/stdint.h" 3 4
# 1 "/usr/include/x86_64-linux-gnu/bits/libc-header-start.h" 1 3 4
# 27 "/usr/include/stdint.h" 2 3 4
# 1 "/usr/include/x86_64-linux-gnu/bits/wchar.h" 1 3 4
# 29 "/usr/include/stdint.h" 2 3 4
# 1 "/usr/include/x86_64-linux-gnu/bits/wordsize.h" 1 3 4
# 30 "/usr/include/stdint.h" 2 3 4
# 1 "/usr/include/x86_64-linux-gnu/bits/stdint-uintn.h" 1 3 4
# 24 "/usr/include/x86_64-linux-gnu/bits/stdint-uintn.h" 3 4
# 24 "/usr/include/x86_64-linux-gnu/bits/stdint-uintn.h" 3 4
typedef __uint8_t uint8_t;
typedef __uint16_t uint16_t;
typedef __uint32_t uint32_t;
typedef __uint64_t uint64_t;
# 38 "/usr/include/stdint.h" 2 3 4
typedef __int_least8_t int_least8_t;
typedef __int_least16_t int_least16_t;
typedef __int_least32_t int_least32_t;
typedef __int_least64_t int_least64_t;
typedef __uint_least8_t uint_least8_t;
typedef __uint_least16_t uint_least16_t;
typedef __uint_least32_t uint_least32_t;
typedef __uint_least64_t uint_least64_t;
typedef signed char int_fast8_t;
typedef long int int_fast16_t;
typedef long int int_fast32_t;
typedef long int int_fast64_t;
# 71 "/usr/include/stdint.h" 3 4
typedef unsigned char uint_fast8_t;
typedef unsigned long int uint_fast16_t;
typedef unsigned long int uint_fast32_t;
typedef unsigned long int uint_fast64_t;
# 87 "/usr/include/stdint.h" 3 4
typedef long int intptr_t;
typedef unsigned long int uintptr_t;
# 101 "/usr/include/stdint.h" 3 4
typedef __intmax_t intmax_t;
typedef __uintmax_t uintmax_t;
# 10 "/usr/lib/gcc/x86_64-linux-gnu/9/include/stdint.h" 2 3 4
# 28 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/core/fixed-point.h" 2
# 1 "/usr/include/inttypes.h" 1 3 4
# 34 "/usr/include/inttypes.h" 3 4
typedef int __gwchar_t;
# 266 "/usr/include/inttypes.h" 3 4
typedef struct
{
long int quot;
long int rem;
} imaxdiv_t;
# 290 "/usr/include/inttypes.h" 3 4
extern intmax_t imaxabs (intmax_t __n) __attribute__ ((__nothrow__ , __leaf__)) __attribute__ ((__const__));
extern imaxdiv_t imaxdiv (intmax_t __numer, intmax_t __denom)
__attribute__ ((__nothrow__ , __leaf__)) __attribute__ ((__const__));
extern intmax_t strtoimax (const char *__restrict __nptr,
char **__restrict __endptr, int __base) __attribute__ ((__nothrow__ , __leaf__));
extern uintmax_t strtoumax (const char *__restrict __nptr,
char ** __restrict __endptr, int __base) __attribute__ ((__nothrow__ , __leaf__));
extern intmax_t wcstoimax (const __gwchar_t *__restrict __nptr,
__gwchar_t **__restrict __endptr, int __base)
__attribute__ ((__nothrow__ , __leaf__));
extern uintmax_t wcstoumax (const __gwchar_t *__restrict __nptr,
__gwchar_t ** __restrict __endptr, int __base)
__attribute__ ((__nothrow__ , __leaf__));
# 432 "/usr/include/inttypes.h" 3 4
# 29 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/core/fixed-point.h" 2
# 30 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/core/fixed-point.h"
extern implementation impl;
typedef int64_t fxp_t;
fxp_t _fxp_one;
fxp_t _fxp_half;
fxp_t _fxp_minus_one;
fxp_t _fxp_min;
fxp_t _fxp_max;
double _dbl_max;
double _dbl_min;
fxp_t _fxp_fmask;
fxp_t _fxp_imask;
static const double scale_factor[31] = { 1.0, 2.0, 4.0, 8.0, 16.0, 32.0, 64.0,
128.0, 256.0, 512.0, 1024.0, 2048.0, 4096.0, 8192.0, 16384.0, 32768.0,
65536.0, 131072.0, 262144.0, 524288.0, 1048576.0, 2097152.0, 4194304.0,
8388608.0, 16777216.0, 33554432.0, 67108864.0, 134217728.0,
268435456.0, 536870912.0, 1073741824.0 };
static const double scale_factor_inv[31] = { 1.0, 0.5, 0.25, 0.125, 0.0625,
0.03125, 0.015625, 0.0078125, 0.00390625, 0.001953125, 0.0009765625,
0.00048828125, 0.000244140625, 0.0001220703125, 0.00006103515625,
0.000030517578125, 0.000015258789063, 0.000007629394531,
0.000003814697266, 0.000001907348633, 0.000000953674316,
0.000000476837158, 0.000000238418579, 0.000000119209290,
0.000000059604645, 0.000000029802322, 0.000000014901161,
0.000000007450581, 0.000000003725290, 0.000000001862645,
0.000000000931323 };
static const float rand_uni[10000] = { -0.486240329978498f, -0.0886462298529236f, -0.140307596103306f, 0.301096597450952f, 0.0993171079928659f, 0.971751769763271f, 0.985173975730828f, 0.555993645184930f, 0.582088652691427f, -0.153377496651175f, 0.383610009058905f, -0.335724126391271f, 0.978768141636516f, -0.276250018648572f, 0.390075705739569f, -0.179022404038782f, 0.690083827115783f, -0.872530132490992f, -0.970585763293203f, -0.581476053441704f, -0.532614615674888f, -0.239699306693312f, -0.678183014035494f, 0.349502640932782f, -0.210469890686263f, 0.841262085391842f, -0.473585465151401f, 0.659383565443701f, -0.651160036945754f, -0.961043527561335f, -0.0814927639199137f, 0.621303110569702f, -0.784529166943541f, 0.0238464770757800f, 0.392694728594110f, 0.776848735202001f, 0.0870059709310509f, 0.880563655271790f, 0.883457036977564f, -0.249235082877382f, -0.691040749216870f, 0.578731120064320f, -0.973932858000832f, -0.117699105431720f, -0.723831748151088f, -0.483149657477524f, -0.821277691383664f, -0.459725618100875f, 0.148175952221864f, 0.444306875534854f, -0.325610376336498f, 0.544142311404910f, -0.165319440455435f, 0.136706800705517f, 0.543312481350682f, 0.467210959764607f, -0.349266618228534f, -0.660110730565862f, 0.910332331495431f, 0.961049802789367f, -0.786168905164629f, 0.305648402726554f, 0.510815258508885f, 0.0950733260984060f, 0.173750645487898f, 0.144488668408672f, 0.0190031984466126f, -0.299194577636724f, 0.302411647442273f, -0.730462524226212f, 0.688646006554796f, 0.134948379722118f, 0.533716723458894f, -0.00226300779660438f, -0.561340777806718f, 0.450396313744017f, -0.569445876566955f, 0.954155246557698f, -0.255403882430676f, -0.759820984120828f, -0.855279790307514f, -0.147352581758156f, -0.302269055643746f, -0.642038024364086f, -0.367405981107491f, 0.491844011712164f, -0.542191710121194f, -0.938294043323732f, 0.683979894338020f, 0.294728290855287f, 0.00662691839443919f, -0.931040350582855f, 0.152356209974418f, 0.678620860551457f, -0.534989269238408f, 0.932096367913226f, -0.0361062818028513f, -0.847189697149530f, -0.975903030160255f, 0.623293205784014f, -0.661289688031659f, 0.724486055119603f, 0.307504095172835f, 0.00739266163731767f, -0.393681596442097f, 0.0313739422974388f, 0.0768157689673350f, -0.652063346886817f, 0.864188030044388f, -0.588932092781034f, 0.496015896758580f, -0.872858269231211f, 0.978780599551039f, -0.504887732991147f, -0.462378791937628f, 0.0141726829338038f, 0.769610007653591f, 0.945233033188923f, -0.782235375325016f, -0.832206533738799f, 0.745634368088673f, -0.696969510157151f, -0.0674631869948374f, -0.123186450806584f, -0.359158959141949f, -0.393882649464391f, 0.441371446689899f, -0.829394270569736f, -0.301502651277431f, -0.996215501187289f, 0.934634037393066f, -0.282431114746289f, -0.927550795619590f, -0.437037530043415f, -0.360426812995980f, 0.949549724575862f, 0.502784616197919f, 0.800771681422909f, -0.511398929004089f, 0.309288504642554f, -0.207261227890933f, 0.930587995125773f, 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# 102 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/core/fixed-point.h"
fxp_t wrap(fxp_t kX, fxp_t kLowerBound, fxp_t kUpperBound)
{
int32_t range_size = kUpperBound - kLowerBound + 1;
if (kX < kLowerBound){
kX += range_size * ((kLowerBound - kX) / range_size + 1);
}
return kLowerBound + (kX - kLowerBound) % range_size;
}
fxp_t fxp_get_int_part(fxp_t in) {
return ((in < 0) ? -((-in) & _fxp_imask) : in & _fxp_imask);
}
fxp_t fxp_get_frac_part(fxp_t in) {
return ((in < 0) ? -((-in) & _fxp_fmask) : in & _fxp_fmask);
}
float fxp_to_float(fxp_t fxp);
fxp_t fxp_quantize(fxp_t aquant) {
if (overflow_mode == 2) {
if(aquant < _fxp_min) {
return _fxp_min;
}
else if(aquant > _fxp_max) {
return _fxp_max;
}
}
else if (overflow_mode == 3) {
if(aquant < _fxp_min || aquant > _fxp_max) {
return wrap(aquant, _fxp_min, _fxp_max);
}
}
return (fxp_t) aquant;
}
void fxp_verify_overflow(fxp_t value){
fxp_quantize(value);
printf("An Overflow Occurred in system's output");
__DSVERIFIER_assert(value <= _fxp_max && value >= _fxp_min);
}
void fxp_verify_overflow_node(fxp_t value, char* msg){
if (1 == 2)
{
printf("%s",msg);
__DSVERIFIER_assert(value <= _fxp_max && value >= _fxp_min);
}
}
void fxp_verify_overflow_array(fxp_t array[], int n){
int i=0;
for(i=0; i<n;i++){
fxp_verify_overflow(array[i]);
}
}
fxp_t fxp_int_to_fxp(int in) {
fxp_t lin;
lin = (fxp_t) in*_fxp_one;
return lin;
}
int fxp_to_int(fxp_t fxp) {
if(fxp >= 0){
fxp += _fxp_half;
} else {
fxp -= _fxp_half;
}
fxp >>= impl.frac_bits;
return (int) fxp;
}
fxp_t fxp_float_to_fxp(float f) {
fxp_t tmp;
double ftemp;
ftemp = f * scale_factor[impl.frac_bits];
if(f >= 0) {
tmp = (fxp_t)(ftemp + 0.5);
}
else {
tmp = (fxp_t)(ftemp - 0.5);
}
return tmp;
}
fxp_t fxp_double_to_fxp(double value) {
fxp_t tmp;
double ftemp = value * scale_factor[impl.frac_bits];
if (rounding_mode == 0){
if(value >= 0) {
tmp = (fxp_t)(ftemp + 0.5);
}
else {
tmp = (fxp_t)(ftemp - 0.5);
}
} else if(rounding_mode == 1){
tmp = (fxp_t) ftemp;
double residue = ftemp - tmp;
if ((value < 0) && (residue != 0)){
ftemp = ftemp - 1;
tmp = (fxp_t) ftemp;
}
} else if (rounding_mode == 0){
tmp = (fxp_t) ftemp;
}
return tmp;
}
void fxp_float_to_fxp_array(float f[], fxp_t r[], int N) {
int i;
for(i = 0; i < N; ++i) {
r[i] = fxp_float_to_fxp(f[i]);
}
}
void fxp_double_to_fxp_array(double f[], fxp_t r[], int N) {
int i;
for(i = 0; i < N; ++i) {
r[i] = fxp_double_to_fxp(f[i]);
}
}
# 275 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/core/fixed-point.h"
float fxp_to_float(fxp_t fxp) {
float f;
int f_int = (int) fxp;
f = f_int * scale_factor_inv[impl.frac_bits];
return f;
}
double fxp_to_double(fxp_t fxp) {
double f;
int f_int = (int) fxp;
f = f_int * scale_factor_inv[impl.frac_bits];
return f;
}
void fxp_to_float_array(float f[], fxp_t r[], int N) {
int i;
for(i = 0; i < N; ++i) {
f[i] = fxp_to_float(r[i]);
}
}
void fxp_to_double_array(double f[], fxp_t r[], int N) {
int i;
for(i = 0; i < N; ++i) {
f[i] = fxp_to_double(r[i]);
}
}
fxp_t fxp_abs(fxp_t a) {
fxp_t tmp;
tmp = ((a < 0) ? -(fxp_t)(a) : a);
tmp = fxp_quantize(tmp);
return tmp;
}
fxp_t fxp_add(fxp_t aadd, fxp_t badd) {
fxp_t tmpadd;
tmpadd = ((fxp_t)(aadd) + (fxp_t)(badd));
tmpadd = fxp_quantize(tmpadd);
return tmpadd;
}
fxp_t fxp_sub(fxp_t asub, fxp_t bsub) {
fxp_t tmpsub;
tmpsub = (fxp_t)((fxp_t)(asub) - (fxp_t)(bsub));
tmpsub = fxp_quantize(tmpsub);
return tmpsub;
}
fxp_t fxp_mult(fxp_t amult, fxp_t bmult) {
fxp_t tmpmult, tmpmultprec;
tmpmult = (fxp_t)((fxp_t)(amult)*(fxp_t)(bmult));
if (tmpmult >= 0) {
tmpmultprec = (tmpmult + ((tmpmult & 1 << (impl.frac_bits - 1)) << 1)) >> impl.frac_bits;
} else {
tmpmultprec = -(((-tmpmult) + (((-tmpmult) & 1 << (impl.frac_bits - 1)) << 1)) >> impl.frac_bits);
}
tmpmultprec = fxp_quantize(tmpmultprec);
return tmpmultprec;
}
# 372 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/core/fixed-point.h"
fxp_t fxp_div(fxp_t a, fxp_t b){
__DSVERIFIER_assume( b!=0 );
fxp_t tmpdiv = ((a << impl.frac_bits) / b);
tmpdiv = fxp_quantize(tmpdiv);
return tmpdiv;
}
fxp_t fxp_neg(fxp_t aneg) {
fxp_t tmpneg;
tmpneg = -(fxp_t)(aneg);
tmpneg = fxp_quantize(tmpneg);
return tmpneg;
}
# 398 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/core/fixed-point.h"
fxp_t fxp_sign(fxp_t a) {
return ((a == 0) ? 0 : ((a < 0) ? _fxp_minus_one : _fxp_one) );
}
fxp_t fxp_shrl(fxp_t in, int shift) {
return (fxp_t) (((unsigned int) in) >> shift);
}
fxp_t fxp_square(fxp_t a) {
return fxp_mult(a, a);
}
void fxp_print_int(fxp_t a) {
printf("\n%i", (int32_t)a);
}
void fxp_print_float(fxp_t a) {
printf("\n%f", fxp_to_float(a));
}
void fxp_print_float_array(fxp_t a[], int N) {
int i;
for(i = 0; i < N; ++i) {
printf("\n%f", fxp_to_float(a[i]));
}
}
void print_fxp_array_elements(char * name, fxp_t * v, int n){
printf("%s = {", name);
int i;
for(i=0; i < n; i++){
printf(" %jd ", v[i]);
}
printf("}\n");
}
# 23 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/dsverifier.h" 2
# 1 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/core/util.h" 1
# 24 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/core/util.h"
void initialize_array(double v[], int n){
int i;
for(i=0; i<n; i++){
v[i] = 0;
}
}
void revert_array(double v[], double out[], int n){
initialize_array(out,n);
int i;
for(i=0; i<n; i++){
out[i] = v[n-i-1];
}
}
double internal_pow(double a, double b){
int i;
double acc = 1;
for (i=0; i < b; i++){
acc = acc*a;
}
return acc;
}
double internal_abs(double a){
return a < 0 ? -a : a;
}
int fatorial(int n){
return n == 0 ? 1 : n * fatorial(n-1);
}
int check_stability(double a[], int n){
int lines = 2 * n - 1;
int columns = n;
double m[lines][n];
int i,j;
double current_stability[n];
for (i=0; i < n; i++){
current_stability[i] = a[i];
}
double sum = 0;
for (i=0; i < n; i++){
sum += a[i];
}
if (sum <= 0){
printf("[DEBUG] the first constraint of Jury criteria failed: (F(1) > 0)");
return 0;
}
sum = 0;
for (i=0; i < n; i++){
sum += a[i] * internal_pow(-1, n-1-i);
}
sum = sum * internal_pow(-1, n-1);
if (sum <= 0){
printf("[DEBUG] the second constraint of Jury criteria failed: (F(-1)*(-1)^n > 0)");
return 0;
}
if (internal_abs(a[n-1]) > a[0]){
printf("[DEBUG] the third constraint of Jury criteria failed: (abs(a0) < a_{n}*z^{n})");
return 0;
}
for (i=0; i < lines; i++){
for (j=0; j < columns; j++){
m[i][j] = 0;
}
}
for (i=0; i < lines; i++){
for (j=0; j < columns; j++){
if (i == 0){
m[i][j] = a[j];
continue;
}
if (i % 2 != 0 ){
int x;
for(x=0; x<columns;x++){
m[i][x] = m[i-1][columns-x-1];
}
columns = columns - 1;
j = columns;
}else{
m[i][j] = m[i-2][j] - (m[i-2][columns] / m[i-2][0]) * m[i-1][j];
}
}
}
int first_is_positive = m[0][0] >= 0 ? 1 : 0;
for (i=0; i < lines; i++){
if (i % 2 == 0){
int line_is_positive = m[i][0] >= 0 ? 1 : 0;
if (first_is_positive != line_is_positive){
return 0;
}
continue;
}
}
return 1;
}
void poly_sum(double a[], int Na, double b[], int Nb, double ans[], int Nans){
int i;
Nans = Na>Nb? Na:Nb;
for (i=0; i<Nans; i++){
if (Na>Nb){
ans[i]=a[i];
if (i > Na-Nb-1){
ans[i]=ans[i]+b[i-Na+Nb];
}
}else {
ans[i]=b[i];
if (i> Nb - Na -1){
ans[i]=ans[i]+a[i-Nb+Na];
}
}
}
}
void poly_mult(double a[], int Na, double b[], int Nb, double ans[], int Nans){
int i;
int j;
int k;
Nans = Na+Nb-1;
for (i=0; i<Na; i++){
for (j=0; j<Nb; j++){
k= Na + Nb - i - j - 2;
ans[k]=0;
}
}
for (i=0; i<Na; i++){
for (j=0; j<Nb; j++){
k= Na + Nb - i - j - 2;
ans[k]=ans[k]+a[Na - i - 1]*b[Nb - j - 1];
}
}
}
void double_check_oscillations(double * y, int y_size){
__DSVERIFIER_assume(y[0] != y[y_size - 1]);
int window_timer = 0;
int window_count = 0;
int i, j;
for (i = 2; i < y_size; i++){
int window_size = i;
for(j=0; j<y_size; j++){
if (window_timer > window_size){
window_timer = 0;
window_count = 0;
}
int window_index = j + window_size;
if (window_index < y_size){
if (y[j] == y[window_index]){
window_count++;
# 209 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/core/util.h" 3 4
((void) sizeof ((
# 209 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/core/util.h"
!(window_count == window_size)
# 209 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/core/util.h" 3 4
) ? 1 : 0), __extension__ ({ if (
# 209 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/core/util.h"
!(window_count == window_size)
# 209 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/core/util.h" 3 4
) ; else __assert_fail (
# 209 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/core/util.h"
"!(window_count == window_size)"
# 209 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/core/util.h" 3 4
, "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/core/util.h", 209, __extension__ __PRETTY_FUNCTION__); }))
# 209 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/core/util.h"
;
}
}else{
break;
}
window_timer++;
}
}
}
void double_check_limit_cycle(double * y, int y_size){
double reference = y[y_size - 1];
int idx = 0;
int window_size = 1;
for(idx = (y_size-2); idx >= 0; idx--){
if (y[idx] != reference){
window_size++;
}else{
break;
}
}
__DSVERIFIER_assume(window_size != y_size && window_size != 1);
printf("window_size %d\n", window_size);
int desired_elements = 2 * window_size;
int found_elements = 0;
for(idx = (y_size-1); idx >= 0; idx--){
if (idx > (y_size-window_size-1)){
printf("%.0f == %.0f\n", y[idx], y[idx-window_size]);
int cmp_idx = idx - window_size;
if ((cmp_idx > 0) && (y[idx] == y[idx-window_size])){
found_elements = found_elements + 2;
}else{
break;
}
}
}
printf("desired_elements %d\n", desired_elements);
printf("found_elements %d\n", found_elements);
__DSVERIFIER_assert(desired_elements != found_elements);
}
void double_check_persistent_limit_cycle(double * y, int y_size){
int idy = 0;
int count_same = 0;
int window_size = 0;
double reference = y[0];
for(idy = 0; idy < y_size; idy++){
if (y[idy] != reference){
window_size++;
} else if (window_size != 0){
break;
} else {
count_same++;
}
}
window_size += count_same;
__DSVERIFIER_assume(window_size > 1 && window_size <= y_size/2);
double lco_elements[window_size];
for(idy = 0; idy < y_size; idy++){
if (idy < window_size){
lco_elements[idy] = y[idy];
}
}
idy = 0;
int lco_idy = 0;
_Bool is_persistent = 0;
while (idy < y_size){
if(y[idy++] == lco_elements[lco_idy++]){
is_persistent = 1;
}else{
is_persistent = 0;
break;
}
if (lco_idy == window_size){
lco_idy = 0;
}
}
__DSVERIFIER_assert(is_persistent == 0);
}
void print_array_elements(char * name, double * v, int n){
printf("%s = {", name);
int i;
for(i=0; i < n; i++){
printf(" %.32f ", v[i]);
}
printf("}\n");
}
void double_add_matrix( unsigned int lines, unsigned int columns, double m1[4][4], double m2[4][4], double result[4][4]){
unsigned int i, j;
for (i = 0; i < lines; i++){
for (j = 0; j < columns; j++){
result[i][j] = m1[i][j] + m2[i][j];
}
}
}
void double_sub_matrix( unsigned int lines, unsigned int columns, double m1[4][4], double m2[4][4], double result[4][4]){
unsigned int i, j;
for (i = 0; i < lines; i++){
for (j = 0; j < columns; j++){
result[i][j] = m1[i][j] - m2[i][j];
}
}
}
void double_matrix_multiplication( unsigned int i1, unsigned int j1, unsigned int i2, unsigned int j2, double m1[4][4], double m2[4][4], double m3[4][4]){
unsigned int i, j, k;
if (j1 == i2) {
for (i=0; i<i1; i++) {
for (j=0; j<j2; j++) {
m3[i][j] = 0;
}
}
for (i=0;i<i1; i++) {
for (j=0; j<j2; j++) {
for (k=0; k<j1; k++) {
double mult = (m1[i][k] * m2[k][j]);
m3[i][j] = m3[i][j] + (m1[i][k] * m2[k][j]);
}
}
}
} else {
printf("\nError! Operation invalid, please enter with valid matrices.\n");
}
}
void fxp_matrix_multiplication( unsigned int i1, unsigned int j1, unsigned int i2, unsigned int j2, fxp_t m1[4][4], fxp_t m2[4][4], fxp_t m3[4][4]){
unsigned int i, j, k;
if (j1 == i2) {
for (i=0; i<i1; i++) {
for (j=0; j<j2; j++) {
m3[i][j] = 0;
}
}
for (i=0;i<i1; i++) {
for (j=0; j<j2; j++) {
for (k=0; k<j1; k++) {
m3[i][j] = fxp_add( m3[i][j], fxp_mult(m1[i][k] , m2[k][j]));
}
}
}
} else {
printf("\nError! Operation invalid, please enter with valid matrices.\n");
}
}
void fxp_exp_matrix(unsigned int lines, unsigned int columns, fxp_t m1[4][4], unsigned int expNumber, fxp_t result[4][4]){
unsigned int i, j, l, k;
fxp_t m2[4][4];
if(expNumber == 0){
for (i = 0; i < lines; i++){
for (j = 0; j < columns; j++){
if(i == j){
result[i][j] = fxp_double_to_fxp(1.0);
} else {
result[i][j] = 0.0;
}
}
}
return;
}
for (i = 0; i < lines; i++)
for (j = 0; j < columns; j++) result[i][j] = m1[i][j];
if(expNumber == 1){
return;
}
for(l = 1; l < expNumber; l++){
for (i = 0; i < lines; i++)
for (j = 0; j < columns; j++) m2[i][j] = result[i][j];
for (i = 0; i < lines; i++)
for (j = 0; j < columns; j++) result[i][j] = 0;
for (i=0;i<lines; i++) {
for (j=0; j<columns; j++) {
for (k=0; k<columns; k++) {
result[i][j] = fxp_add( result[i][j], fxp_mult(m2[i][k] , m1[k][j]));
}
}
}
}
}
void double_exp_matrix(unsigned int lines, unsigned int columns, double m1[4][4], unsigned int expNumber, double result[4][4]){
unsigned int i, j, k, l;
double m2[4][4];
if(expNumber == 0){
for (i = 0; i < lines; i++){
for (j = 0; j < columns; j++){
if(i == j){
result[i][j] = 1.0;
} else {
result[i][j] = 0.0;
}
}
}
return;
}
for (i = 0; i < lines; i++)
for (j = 0; j < columns; j++) result[i][j] = m1[i][j];
if(expNumber == 1){
return;
}
for(l = 1; l < expNumber; l++){
for (i = 0; i < lines; i++)
for (j = 0; j < columns; j++) m2[i][j] = result[i][j];
for (i = 0; i < lines; i++)
for (j = 0; j < columns; j++) result[i][j] = 0;
for (i=0;i<lines; i++) {
for (j=0; j<columns; j++) {
for (k=0; k<columns; k++) {
result[i][j] = result[i][j] + (m2[i][k] * m1[k][j]);
}
}
}
}
}
void fxp_add_matrix( unsigned int lines, unsigned int columns, fxp_t m1[4][4], fxp_t m2[4][4], fxp_t result[4][4]){
unsigned int i, j;
for (i = 0; i < lines; i++)
for (j = 0; j < columns; j++) {
result[i][j] = fxp_add(m1[i][j] , m2[i][j]);
}
}
void fxp_sub_matrix( unsigned int lines, unsigned int columns, fxp_t m1[4][4], fxp_t m2[4][4], fxp_t result[4][4]){
unsigned int i, j;
for (i = 0; i < lines; i++)
for (j = 0; j < columns; j++) result[i][j] = fxp_sub(m1[i][j] , m2[i][j]);
}
void print_matrix(double matrix[4][4], unsigned int lines, unsigned int columns){
printf("\nMatrix\n=====================\n\n");
unsigned int i, j;
for (i=0; i<lines; i++) {
for (j=0; j<columns; j++) {
printf("#matrix[%d][%d]: %2.2f ", i,j,matrix[i][j]);
}
printf("\n");
}
printf("\n");
}
double determinant(double a[4][4],int n)
{
int i,j,j1,j2;
double det = 0;
double m[4][4];
if (n < 1) {
} else if (n == 1) {
det = a[0][0];
} else if (n == 2) {
det = a[0][0] * a[1][1] - a[1][0] * a[0][1];
} else {
det = 0;
for (j1=0;j1<n;j1++) {
for (i=0;i<n-1;i++)
for (i=1;i<n;i++) {
j2 = 0;
for (j=0;j<n;j++) {
if (j == j1)
continue;
m[i-1][j2] = a[i][j];
j2++;
}
}
det += internal_pow(-1.0,1.0+j1+1.0) * a[0][j1] * determinant(m,n-1);
}
}
return(det);
}
double fxp_determinant(fxp_t a_fxp[4][4],int n)
{
int i,j,j1,j2;
double a[4][4];
for(i=0; i<n;i++){
for(j=0; j<n;j++){
a[i][j]= fxp_to_double(a_fxp[i][j]);
}
}
double det = 0;
double m[4][4];
if (n < 1) {
} else if (n == 1) {
det = a[0][0];
} else if (n == 2) {
det = a[0][0] * a[1][1] - a[1][0] * a[0][1];
} else {
det = 0;
for (j1=0;j1<n;j1++) {
for (i=0;i<n-1;i++)
for (i=1;i<n;i++) {
j2 = 0;
for (j=0;j<n;j++) {
if (j == j1)
continue;
m[i-1][j2] = a[i][j];
j2++;
}
}
det += internal_pow(-1.0,1.0+j1+1.0) * a[0][j1] * determinant(m,n-1);
}
}
return(det);
}
void transpose(double a[4][4], double b[4][4],int n, int m)
{
int i,j;
for (i=0;i<n;i++) {
for (j=0;j<m;j++) {
b[j][i] = a[i][j];
}
}
}
void fxp_transpose(fxp_t a[4][4], fxp_t b[4][4],int n, int m)
{
int i,j;
for (i=0;i<n;i++) {
for (j=0;j<m;j++) {
b[j][i] = a[i][j];
}
}
}
# 24 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/dsverifier.h" 2
# 1 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/core/functions.h" 1
# 19 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/core/functions.h"
extern int generic_timer;
extern hardware hw;
double generic_timing_shift_l_double(double zIn, double z[], int N) {
generic_timer += ((2 * hw.assembly.push) + (3 * hw.assembly.in) + (3 * hw.assembly.out) + (1 * hw.assembly.sbiw) + (1 * hw.assembly.cli) + (8 * hw.assembly.std));
int i;
double zOut;
zOut = z[0];
generic_timer += ((5 * hw.assembly.ldd) + (2 * hw.assembly.mov) + (4 * hw.assembly.std) + (1 * hw.assembly.ld));
generic_timer += ((2 * hw.assembly.std) + (1 * hw.assembly.rjmp));
for (i = 0; i < N - 1; i++) {
generic_timer += ((17 * hw.assembly.ldd) + (4 * hw.assembly.lsl) + (4 * hw.assembly.rol) + (2 * hw.assembly.add) + (2 * hw.assembly.adc) + (6 * hw.assembly.mov) + (2 * hw.assembly.adiw) + (5 * hw.assembly.std) + (1 * hw.assembly.ld) + (1 * hw.assembly.st) + (1 * hw.assembly.subi) + (1 * hw.assembly.sbc)+ (1 * hw.assembly.cp) + (1 * hw.assembly.cpc) + (1 * hw.assembly.brlt));
z[i] = z[i + 1];
}
z[N - 1] = zIn;
generic_timer += ((12 * hw.assembly.ldd) + (6 * hw.assembly.mov) + (3 * hw.assembly.std) + (2 * hw.assembly.lsl) + (2 * hw.assembly.rol) + (1 * hw.assembly.adc) + (1 * hw.assembly.add) + (1 * hw.assembly.subi) + (1 * hw.assembly.sbci) + (1 * hw.assembly.st) + (1 * hw.assembly.adiw) + (1 * hw.assembly.in)+ (1 * hw.assembly.cli));
generic_timer += ((3 * hw.assembly.out) + (2 * hw.assembly.pop) + (1 * hw.assembly.ret));
return (zOut);
}
double generic_timing_shift_r_double(double zIn, double z[], int N) {
generic_timer += ((2 * hw.assembly.push) + (3 * hw.assembly.in) + (3 * hw.assembly.out) + (1 * hw.assembly.sbiw) + (1 * hw.assembly.cli) + (8 * hw.assembly.std));
int i;
double zOut;
zOut = z[N - 1];
generic_timer += ((7 * hw.assembly.ldd) + (2 * hw.assembly.rol) + (2 * hw.assembly.lsl) + (2 * hw.assembly.mov) + (4 * hw.assembly.std) + (1 * hw.assembly.add) + (1 * hw.assembly.adc) + (1 * hw.assembly.ld) + (1 * hw.assembly.subi) + (1 * hw.assembly.sbci));
generic_timer += ((2 * hw.assembly.ldd) + (2 * hw.assembly.std) + (1 * hw.assembly.sbiw) + (1 * hw.assembly.rjmp));
for (i = N - 1; i > 0; i--) {
z[i] = z[i - 1];
generic_timer += ((15 * hw.assembly.ldd) + (4 * hw.assembly.lsl) + (4 * hw.assembly.rol) + (2 * hw.assembly.add) + (2 * hw.assembly.adc) + (4 * hw.assembly.mov) + (5 * hw.assembly.std) + (1 * hw.assembly.subi) + (1 * hw.assembly.sbci) + (1 * hw.assembly.ld) + (1 * hw.assembly.st) + (1 * hw.assembly.sbiw) + (1 * hw.assembly.cp) + (1 * hw.assembly.cpc) + (1 * hw.assembly.brlt));
}
z[0] = zIn;
generic_timer += ((10 * hw.assembly.ldd) + (5 * hw.assembly.mov) + (3 * hw.assembly.std) + (3 * hw.assembly.out) + (2 * hw.assembly.pop) + (1 * hw.assembly.ret) + (1 * hw.assembly.ret) + (1 * hw.assembly.cli) + (1 * hw.assembly.in) + (1 * hw.assembly.st) + (1 * hw.assembly.adiw));
return zOut;
}
fxp_t shiftL(fxp_t zIn, fxp_t z[], int N) {
int i;
fxp_t zOut;
zOut = z[0];
for (i = 0; i < N - 1; i++) {
z[i] = z[i + 1];
}
z[N - 1] = zIn;
return (zOut);
}
fxp_t shiftR(fxp_t zIn, fxp_t z[], int N) {
int i;
fxp_t zOut;
zOut = z[N - 1];
for (i = N - 1; i > 0; i--) {
z[i] = z[i - 1];
}
z[0] = zIn;
return zOut;
}
float shiftLfloat(float zIn, float z[], int N) {
int i;
float zOut;
zOut = z[0];
for (i = 0; i < N - 1; i++) {
z[i] = z[i + 1];
}
z[N - 1] = zIn;
return (zOut);
}
float shiftRfloat(float zIn, float z[], int N) {
int i;
float zOut;
zOut = z[N - 1];
for (i = N - 1; i > 0; i--) {
z[i] = z[i - 1];
}
z[0] = zIn;
return zOut;
}
double shiftRDdouble(double zIn, double z[], int N) {
int i;
double zOut;
zOut = z[0];
for (i = 0; i < N - 1; i++) {
z[i] = z[i + 1];
}
z[N - 1] = zIn;
return (zOut);
}
double shiftRdouble(double zIn, double z[], int N) {
int i;
double zOut;
zOut = z[N - 1];
for (i = N - 1; i > 0; i--) {
z[i] = z[i - 1];
}
z[0] = zIn;
return zOut;
}
double shiftLDouble(double zIn, double z[], int N) {
int i;
double zOut;
zOut = z[0];
for (i = 0; i < N - 1; i++) {
z[i] = z[i + 1];
}
z[N - 1] = zIn;
return (zOut);
}
void shiftLboth(float zfIn, float zf[], fxp_t zIn, fxp_t z[], int N) {
int i;
fxp_t zOut;
float zfOut;
zOut = z[0];
zfOut = zf[0];
for (i = 0; i < N - 1; i++) {
z[i] = z[i + 1];
zf[i] = zf[i + 1];
}
z[N - 1] = zIn;
zf[N - 1] = zfIn;
}
void shiftRboth(float zfIn, float zf[], fxp_t zIn, fxp_t z[], int N) {
int i;
fxp_t zOut;
float zfOut;
zOut = z[N - 1];
zfOut = zf[N - 1];
for (i = N - 1; i > 0; i--) {
z[i] = z[i - 1];
zf[i] = zf[i - 1];
}
z[0] = zIn;
zf[0] = zfIn;
}
int order(int Na, int Nb) {
return Na > Nb ? Na - 1 : Nb - 1;
}
void fxp_check_limit_cycle(fxp_t y[], int y_size){
fxp_t reference = y[y_size - 1];
int idx = 0;
int window_size = 1;
for(idx = (y_size-2); idx >= 0; idx--){
if (y[idx] != reference){
window_size++;
}else{
break;
}
}
__DSVERIFIER_assume(window_size != y_size && window_size != 1);
printf("window_size %d\n", window_size);
int desired_elements = 2 * window_size;
int found_elements = 0;
for(idx = (y_size-1); idx >= 0; idx--){
if (idx > (y_size-window_size-1)){
printf("%.0f == %.0f\n", y[idx], y[idx-window_size]);
int cmp_idx = idx - window_size;
if ((cmp_idx > 0) && (y[idx] == y[idx-window_size])){
found_elements = found_elements + 2;
}else{
break;
}
}
}
__DSVERIFIER_assume(found_elements > 0);
printf("desired_elements %d\n", desired_elements);
printf("found_elements %d\n", found_elements);
__DSVERIFIER_assume(found_elements == desired_elements);
__DSVERIFIER_assert(0);
}
void fxp_check_persistent_limit_cycle(fxp_t * y, int y_size){
int idy = 0;
int count_same = 0;
int window_size = 0;
fxp_t reference = y[0];
for(idy = 0; idy < y_size; idy++){
if (y[idy] != reference){
window_size++;
} else if (window_size != 0){
break;
} else {
count_same++;
}
}
window_size += count_same;
__DSVERIFIER_assume(window_size > 1 && window_size <= y_size/2);
fxp_t lco_elements[window_size];
for(idy = 0; idy < y_size; idy++){
if (idy < window_size){
lco_elements[idy] = y[idy];
}
}
idy = 0;
int lco_idy = 0;
_Bool is_persistent = 0;
while (idy < y_size){
if(y[idy++] == lco_elements[lco_idy++]){
is_persistent = 1;
}else{
is_persistent = 0;
break;
}
if (lco_idy == window_size){
lco_idy = 0;
}
}
__DSVERIFIER_assert(is_persistent == 0);
}
void fxp_check_oscillations(fxp_t y[] , int y_size){
__DSVERIFIER_assume((y[0] != y[y_size - 1]) && (y[y_size - 1] != y[y_size - 2]));
int window_timer = 0;
int window_count = 0;
int i, j;
for (i = 2; i < y_size; i++){
int window_size = i;
for(j=0; j<y_size; j++){
if (window_timer > window_size){
window_timer = 0;
window_count = 0;
}
int window_index = j + window_size;
if (window_index < y_size){
if (y[j] == y[window_index]){
window_count++;
__DSVERIFIER_assert(!(window_count == window_size));
}
}else{
break;
}
window_timer++;
}
}
}
int fxp_ln(int x) {
int t, y;
y = 0xa65af;
if (x < 0x00008000)
x <<= 16, y -= 0xb1721;
if (x < 0x00800000)
x <<= 8, y -= 0x58b91;
if (x < 0x08000000)
x <<= 4, y -= 0x2c5c8;
if (x < 0x20000000)
x <<= 2, y -= 0x162e4;
if (x < 0x40000000)
x <<= 1, y -= 0x0b172;
t = x + (x >> 1);
if ((t & 0x80000000) == 0)
x = t, y -= 0x067cd;
t = x + (x >> 2);
if ((t & 0x80000000) == 0)
x = t, y -= 0x03920;
t = x + (x >> 3);
if ((t & 0x80000000) == 0)
x = t, y -= 0x01e27;
t = x + (x >> 4);
if ((t & 0x80000000) == 0)
x = t, y -= 0x00f85;
t = x + (x >> 5);
if ((t & 0x80000000) == 0)
x = t, y -= 0x007e1;
t = x + (x >> 6);
if ((t & 0x80000000) == 0)
x = t, y -= 0x003f8;
t = x + (x >> 7);
if ((t & 0x80000000) == 0)
x = t, y -= 0x001fe;
x = 0x80000000 - x;
y -= x >> 15;
return y;
}
double fxp_log10_low(double x) {
int xint = (int) (x * 65536.0 + 0.5);
int lnum = fxp_ln(xint);
int lden = fxp_ln(655360);
return ((double) lnum / (double) lden);
}
double fxp_log10(double x) {
if (x > 32767.0) {
if (x > 1073676289.0) {
x = x / 1073676289.0;
return fxp_log10_low(x) + 9.030873362;
}
x = x / 32767.0;
return fxp_log10_low(x) + 4.515436681;
}
return fxp_log10_low(x);
}
float snrVariance(float s[], float n[], int blksz) {
int i;
double sm = 0, nm = 0, sv = 0, nv = 0, snr;
for (i = 0; i < blksz; i++) {
sm += s[i];
nm += n[i];
}
sm /= blksz;
nm /= blksz;
for (i = 0; i < blksz; i++) {
sv += (s[i] - sm) * (s[i] - sm);
nv += (n[i] - nm) * (n[i] - nm);
}
if (nv != 0.0f) {
# 373 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/core/functions.h" 3 4
((void) sizeof ((
# 373 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/core/functions.h"
sv >= nv
# 373 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/core/functions.h" 3 4
) ? 1 : 0), __extension__ ({ if (
# 373 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/core/functions.h"
sv >= nv
# 373 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/core/functions.h" 3 4
) ; else __assert_fail (
# 373 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/core/functions.h"
"sv >= nv"
# 373 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/core/functions.h" 3 4
, "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/core/functions.h", 373, __extension__ __PRETTY_FUNCTION__); }))
# 373 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/core/functions.h"
;
snr = sv / nv;
return snr;
} else {
return 9999.9f;
}
}
float snrPower(float s[], float n[], int blksz) {
int i;
double sv = 0, nv = 0, snr;
for (i = 0; i < blksz; i++) {
sv += s[i] * s[i];
nv += n[i] * n[i];
}
if (nv != 0.0f) {
# 394 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/core/functions.h" 3 4
((void) sizeof ((
# 394 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/core/functions.h"
sv >= nv
# 394 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/core/functions.h" 3 4
) ? 1 : 0), __extension__ ({ if (
# 394 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/core/functions.h"
sv >= nv
# 394 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/core/functions.h" 3 4
) ; else __assert_fail (
# 394 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/core/functions.h"
"sv >= nv"
# 394 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/core/functions.h" 3 4
, "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/core/functions.h", 394, __extension__ __PRETTY_FUNCTION__); }))
# 394 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/core/functions.h"
;
snr = sv / nv;
return snr;
} else {
return 9999.9f;
}
}
float snrPoint(float s[], float n[], int blksz) {
int i;
double ratio = 0, power = 0;
for (i = 0; i < blksz; i++) {
if(n[i] == 0) continue;
ratio = s[i] / n[i];
if(ratio > 150.0f || ratio < -150.0f) continue;
power = ratio * ratio;
# 412 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/core/functions.h" 3 4
((void) sizeof ((
# 412 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/core/functions.h"
power >= 1.0f
# 412 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/core/functions.h" 3 4
) ? 1 : 0), __extension__ ({ if (
# 412 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/core/functions.h"
power >= 1.0f
# 412 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/core/functions.h" 3 4
) ; else __assert_fail (
# 412 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/core/functions.h"
"power >= 1.0f"
# 412 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/core/functions.h" 3 4
, "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/core/functions.h", 412, __extension__ __PRETTY_FUNCTION__); }))
# 412 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/core/functions.h"
;
}
return 9999.9f;
}
unsigned long next = 1;
int rand(void)
{
next = next*1103515245 + 12345;
return (unsigned int)(next/65536) % 32768;
}
void srand(unsigned int seed)
{
next = seed;
}
float iirIIOutTime(float w[], float x, float a[], float b[], int Na, int Nb) {
int timer1 = 0;
float *a_ptr, *b_ptr, *w_ptr;
float sum = 0;
a_ptr = &a[1];
b_ptr = &b[0];
w_ptr = &w[1];
int k, j;
timer1 += 71;
for (j = 1; j < Na; j++) {
w[0] -= *a_ptr++ * *w_ptr++;
timer1 += 54;
}
w[0] += x;
w_ptr = &w[0];
for (k = 0; k < Nb; k++) {
sum += *b_ptr++ * *w_ptr++;
timer1 += 46;
}
timer1 += 38;
# 450 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/core/functions.h" 3 4
((void) sizeof ((
# 450 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/core/functions.h"
(double)timer1*1 / 16000000 <= (double)1 / 100
# 450 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/core/functions.h" 3 4
) ? 1 : 0), __extension__ ({ if (
# 450 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/core/functions.h"
(double)timer1*1 / 16000000 <= (double)1 / 100
# 450 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/core/functions.h" 3 4
) ; else __assert_fail (
# 450 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/core/functions.h"
"(double)timer1*CYCLE <= (double)DEADLINE"
# 450 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/core/functions.h" 3 4
, "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/core/functions.h", 450, __extension__ __PRETTY_FUNCTION__); }))
# 450 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/core/functions.h"
;
return sum;
}
float iirIItOutTime(float w[], float x, float a[], float b[], int Na, int Nb) {
int timer1 = 0;
float *a_ptr, *b_ptr;
float yout = 0;
a_ptr = &a[1];
b_ptr = &b[0];
int Nw = Na > Nb ? Na : Nb;
yout = (*b_ptr++ * x) + w[0];
int j;
timer1 += 105;
for (j = 0; j < Nw - 1; j++) {
w[j] = w[j + 1];
if (j < Na - 1) {
w[j] -= *a_ptr++ * yout;
timer1 += 41;
}
if (j < Nb - 1) {
w[j] += *b_ptr++ * x;
timer1 += 38;
}
timer1 += 54;
}
timer1 += 7;
# 477 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/core/functions.h" 3 4
((void) sizeof ((
# 477 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/core/functions.h"
(double)timer1*1 / 16000000 <= (double)1 / 100
# 477 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/core/functions.h" 3 4
) ? 1 : 0), __extension__ ({ if (
# 477 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/core/functions.h"
(double)timer1*1 / 16000000 <= (double)1 / 100
# 477 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/core/functions.h" 3 4
) ; else __assert_fail (
# 477 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/core/functions.h"
"(double)timer1*CYCLE <= (double)DEADLINE"
# 477 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/core/functions.h" 3 4
, "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/core/functions.h", 477, __extension__ __PRETTY_FUNCTION__); }))
# 477 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/core/functions.h"
;
return yout;
}
double iirIItOutTime_double(double w[], double x, double a[], double b[], int Na, int Nb) {
int timer1 = 0;
double *a_ptr, *b_ptr;
double yout = 0;
a_ptr = &a[1];
b_ptr = &b[0];
int Nw = Na > Nb ? Na : Nb;
yout = (*b_ptr++ * x) + w[0];
int j;
timer1 += 105;
for (j = 0; j < Nw - 1; j++) {
w[j] = w[j + 1];
if (j < Na - 1) {
w[j] -= *a_ptr++ * yout;
timer1 += 41;
}
if (j < Nb - 1) {
w[j] += *b_ptr++ * x;
timer1 += 38;
}
timer1 += 54;
}
timer1 += 7;
# 504 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/core/functions.h" 3 4
((void) sizeof ((
# 504 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/core/functions.h"
(double)timer1*1 / 16000000 <= (double)1 / 100
# 504 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/core/functions.h" 3 4
) ? 1 : 0), __extension__ ({ if (
# 504 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/core/functions.h"
(double)timer1*1 / 16000000 <= (double)1 / 100
# 504 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/core/functions.h" 3 4
) ; else __assert_fail (
# 504 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/core/functions.h"
"(double)timer1*CYCLE <= (double)DEADLINE"
# 504 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/core/functions.h" 3 4
, "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/core/functions.h", 504, __extension__ __PRETTY_FUNCTION__); }))
# 504 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/core/functions.h"
;
return yout;
}
void iirOutBoth(float yf[], float xf[], float af[], float bf[], float *sumf_ref,
fxp_t y[], fxp_t x[], fxp_t a[], fxp_t b[], fxp_t *sum_ref, int Na, int Nb) {
fxp_t *a_ptr, *y_ptr, *b_ptr, *x_ptr;
float *af_ptr, *yf_ptr, *bf_ptr, *xf_ptr;
fxp_t sum = 0;
float sumf = 0;
a_ptr = &a[1];
y_ptr = &y[Na - 1];
b_ptr = &b[0];
x_ptr = &x[Nb - 1];
af_ptr = &af[1];
yf_ptr = &yf[Na - 1];
bf_ptr = &bf[0];
xf_ptr = &xf[Nb - 1];
int i, j;
for (i = 0; i < Nb; i++) {
sum = fxp_add(sum, fxp_mult(*b_ptr++, *x_ptr--));
sumf += *bf_ptr++ * *xf_ptr--;
}
for (j = 1; j < Na; j++) {
sum = fxp_sub(sum, fxp_mult(*a_ptr++, *y_ptr--));
sumf -= *af_ptr++ * *yf_ptr--;
}
*sum_ref = sum;
*sumf_ref = sumf;
}
fxp_t iirOutFixedL(fxp_t y[], fxp_t x[], fxp_t xin, fxp_t a[], fxp_t b[], int Na, int Nb) {
fxp_t *a_ptr, *y_ptr, *b_ptr, *x_ptr;
fxp_t sum = 0;
a_ptr = &a[Na - 1];
y_ptr = &y[1];
b_ptr = &b[Nb - 1];
x_ptr = &x[0];
int i, j;
for (i = 0; i < Nb - 1; i++) {
x[i] = x[i+1];
sum = fxp_add(sum, fxp_mult(*b_ptr--, *x_ptr++));
}
x[Nb - 1] = xin;
sum = fxp_add(sum, fxp_mult(*b_ptr--, *x_ptr++));
for (j = 1; j < Na - 1; j++) {
sum = fxp_sub(sum, fxp_mult(*a_ptr--, *y_ptr++));
y[j] = y[j+1];
}
if(Na>1) sum = fxp_sub(sum, fxp_mult(*a_ptr--, *y_ptr++));
y[Na - 1] = sum;
return sum;
}
float iirOutFloatL(float y[], float x[], float xin, float a[], float b[], int Na, int Nb) {
float *a_ptr, *y_ptr, *b_ptr, *x_ptr;
float sum = 0;
a_ptr = &a[Na - 1];
y_ptr = &y[1];
b_ptr = &b[Nb - 1];
x_ptr = &x[0];
int i, j;
for (i = 0; i < Nb - 1; i++) {
x[i] = x[i+1];
sum += *b_ptr-- * *x_ptr++;
}
x[Nb - 1] = xin;
sum += *b_ptr-- * *x_ptr++;
for (j = 1; j < Na - 1; j++) {
sum -= *a_ptr-- * *y_ptr++;
y[j] = y[j+1];
}
if(Na>1) sum -= *a_ptr-- * *y_ptr++;
y[Na - 1] = sum;
return sum;
}
float iirOutBothL(float yf[], float xf[], float af[], float bf[], float xfin,
fxp_t y[], fxp_t x[], fxp_t a[], fxp_t b[], fxp_t xin, int Na, int Nb) {
fxp_t *a_ptr, *y_ptr, *b_ptr, *x_ptr;
fxp_t sum = 0;
a_ptr = &a[Na - 1];
y_ptr = &y[1];
b_ptr = &b[Nb - 1];
x_ptr = &x[0];
float *af_ptr, *yf_ptr, *bf_ptr, *xf_ptr;
float sumf = 0;
af_ptr = &af[Na - 1];
yf_ptr = &yf[1];
bf_ptr = &bf[Nb - 1];
xf_ptr = &xf[0];
int i, j;
for (i = 0; i < Nb - 1; i++) {
x[i] = x[i+1];
sum = fxp_add(sum, fxp_mult(*b_ptr--, *x_ptr++));
xf[i] = xf[i+1];
sumf += *bf_ptr-- * *xf_ptr++;
}
x[Nb - 1] = xin;
sum = fxp_add(sum, fxp_mult(*b_ptr--, *x_ptr++));
xf[Nb - 1] = xfin;
sumf += *bf_ptr-- * *xf_ptr++;
for (j = 1; j < Na - 1; j++) {
sum = fxp_sub(sum, fxp_mult(*a_ptr--, *y_ptr++));
y[j] = y[j+1];
sumf -= *af_ptr-- * *yf_ptr++;
yf[j] = yf[j+1];
}
if(Na>1) sum = fxp_sub(sum, fxp_mult(*a_ptr--, *y_ptr++));
y[Na - 1] = sum;
if(Na>1) sumf -= *af_ptr-- * *yf_ptr++;
yf[Na - 1] = sumf;
return fxp_to_float(sum) - sumf;
}
float iirOutBothL2(float yf[], float xf[], float af[], float bf[], float xfin,
fxp_t y[], fxp_t x[], fxp_t a[], fxp_t b[], fxp_t xin, int Na, int Nb) {
fxp_t *a_ptr, *y_ptr, *b_ptr, *x_ptr;
fxp_t sum = 0;
a_ptr = &a[Na - 1];
y_ptr = &y[1];
b_ptr = &b[Nb - 1];
x_ptr = &x[0];
float *af_ptr, *yf_ptr, *bf_ptr, *xf_ptr;
float sumf = 0;
af_ptr = &af[Na - 1];
yf_ptr = &yf[1];
bf_ptr = &bf[Nb - 1];
xf_ptr = &xf[0];
int i=0, j=1;
for (i = 0; i < Nb - 1; i++) {
x[i] = x[i+1];
sum = fxp_add(sum, fxp_mult(b[Nb - 1 - i], x[i]));
xf[i] = xf[i+1];
sumf += bf[Nb - 1 - i] * xf[i];
}
x[Nb - 1] = xin;
sum = fxp_add(sum, fxp_mult(b[Nb - 1 - i], x[i]));
xf[Nb - 1] = xfin;
sumf += bf[Nb - 1 - i] * xf[i];
for (j = 1; j < Na - 1; j++) {
sum = fxp_sub(sum, fxp_mult(a[Na - j], y[j]));
y[j] = y[j+1];
sumf -= af[Na - j] * yf[j];
yf[j] = yf[j+1];
}
if(Na>1) sum = fxp_sub(sum, fxp_mult(a[Na - j], y[j]));
y[Na - 1] = sum;
if(Na>1) sumf -= af[Na - j] * yf[j];
yf[Na - 1] = sumf;
return fxp_to_float(sum) - sumf;
}
# 25 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/dsverifier.h" 2
# 1 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/core/realizations.h" 1
# 19 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/core/realizations.h"
extern digital_system ds;
extern hardware hw;
extern int generic_timer;
fxp_t fxp_direct_form_1(fxp_t y[], fxp_t x[], fxp_t a[], fxp_t b[], int Na, int Nb) {
fxp_t *a_ptr, *y_ptr, *b_ptr, *x_ptr;
fxp_t sum = 0;
a_ptr = &a[1];
y_ptr = &y[Na - 1];
b_ptr = &b[0];
x_ptr = &x[Nb - 1];
int i, j;
for (i = 0; i < Nb; i++) {
sum = fxp_add(sum, fxp_mult(*b_ptr++, *x_ptr--));
}
for (j = 1; j < Na; j++) {
sum = fxp_sub(sum, fxp_mult(*a_ptr++, *y_ptr--));
}
fxp_verify_overflow_node(sum, "An Overflow Occurred in the node a0");
sum = fxp_div(sum,a[0]);
return fxp_quantize(sum);
}
fxp_t fxp_direct_form_2(fxp_t w[], fxp_t x, fxp_t a[], fxp_t b[], int Na, int Nb) {
fxp_t *a_ptr, *b_ptr, *w_ptr;
fxp_t sum = 0;
a_ptr = &a[1];
b_ptr = &b[0];
w_ptr = &w[1];
int k, j;
for (j = 1; j < Na; j++) {
w[0] = fxp_sub(w[0], fxp_mult(*a_ptr++, *w_ptr++));
}
w[0] = fxp_add(w[0], x);
w[0] = fxp_div(w[0], a[0]);
fxp_verify_overflow_node(w[0], "An Overflow Occurred in the node b0");
w_ptr = &w[0];
for (k = 0; k < Nb; k++) {
sum = fxp_add(sum, fxp_mult(*b_ptr++, *w_ptr++));
}
return fxp_quantize(sum);
}
fxp_t fxp_transposed_direct_form_2(fxp_t w[], fxp_t x, fxp_t a[], fxp_t b[], int Na, int Nb) {
fxp_t *a_ptr, *b_ptr;
fxp_t yout = 0;
a_ptr = &a[1];
b_ptr = &b[0];
int Nw = Na > Nb ? Na : Nb;
yout = fxp_add(fxp_mult(*b_ptr++, x), w[0]);
yout = fxp_div(yout, a[0]);
int j;
for (j = 0; j < Nw - 1; j++) {
w[j] = w[j + 1];
if (j < Na - 1) {
w[j] = fxp_sub(w[j], fxp_mult(*a_ptr++, yout));
}
if (j < Nb - 1) {
w[j] = fxp_add(w[j], fxp_mult(*b_ptr++, x));
}
}
fxp_verify_overflow_node(w[j], "An Overflow Occurred in the node a0");
return fxp_quantize(yout);
}
double double_direct_form_1(double y[], double x[], double a[], double b[], int Na, int Nb) {
double *a_ptr, *y_ptr, *b_ptr, *x_ptr;
double sum = 0;
a_ptr = &a[1];
y_ptr = &y[Na - 1];
b_ptr = &b[0];
x_ptr = &x[Nb - 1];
int i, j;
for (i = 0; i < Nb; i++) {
sum += *b_ptr++ * *x_ptr--;
}
for (j = 1; j < Na; j++) {
sum -= *a_ptr++ * *y_ptr--;
}
sum = (sum / a[0]);
return sum;
}
double double_direct_form_2(double w[], double x, double a[], double b[], int Na, int Nb) {
double *a_ptr, *b_ptr, *w_ptr;
double sum = 0;
a_ptr = &a[1];
b_ptr = &b[0];
w_ptr = &w[1];
int k, j;
for (j = 1; j < Na; j++) {
w[0] -= *a_ptr++ * *w_ptr++;
}
w[0] += x;
w[0] = w[0] / a[0];
w_ptr = &w[0];
for (k = 0; k < Nb; k++) {
sum += *b_ptr++ * *w_ptr++;
}
return sum;
}
double double_transposed_direct_form_2(double w[], double x, double a[], double b[], int Na, int Nb) {
double *a_ptr, *b_ptr;
double yout = 0;
a_ptr = &a[1];
b_ptr = &b[0];
int Nw = Na > Nb ? Na : Nb;
yout = (*b_ptr++ * x) + w[0];
yout = yout / a[0];
int j;
for (j = 0; j < Nw - 1; j++) {
w[j] = w[j + 1];
if (j < Na - 1) {
w[j] -= *a_ptr++ * yout;
}
if (j < Nb - 1) {
w[j] += *b_ptr++ * x;
}
}
return yout;
}
float float_direct_form_1(float y[], float x[], float a[], float b[], int Na, int Nb) {
float *a_ptr, *y_ptr, *b_ptr, *x_ptr;
float sum = 0;
a_ptr = &a[1];
y_ptr = &y[Na - 1];
b_ptr = &b[0];
x_ptr = &x[Nb - 1];
int i, j;
for (i = 0; i < Nb; i++) {
sum += *b_ptr++ * *x_ptr--;
}
for (j = 1; j < Na; j++) {
sum -= *a_ptr++ * *y_ptr--;
}
sum = (sum / a[0]);
return sum;
}
float float_direct_form_2(float w[], float x, float a[], float b[], int Na, int Nb) {
float *a_ptr, *b_ptr, *w_ptr;
float sum = 0;
a_ptr = &a[1];
b_ptr = &b[0];
w_ptr = &w[1];
int k, j;
for (j = 1; j < Na; j++) {
w[0] -= *a_ptr++ * *w_ptr++;
}
w[0] += x;
w[0] = w[0] / a[0];
w_ptr = &w[0];
for (k = 0; k < Nb; k++) {
sum += *b_ptr++ * *w_ptr++;
}
return sum;
}
float float_transposed_direct_form_2(float w[], float x, float a[], float b[], int Na, int Nb) {
float *a_ptr, *b_ptr;
float yout = 0;
a_ptr = &a[1];
b_ptr = &b[0];
int Nw = Na > Nb ? Na : Nb;
yout = (*b_ptr++ * x) + w[0];
yout = yout / a[0];
int j;
for (j = 0; j < Nw - 1; j++) {
w[j] = w[j + 1];
if (j < Na - 1) {
w[j] -= *a_ptr++ * yout;
}
if (j < Nb - 1) {
w[j] += *b_ptr++ * x;
}
}
return yout;
}
double double_direct_form_1_MSP430(double y[], double x[], double a[], double b[], int Na, int Nb){
int timer1 = 0;
double *a_ptr, *y_ptr, *b_ptr, *x_ptr;
double sum = 0;
a_ptr = &a[1];
y_ptr = &y[Na-1];
b_ptr = &b[0];
x_ptr = &x[Nb-1];
int i, j;
timer1 += 91;
for (i = 0; i < Nb; i++){
sum += *b_ptr++ * *x_ptr--;
timer1 += 47;
}
for (j = 1; j < Na; j++){
sum -= *a_ptr++ * *y_ptr--;
timer1 += 57;
}
timer1 += 3;
# 235 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/core/realizations.h" 3 4
((void) sizeof ((
# 235 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/core/realizations.h"
(double) timer1 * hw.cycle <= ds.sample_time
# 235 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/core/realizations.h" 3 4
) ? 1 : 0), __extension__ ({ if (
# 235 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/core/realizations.h"
(double) timer1 * hw.cycle <= ds.sample_time
# 235 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/core/realizations.h" 3 4
) ; else __assert_fail (
# 235 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/core/realizations.h"
"(double) timer1 * hw.cycle <= ds.sample_time"
# 235 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/core/realizations.h" 3 4
, "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/core/realizations.h", 235, __extension__ __PRETTY_FUNCTION__); }))
# 235 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/core/realizations.h"
;
return sum;
}
double double_direct_form_2_MSP430(double w[], double x, double a[], double b[], int Na, int Nb) {
int timer1 = 0;
double *a_ptr, *b_ptr, *w_ptr;
double sum = 0;
a_ptr = &a[1];
b_ptr = &b[0];
w_ptr = &w[1];
int k, j;
timer1 += 71;
for (j = 1; j < Na; j++) {
w[0] -= *a_ptr++ * *w_ptr++;
timer1 += 54;
}
w[0] += x;
w[0] = w[0] / a[0];
w_ptr = &w[0];
for (k = 0; k < Nb; k++) {
sum += *b_ptr++ * *w_ptr++;
timer1 += 46;
}
timer1 += 38;
# 262 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/core/realizations.h" 3 4
((void) sizeof ((
# 262 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/core/realizations.h"
(double) timer1 * hw.cycle <= ds.sample_time
# 262 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/core/realizations.h" 3 4
) ? 1 : 0), __extension__ ({ if (
# 262 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/core/realizations.h"
(double) timer1 * hw.cycle <= ds.sample_time
# 262 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/core/realizations.h" 3 4
) ; else __assert_fail (
# 262 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/core/realizations.h"
"(double) timer1 * hw.cycle <= ds.sample_time"
# 262 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/core/realizations.h" 3 4
, "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/core/realizations.h", 262, __extension__ __PRETTY_FUNCTION__); }))
# 262 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/core/realizations.h"
;
return sum;
}
double double_transposed_direct_form_2_MSP430(double w[], double x, double a[], double b[], int Na, int Nb) {
int timer1 = 0;
double *a_ptr, *b_ptr;
double yout = 0;
a_ptr = &a[1];
b_ptr = &b[0];
int Nw = Na > Nb ? Na : Nb;
yout = (*b_ptr++ * x) + w[0];
int j;
timer1 += 105;
for (j = 0; j < Nw - 1; j++) {
w[j] = w[j + 1];
if (j < Na - 1) {
w[j] -= *a_ptr++ * yout;
timer1 += 41;
}
if (j < Nb - 1) {
w[j] += *b_ptr++ * x;
timer1 += 38;
}
timer1 += 54;
}
timer1 += 7;
# 291 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/core/realizations.h" 3 4
((void) sizeof ((
# 291 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/core/realizations.h"
(double) timer1 * hw.cycle <= ds.sample_time
# 291 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/core/realizations.h" 3 4
) ? 1 : 0), __extension__ ({ if (
# 291 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/core/realizations.h"
(double) timer1 * hw.cycle <= ds.sample_time
# 291 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/core/realizations.h" 3 4
) ; else __assert_fail (
# 291 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/core/realizations.h"
"(double) timer1 * hw.cycle <= ds.sample_time"
# 291 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/core/realizations.h" 3 4
, "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/core/realizations.h", 291, __extension__ __PRETTY_FUNCTION__); }))
# 291 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/core/realizations.h"
;
return yout;
}
double generic_timing_double_direct_form_1(double y[], double x[], double a[], double b[], int Na, int Nb){
generic_timer += ((6 * hw.assembly.push) + (3 * hw.assembly.in) + (1 * hw.assembly.sbiw) + (1 * hw.assembly.cli) + (3 * hw.assembly.out) + (12 * hw.assembly.std));
double *a_ptr, *y_ptr, *b_ptr, *x_ptr;
double sum = 0;
a_ptr = &a[1];
y_ptr = &y[Na-1];
b_ptr = &b[0];
x_ptr = &x[Nb-1];
generic_timer += ((12 * hw.assembly.std) + (12 * hw.assembly.ldd) + (2 * hw.assembly.subi) + (2 * hw.assembly.sbci) + (4 * hw.assembly.lsl) + (4 * hw.assembly.rol) + (2 * hw.assembly.add) + (2 * hw.assembly.adc) + (1 * hw.assembly.adiw));
int i, j;
generic_timer += ((2 * hw.assembly.std) + (1 * hw.assembly.rjmp));
for (i = 0; i < Nb; i++){
generic_timer += ((20 * hw.assembly.ldd) + (24 * hw.assembly.mov) + (2 * hw.assembly.subi) + (1 * hw.assembly.sbci) + (1 * hw.assembly.sbc) + (10 * hw.assembly.std) + (2 * hw.assembly.ld) + (2 * hw.assembly.rcall) + (1 * hw.assembly.adiw) + (1 * hw.assembly.cp) + (1 * hw.assembly.cpc) + (1 * hw.assembly.adiw) + (1 * hw.assembly.brge) + (1 * hw.assembly.rjmp));
sum += *b_ptr++ * *x_ptr--;
}
generic_timer += ((2 * hw.assembly.ldi) + (2 * hw.assembly.std) + (1 * hw.assembly.rjmp));
for (j = 1; j < Na; j++){
generic_timer += ((22 * hw.assembly.ldd) + (24 * hw.assembly.mov) + (2 * hw.assembly.subi) + (8 * hw.assembly.std) + (1 * hw.assembly.sbci) + (2 * hw.assembly.ld) + (2 * hw.assembly.rcall) + (1 * hw.assembly.sbc) + (1 * hw.assembly.adiw) + (1 * hw.assembly.cp) + (1 * hw.assembly.cpc) + (1 * hw.assembly.adiw) + (1 * hw.assembly.brge) + (1 * hw.assembly.rjmp));
sum -= *a_ptr++ * *y_ptr--;
}
generic_timer += ((4 * hw.assembly.ldd) + (4 * hw.assembly.mov) + (1 * hw.assembly.adiw) + (1 * hw.assembly.in) + (1 * hw.assembly.cli) + (3 * hw.assembly.out) + (6 * hw.assembly.pop) + (1 * hw.assembly.ret));
return sum;
}
double generic_timing_double_direct_form_2(double w[], double x, double a[], double b[], int Na, int Nb) {
generic_timer += ((8 * hw.assembly.push) + (14 * hw.assembly.std) + (3 * hw.assembly.out) + (3 * hw.assembly.in) + (1 * hw.assembly.sbiw) + (1 * hw.assembly.cli));
double *a_ptr, *b_ptr, *w_ptr;
double sum = 0;
a_ptr = &a[1];
b_ptr = &b[0];
w_ptr = &w[1];
int k, j;
generic_timer += ((10 * hw.assembly.std) + (6 * hw.assembly.ldd) + (2 * hw.assembly.adiw));
generic_timer += ((2 * hw.assembly.ldi) + (2 * hw.assembly.std) + (1 * hw.assembly.rjmp));
for (j = 1; j < Na; j++) {
w[0] -= *a_ptr++ * *w_ptr++;
generic_timer += ((23 * hw.assembly.ldd) + (32 * hw.assembly.mov) + (9 * hw.assembly.std) + (2 * hw.assembly.subi) + (3 * hw.assembly.ld) + (2 * hw.assembly.rcall) + (2 * hw.assembly.sbci) + (1 * hw.assembly.st) + (1 * hw.assembly.adiw) + (1 * hw.assembly.cp) + (1 * hw.assembly.cpc) + (1 * hw.assembly.brge));
}
w[0] += x;
w_ptr = &w[0];
generic_timer += ((13 * hw.assembly.ldd) + (12 * hw.assembly.mov) + (5 * hw.assembly.std) + (1 * hw.assembly.st) + (1 * hw.assembly.ld) + (1 * hw.assembly.rcall));
generic_timer += ((2 * hw.assembly.std) + (1 * hw.assembly.rjmp));
for (k = 0; k < Nb; k++) {
sum += *b_ptr++ * *w_ptr++;
generic_timer += ((20 * hw.assembly.ldd) + (24 * hw.assembly.mov) + (10 * hw.assembly.std) + (2 * hw.assembly.rcall) + (2 * hw.assembly.ld) + (2 * hw.assembly.subi) + (2 * hw.assembly.sbci) + (1 * hw.assembly.adiw) + (1 * hw.assembly.cp) + (1 * hw.assembly.cpc) + (1 * hw.assembly.brge) + (1 * hw.assembly.rjmp));
}
generic_timer += ((4 * hw.assembly.ldd) + (4 * hw.assembly.mov) + (1 * hw.assembly.adiw) + (1 * hw.assembly.in) + (1 * hw.assembly.cli) + (3 * hw.assembly.out) + (8 * hw.assembly.pop) + (1 * hw.assembly.ret));
return sum;
}
double generic_timing_double_transposed_direct_form_2(double w[], double x, double a[], double b[], int Na, int Nb) {
generic_timer += ((8 * hw.assembly.push) + (14 * hw.assembly.std) + (3 * hw.assembly.out) + (3 * hw.assembly.in) + (1 * hw.assembly.sbiw) + (1 * hw.assembly.cli));
double *a_ptr, *b_ptr;
double yout = 0;
a_ptr = &a[1];
b_ptr = &b[0];
int Nw = Na > Nb ? Na : Nb;
yout = (*b_ptr++ * x) + w[0];
int j;
generic_timer += ((15 * hw.assembly.std) + (22 * hw.assembly.ldd) + (24 * hw.assembly.mov) + (2 * hw.assembly.rcall) + (2 * hw.assembly.ld) + (1 * hw.assembly.cp) + (1 * hw.assembly.cpc) + (1 * hw.assembly.subi) + (1 * hw.assembly.sbci) + (1 * hw.assembly.brge) + (1 * hw.assembly.adiw));
generic_timer += ((2 * hw.assembly.std) + (1 * hw.assembly.rjmp));
for (j = 0; j < Nw - 1; j++) {
w[j] = w[j + 1];
if (j < Na - 1) {
w[j] -= *a_ptr++ * yout;
}
if (j < Nb - 1) {
w[j] += *b_ptr++ * x;
}
generic_timer += ((70 * hw.assembly.mov) + (65 * hw.assembly.ldd) + (12 * hw.assembly.lsl) + (12 * hw.assembly.rol) + (15 * hw.assembly.std) + (6 * hw.assembly.add) + (6 * hw.assembly.adc) + (2 * hw.assembly.adiw) + (3 * hw.assembly.cpc) + (3 * hw.assembly.cp) + (5 * hw.assembly.ld) + (4 * hw.assembly.rcall) + (5 * hw.assembly.subi) + (3 * hw.assembly.rjmp) + (2 * hw.assembly.brlt) + (3 * hw.assembly.st) + (2 * hw.assembly.sbci) + (3 * hw.assembly.sbc) + (1 * hw.assembly.brge));
}
generic_timer += ((4 * hw.assembly.ldd) + (4 * hw.assembly.mov) + (8 * hw.assembly.pop) + (3 * hw.assembly.out) + (1 * hw.assembly.in) + (1 * hw.assembly.cli) + (1 * hw.assembly.adiw) + (1 * hw.assembly.ret));
return yout;
}
void double_direct_form_1_impl2(double x[], int x_size, double b[], int b_size, double a[], int a_size, double y[]){
int i = 0; int j = 0;
double v[x_size];
for(i = 0; i < x_size; i++){
v[i] = 0;
for(j = 0; j < b_size; j++){
if (j > i) break;
v[i] = v[i] + x[i-j] * b[j];
}
}
y[0] = v[0];
for(i = 1; i < x_size; i++){
y[i] = 0;
y[i] = y[i] + v[i];
for(j = 1; j < a_size; j++){
if (j > i) break;
y[i] = y[i] + y[i-j] * ((-1) * a[j]);
}
}
}
void fxp_direct_form_1_impl2(fxp_t x[], int x_size, fxp_t b[], int b_size, fxp_t a[], int a_size, fxp_t y[]){
int i = 0; int j = 0;
fxp_t v[x_size];
for(i = 0; i < x_size; i++){
v[i] = 0;
for(j = 0; j < b_size; j++){
if (j > i) break;
v[i] = fxp_add(v[i], fxp_mult(x[i-j], b[j]));
}
}
y[0] = v[0];
for(i = 1; i < x_size; i++){
y[i] = 0;
y[i] = fxp_add(y[i], v[i]);
for(j = 1; j < a_size; j++){
if (j > i) break;
y[i] = fxp_add(y[i], fxp_mult(y[i-j] , -a[j]));
}
}
}
# 26 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/dsverifier.h" 2
# 1 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/core/delta-operator.h" 1
# 19 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/core/delta-operator.h"
# 1 "/usr/include/assert.h" 1 3 4
# 20 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/core/delta-operator.h" 2
# 1 "/usr/include/assert.h" 1 3 4
# 23 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/core/delta-operator.h" 2
int nchoosek(int n, int k){
if (k == 0)
return 1;
return (n * nchoosek(n - 1, k - 1)) / k;
}
void generate_delta_coefficients(double vetor[], double out[], int n, double delta){
int i,j;
int N = n - 1;
double sum_delta_operator;
for(i=0; i<=N; i++)
{
sum_delta_operator = 0;
for(j=0; j<=i; j++)
{
sum_delta_operator = sum_delta_operator + vetor[j]*nchoosek(N-j,i-j);
}
out[i] = internal_pow(delta,N-i)*sum_delta_operator;
}
}
void get_delta_transfer_function(double b[], double b_out[], int b_size, double a[], double a_out[], int a_size, double delta){
generate_delta_coefficients(b, b_out, b_size, delta);
generate_delta_coefficients(a, a_out, a_size, delta);
}
void get_delta_transfer_function_with_base(double b[], double b_out[], int b_size, double a[], double a_out[], int a_size, double delta){
int i,j;
int N = a_size - 1;
int M = b_size - 1;
double sum_delta_operator;
for(i=0; i<=N; i++)
{
sum_delta_operator = 0;
for(j=0; j<=i; j++)
{
sum_delta_operator = sum_delta_operator + a[j]*nchoosek(N-j,i-j);
}
a_out[i] = internal_pow(delta,N-i)*sum_delta_operator;
}
for(i=0; i<=M; i++)
{
sum_delta_operator = 0;
for(j=0; j<=i; j++)
{
sum_delta_operator = sum_delta_operator + b[j]*nchoosek(M-j,i-j);
}
b_out[i] = internal_pow(delta,M-i)*sum_delta_operator;
}
}
# 27 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/dsverifier.h" 2
# 1 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/core/closed-loop.h" 1
# 28 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/core/closed-loop.h"
void ft_closedloop_series(double c_num[], int Nc_num, double c_den[], int Nc_den, double model_num[], int Nmodel_num, double model_den[], int Nmodel_den, double ans_num[], int Nans_num, double ans_den[], int Nans_den){
Nans_num = Nc_num + Nmodel_num - 1;
Nans_den = Nc_den + Nmodel_den - 1 ;
double den_mult [Nans_den];
poly_mult(c_num, Nc_num, model_num, Nmodel_num, ans_num, Nans_num);
poly_mult(c_den, Nc_den, model_den, Nmodel_den, den_mult, Nans_den );
poly_sum(ans_num, Nans_num , den_mult, Nans_den , ans_den, Nans_den);
}
void ft_closedloop_sensitivity(double c_num[], int Nc_num, double c_den[], int Nc_den, double model_num[], int Nmodel_num, double model_den[], int Nmodel_den, double ans_num[], int Nans_num, double ans_den[], int Nans_den){
int Nans_num_p = Nc_num + Nmodel_num-1;
Nans_den = Nc_den + Nmodel_den-1;
Nans_num = Nc_den + Nmodel_den-1;
double num_mult [Nans_num_p];
poly_mult(c_den, Nc_den, model_den, Nmodel_den, ans_num, Nans_num);
poly_mult(c_num, Nc_num, model_num, Nmodel_num, num_mult, Nans_num_p);
poly_sum(ans_num, Nans_num, num_mult, Nans_num_p, ans_den, Nans_den);
}
void ft_closedloop_feedback(double c_num[], int Nc_num, double c_den[], int Nc_den, double model_num[], int Nmodel_num, double model_den[], int Nmodel_den, double ans_num[], int Nans_num, double ans_den[], int Nans_den){
Nans_num = Nc_den + Nmodel_num - 1;
Nans_den = Nc_den + Nmodel_den - 1;
int Nnum_mult = Nc_num + Nmodel_num - 1;
double den_mult [Nans_den];
double num_mult [Nnum_mult];
poly_mult(c_num, Nc_num, model_num, Nmodel_num, num_mult, Nnum_mult);
poly_mult(c_den, Nc_den, model_den, Nmodel_den, den_mult, Nans_den);
poly_sum(num_mult, Nnum_mult, den_mult, Nans_den, ans_den, Nans_den);
poly_mult(c_den, Nc_den, model_num, Nmodel_num, ans_num, Nans_num);
}
int check_stability_closedloop(double a[], int n, double plant_num[], int p_num_size, double plant_den[], int p_den_size){
int columns = n;
double m[2 * n - 1][n];
int i,j;
int first_is_positive = 0;
double * p_num = plant_num;
double * p_den = plant_den;
double sum = 0;
for (i=0; i < n; i++){
sum += a[i];
}
__DSVERIFIER_assert(sum > 0);
sum = 0;
for (i=0; i < n; i++){
sum += a[i] * internal_pow(-1, n-1-i);
}
sum = sum * internal_pow(-1, n-1);
__DSVERIFIER_assert(sum > 0);
__DSVERIFIER_assert(internal_abs(a[n-1]) < a[0]);
for (i=0; i < 2 * n - 1; i++){
for (j=0; j < columns; j++){
m[i][j] = 0;
if (i == 0){
m[i][j] = a[j];
continue;
}
if (i % 2 != 0 ){
int x;
for(x=0; x<columns;x++){
m[i][x] = m[i-1][columns-x-1];
}
columns = columns - 1;
j = columns;
}else{
__DSVERIFIER_assert(m[i-2][0] > 0);
m[i][j] = m[i-2][j] - (m[i-2][columns] / m[i-2][0]) * m[i-1][j];
__DSVERIFIER_assert((m[0][0] >= 0) && (m[i][0] >= 0));
}
}
}
return 1;
}
# 28 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/dsverifier.h" 2
# 1 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/core/initialization.h" 1
# 17 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/core/initialization.h"
extern digital_system ds;
extern digital_system plant;
extern digital_system control;
extern implementation impl;
extern filter_parameters filter;
extern hardware hw;
void initialization(){
if (impl.frac_bits >= 32){
printf("impl.frac_bits must be less than word width!\n");
}
if (impl.int_bits >= 32 - impl.frac_bits){
printf("impl.int_bits must be less than word width subtracted by precision!\n");
# 33 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/core/initialization.h" 3 4
((void) sizeof ((
# 33 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/core/initialization.h"
0
# 33 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/core/initialization.h" 3 4
) ? 1 : 0), __extension__ ({ if (
# 33 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/core/initialization.h"
0
# 33 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/core/initialization.h" 3 4
) ; else __assert_fail (
# 33 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/core/initialization.h"
"0"
# 33 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/core/initialization.h" 3 4
, "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/core/initialization.h", 33, __extension__ __PRETTY_FUNCTION__); }))
# 33 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/core/initialization.h"
;
}
if(impl.frac_bits >= 31){
_fxp_one = 0x7fffffff;
}else{
_fxp_one = (0x00000001 << impl.frac_bits);
}
_fxp_half = (0x00000001 << (impl.frac_bits - 1));
_fxp_minus_one = -(0x00000001 << impl.frac_bits);
_fxp_min = -(0x00000001 << (impl.frac_bits + impl.int_bits - 1));
_fxp_max = (0x00000001 << (impl.frac_bits + impl.int_bits - 1)) - 1;
_fxp_fmask = ((((int32_t) 1) << impl.frac_bits) - 1);
_fxp_imask = ((0x80000000) >> (32 - impl.frac_bits - 1));
_dbl_min = _fxp_min;
_dbl_min /= (1 << impl.frac_bits);
_dbl_max = _fxp_max;
_dbl_max /= (1 << impl.frac_bits);
if ((impl.scale == 0) || (impl.scale == 1)){
impl.scale = 1;
return;
}
if (impl.min != 0){
impl.min = impl.min / impl.scale;
}
if (impl.max != 0){
impl.max = impl.max / impl.scale;
}
# 80 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/core/initialization.h"
}
# 29 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/dsverifier.h" 2
# 1 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/core/state-space.h" 1
# 19 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/core/state-space.h"
extern digital_system_state_space _controller;
extern int nStates;
extern int nInputs;
extern int nOutputs;
double double_state_space_representation(void){
double result1[4][4];
double result2[4][4];
int i, j;
for(i=0; i<4;i++){
for(j=0; j<4;j++){
result1[i][j]=0;
result2[i][j]=0;
}
}
double_matrix_multiplication(nOutputs,nStates,nStates,1,_controller.C,_controller.states,result1);
double_matrix_multiplication(nOutputs,nInputs,nInputs,1,_controller.D,_controller.inputs,result2);
double_add_matrix(nOutputs,
1,
result1,
result2,
_controller.outputs);
double_matrix_multiplication(nStates,nStates,nStates,1,_controller.A,_controller.states,result1);
double_matrix_multiplication(nStates,nInputs,nInputs,1,_controller.B,_controller.inputs,result2);
double_add_matrix(nStates,
1,
result1,
result2,
_controller.states);
return _controller.outputs[0][0];
}
double fxp_state_space_representation(void){
fxp_t result1[4][4];
fxp_t result2[4][4];
int i, j;
for(i=0; i<4;i++){
for(j=0; j<4;j++){
result1[i][j]=0;
result2[i][j]=0;
}
}
fxp_t A_fpx[4][4];
fxp_t B_fpx[4][4];
fxp_t C_fpx[4][4];
fxp_t D_fpx[4][4];
fxp_t states_fpx[4][4];
fxp_t inputs_fpx[4][4];
fxp_t outputs_fpx[4][4];
for(i=0; i<4;i++){
for(j=0; j<4;j++){
A_fpx[i][j]=0;
}
}
for(i=0; i<4;i++){
for(j=0; j<4;j++){
B_fpx[i][j]=0;
}
}
for(i=0; i<4;i++){
for(j=0; j<4;j++){
C_fpx[i][j]=0;
}
}
for(i=0; i<4;i++){
for(j=0; j<4;j++){
D_fpx[i][j]=0;
}
}
for(i=0; i<4;i++){
for(j=0; j<4;j++){
states_fpx[i][j]=0;
}
}
for(i=0; i<4;i++){
for(j=0; j<4;j++){
inputs_fpx[i][j]=0;
}
}
for(i=0; i<4;i++){
for(j=0; j<4;j++){
outputs_fpx[i][j]=0;
}
}
for(i=0; i<nStates;i++){
for(j=0; j<nStates;j++){
A_fpx[i][j]= fxp_double_to_fxp(_controller.A[i][j]);
}
}
for(i=0; i<nStates;i++){
for(j=0; j<nInputs;j++){
B_fpx[i][j]= fxp_double_to_fxp(_controller.B[i][j]);
}
}
for(i=0; i<nOutputs;i++){
for(j=0; j<nStates;j++){
C_fpx[i][j]= fxp_double_to_fxp(_controller.C[i][j]);
}
}
for(i=0; i<nOutputs;i++){
for(j=0; j<nInputs;j++){
D_fpx[i][j]= fxp_double_to_fxp(_controller.D[i][j]);
}
}
for(i=0; i<nStates;i++){
for(j=0; j<1;j++){
states_fpx[i][j]= fxp_double_to_fxp(_controller.states[i][j]);
}
}
for(i=0; i<nInputs;i++){
for(j=0; j<1;j++){
inputs_fpx[i][j]= fxp_double_to_fxp(_controller.inputs[i][j]);
}
}
for(i=0; i<nOutputs;i++){
for(j=0; j<1;j++){
outputs_fpx[i][j]= fxp_double_to_fxp(_controller.outputs[i][j]);
}
}
fxp_matrix_multiplication(nOutputs,nStates,nStates,1,C_fpx,states_fpx,result1);
fxp_matrix_multiplication(nOutputs,nInputs,nInputs,1,D_fpx,inputs_fpx,result2);
fxp_add_matrix(nOutputs,
1,
result1,
result2,
outputs_fpx);
fxp_matrix_multiplication(nStates,nStates,nStates,1,A_fpx,states_fpx,result1);
fxp_matrix_multiplication(nStates,nInputs,nInputs,1,B_fpx,inputs_fpx,result2);
fxp_add_matrix(nStates,
1,
result1,
result2,
states_fpx);
for(i=0; i<nStates;i++){
for(j=0; j<1;j++){
_controller.states[i][j]= fxp_to_double(states_fpx[i][j]);
}
}
for(i=0; i<nOutputs;i++){
for(j=0; j<1;j++){
_controller.outputs[i][j]= fxp_to_double(outputs_fpx[i][j]);
}
}
return _controller.outputs[0][0];
}
# 30 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/dsverifier.h" 2
# 1 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/core/filter_functions.h" 1
# 20 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/core/filter_functions.h"
double sinTyl(double x, int precision){
double sine;
double xsquared = x*x;
double aux;
if (precision < 0)
{
printf("Warning: Function sinTyl from bmc/core/filter_functions.h: "
"Precision must be a positive integer. Assuming 0 precision\n");
precision = 0;
}
if (precision >= 0)
{
aux = 0;
sine = aux;
if (precision >= 1)
{
aux = x;
sine += aux;
if (precision >= 2)
{
aux = aux*xsquared;
sine -= aux/6;
if (precision >= 3)
{
aux = aux*xsquared;
sine +=aux/120;
if(precision >=4)
{
aux = aux*xsquared;
sine -=aux/5040;
if(precision >= 5)
{
aux = aux*xsquared;
sine +=aux/362880;
if(precision >= 6)
{
aux = aux*xsquared;
sine -=aux/39916800;
if (precision >= 7)
printf("Warning: Function sinTyl "
"from bmc/core/filter_functions.h: Precision "
"representation exceeded. Assuming maximum precision of 6\n");
}
}
}
}
}
}
}
return sine;
}
double cosTyl(double x, int precision){
double cosine;
double xsquared = x*x;
double aux;
if (precision < 0)
{
printf("Warning: Function cosTyl from bmc/core/filter_functions.h: "
"Precision must be a positive integer. Assuming 0 precision\n");
precision = 0;
}
if (precision >= 0)
{
aux = 0;
cosine = aux;
if (precision >= 1)
{
aux = 1;
cosine = 1;
if (precision >= 2)
{
aux = xsquared;
cosine -= aux/2;
if (precision >= 3)
{
aux = aux*xsquared;
cosine += aux/24;
if(precision >=4)
{
aux = aux*xsquared;
cosine -=aux/720;
if(precision >= 5)
{
aux = aux*xsquared;
cosine +=aux/40320;
if(precision >= 6)
{
aux = aux*xsquared;
cosine -=aux/3628800;
if (precision >= 7) printf("Warning: Function sinTyl "
"from bmc/core/filter_functions.h: Precision "
"representation exceeded. Assuming maximum precision of 6\n");
}
}
}
}
}
}
}
return cosine;
}
double atanTyl(double x, int precision){
double atangent;
double xsquared = x*x;
double aux;
if (precision < 0)
{
printf("Warning: Function sinTyl from bmc/core/filter_functions.h: "
"Precision must be a positive integer. Assuming 0 precision\n");
precision = 0;
}
if (precision >= 0)
{
aux = 0;
atangent = aux;
if (precision >= 1)
{
aux = x;
atangent = aux;
if (precision >= 2)
{
aux = xsquared;
atangent -= aux/3;
if (precision >= 3)
{
aux = aux*xsquared;
atangent += aux/5;
if(precision >=4)
{
aux = aux*xsquared;
atangent -=aux/7;
if (precision >= 7)
printf("Warning: Function sinTyl from bmc/core/filter_functions.h: "
"Precision representation exceeded. Assuming maximum precision of 4\n");
}
}
}
}
}
return atangent;
}
float sqrt1(const float x)
{
const float xhalf = 0.5f*x;
union
{
float x;
int i;
} u;
u.x = x;
u.i = 0x5f3759df - (u.i >> 1);
return x*u.x*(1.5f - xhalf*u.x*u.x);
}
float sqrt2(const float x)
{
union
{
int i;
float x;
} u;
u.x = x;
u.i = (1<<29) + (u.i >> 1) - (1<<22);
return u.x;
}
float fabsolut(float x)
{
if (x < 0)
x = -x;
return x;
}
static float sqrt3(float val)
{
float x = val/10;
float dx;
double diff;
double min_tol = 0.00001;
int i, flag;
flag = 0;
if (val == 0 ) x = 0;
else
{
for (i=1;i<20;i++)
{
if (!flag)
{
dx = (val - (x*x)) / (2.0 * x);
x = x + dx;
diff = val - (x*x);
if (fabsolut(diff) <= min_tol) flag = 1;
}
else x =x;
}
}
return (x);
}
# 31 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/dsverifier.h" 2
# 1 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/engine/verify_overflow.h" 1
# 19 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/engine/verify_overflow.h"
int nondet_int();
float nondet_float();
extern digital_system ds;
extern implementation impl;
int verify_overflow(void) {
fxp_t a_fxp[ds.a_size];
fxp_t b_fxp[ds.b_size];
fxp_double_to_fxp_array(ds.a, a_fxp, ds.a_size);
fxp_double_to_fxp_array(ds.b, b_fxp, ds.b_size);
# 73 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/engine/verify_overflow.h"
fxp_t min_fxp = fxp_double_to_fxp(impl.min);
fxp_t max_fxp = fxp_double_to_fxp(impl.max);
fxp_t y[X_SIZE_VALUE];
fxp_t x[X_SIZE_VALUE];
int i;
for (i = 0; i < X_SIZE_VALUE; ++i) {
y[i] = 0;
x[i] = nondet_int();
__DSVERIFIER_assume(x[i] >= min_fxp && x[i] <= max_fxp);
}
int Nw = 0;
Nw = ds.a_size > ds.b_size ? ds.a_size : ds.b_size;
fxp_t yaux[ds.a_size];
fxp_t xaux[ds.b_size];
fxp_t waux[Nw];
for (i = 0; i < ds.a_size; ++i) {
yaux[i] = 0;
}
for (i = 0; i < ds.b_size; ++i) {
xaux[i] = 0;
}
for (i = 0; i < Nw; ++i) {
waux[i] = 0;
}
fxp_t xk, temp;
fxp_t *aptr, *bptr, *xptr, *yptr, *wptr;
int j;
for (i = 0; i < X_SIZE_VALUE; ++i) {
# 123 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/engine/verify_overflow.h"
shiftR(0, waux, Nw);
y[i] = fxp_direct_form_2(waux, x[i], a_fxp, b_fxp, ds.a_size, ds.b_size);
# 174 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/engine/verify_overflow.h"
}
overflow_mode = 1;
fxp_verify_overflow_array(y, X_SIZE_VALUE);
return 0;
}
# 33 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/dsverifier.h" 2
# 1 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/engine/verify_limit_cycle.h" 1
# 15 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/engine/verify_limit_cycle.h"
extern digital_system ds;
extern implementation impl;
extern digital_system_state_space _controller;
extern int nStates;
extern int nInputs;
extern int nOutputs;
int verify_limit_cycle_state_space(void){
double stateMatrix[4][4];
double outputMatrix[4][4];
double arrayLimitCycle[4];
double result1[4][4];
double result2[4][4];
int i, j, k;
for(i=0; i<4;i++){
for(j=0; j<4;j++){
result1[i][j]=0;
result2[i][j]=0;
stateMatrix[i][j]=0;
outputMatrix[i][j]=0;
}
}
double_matrix_multiplication(nOutputs,nStates,nStates,1,_controller.C,_controller.states,result1);
double_matrix_multiplication(nOutputs,nInputs,nInputs,1,_controller.D,_controller.inputs,result2);
double_add_matrix(nOutputs,
1,
result1,
result2,
_controller.outputs);
k = 0;
for (i = 1; i < 0; i++) {
double_matrix_multiplication(nStates,nStates,nStates,1,_controller.A,_controller.states,result1);
double_matrix_multiplication(nStates,nInputs,nInputs,1,_controller.B,_controller.inputs,result2);
double_add_matrix(nStates,
1,
result1,
result2,
_controller.states);
double_matrix_multiplication(nOutputs,nStates,nStates,1,_controller.C,_controller.states,result1);
double_matrix_multiplication(nOutputs,nInputs,nInputs,1,_controller.D,_controller.inputs,result2);
double_add_matrix(nOutputs,
1,
result1,
result2,
_controller.outputs);
int l;
for(l = 0; l < nStates; l++){
stateMatrix[l][k] = _controller.states[l][0];
}
for(l = 0; l < nOutputs; l++){
stateMatrix[l][k] = _controller.outputs[l][0];
}
k++;
}
printf("#matrix STATES -------------------------------");
print_matrix(stateMatrix,nStates,0);
printf("#matrix OUTPUTS -------------------------------");
print_matrix(outputMatrix,nOutputs,0);
# 93 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/engine/verify_limit_cycle.h" 3 4
((void) sizeof ((
# 93 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/engine/verify_limit_cycle.h"
0
# 93 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/engine/verify_limit_cycle.h" 3 4
) ? 1 : 0), __extension__ ({ if (
# 93 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/engine/verify_limit_cycle.h"
0
# 93 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/engine/verify_limit_cycle.h" 3 4
) ; else __assert_fail (
# 93 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/engine/verify_limit_cycle.h"
"0"
# 93 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/engine/verify_limit_cycle.h" 3 4
, "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/engine/verify_limit_cycle.h", 93, __extension__ __PRETTY_FUNCTION__); }))
# 93 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/engine/verify_limit_cycle.h"
;
for(i=0; i<nStates;i++){
for(j=0; j<0;j++){
arrayLimitCycle[j] = stateMatrix[i][j];
}
double_check_persistent_limit_cycle(arrayLimitCycle,0);
}
for(i=0; i<nOutputs;i++){
for(j=0; j<0;j++){
arrayLimitCycle[j] = outputMatrix[i][j];
}
double_check_persistent_limit_cycle(arrayLimitCycle,0);
}
# 110 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/engine/verify_limit_cycle.h" 3 4
((void) sizeof ((
# 110 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/engine/verify_limit_cycle.h"
0
# 110 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/engine/verify_limit_cycle.h" 3 4
) ? 1 : 0), __extension__ ({ if (
# 110 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/engine/verify_limit_cycle.h"
0
# 110 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/engine/verify_limit_cycle.h" 3 4
) ; else __assert_fail (
# 110 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/engine/verify_limit_cycle.h"
"0"
# 110 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/engine/verify_limit_cycle.h" 3 4
, "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/engine/verify_limit_cycle.h", 110, __extension__ __PRETTY_FUNCTION__); }))
# 110 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/engine/verify_limit_cycle.h"
;
}
int verify_limit_cycle(void){
overflow_mode = 3;
int i;
int Set_xsize_at_least_two_times_Na = 2 * ds.a_size;
printf("X_SIZE must be at least 2 * ds.a_size");
__DSVERIFIER_assert(X_SIZE_VALUE >= Set_xsize_at_least_two_times_Na);
fxp_t a_fxp[ds.a_size];
fxp_t b_fxp[ds.b_size];
fxp_double_to_fxp_array(ds.a, a_fxp, ds.a_size);
fxp_double_to_fxp_array(ds.b, b_fxp, ds.b_size);
# 168 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/engine/verify_limit_cycle.h"
fxp_t y[X_SIZE_VALUE];
fxp_t x[X_SIZE_VALUE];
fxp_t min_fxp = fxp_double_to_fxp(impl.min);
fxp_t max_fxp = fxp_double_to_fxp(impl.max);
fxp_t xaux[ds.b_size];
int nondet_constant_input = nondet_int();
__DSVERIFIER_assume(nondet_constant_input >= min_fxp && nondet_constant_input <= max_fxp);
for (i = 0; i < X_SIZE_VALUE; ++i) {
x[i] = nondet_constant_input;
y[i] = 0;
}
for (i = 0; i < ds.b_size; ++i) {
xaux[i] = nondet_constant_input;
}
int Nw = 0;
Nw = ds.a_size > ds.b_size ? ds.a_size : ds.b_size;
fxp_t yaux[ds.a_size];
fxp_t y0[ds.a_size];
fxp_t waux[Nw];
fxp_t w0[Nw];
# 206 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/engine/verify_limit_cycle.h"
for (i = 0; i < Nw; ++i) {
waux[i] = nondet_int();
__DSVERIFIER_assume(waux[i] >= min_fxp && waux[i] <= max_fxp);
w0[i] = waux[i];
}
fxp_t xk, temp;
fxp_t *aptr, *bptr, *xptr, *yptr, *wptr;
int j;
for(i=0; i<X_SIZE_VALUE; ++i){
# 228 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/engine/verify_limit_cycle.h"
shiftR(0, waux, Nw);
y[i] = fxp_direct_form_2(waux, x[i], a_fxp, b_fxp, ds.a_size, ds.b_size);
# 278 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/engine/verify_limit_cycle.h"
}
fxp_check_persistent_limit_cycle(y, X_SIZE_VALUE);
return 0;
}
# 34 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/dsverifier.h" 2
# 1 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/engine/verify_error.h" 1
# 17 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/engine/verify_error.h"
extern digital_system ds;
extern implementation impl;
int verify_error(void){
overflow_mode = 2;
double a_cascade[100];
int a_cascade_size;
double b_cascade[100];
int b_cascade_size;
fxp_t a_fxp[ds.a_size];
fxp_t b_fxp[ds.b_size];
fxp_double_to_fxp_array(ds.a, a_fxp, ds.a_size);
fxp_double_to_fxp_array(ds.b, b_fxp, ds.b_size);
# 69 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/engine/verify_error.h"
fxp_t min_fxp = fxp_double_to_fxp(impl.min);
fxp_t max_fxp = fxp_double_to_fxp(impl.max);
fxp_t y[X_SIZE_VALUE];
fxp_t x[X_SIZE_VALUE];
double yf[X_SIZE_VALUE];
double xf[X_SIZE_VALUE];
int Nw = 0;
Nw = ds.a_size > ds.b_size ? ds.a_size : ds.b_size;
fxp_t yaux[ds.a_size];
fxp_t xaux[ds.b_size];
fxp_t waux[Nw];
double yfaux[ds.a_size];
double xfaux[ds.b_size];
double wfaux[Nw];
int i;
for (i = 0; i < ds.a_size; ++i) {
yaux[i] = 0;
yfaux[i] = 0;
}
for (i = 0; i < ds.b_size; ++i) {
xaux[i] = 0;
xfaux[i] = 0;
}
for (i = 0; i < Nw; ++i) {
waux[i] = 0;
wfaux[i] = 0;
}
for (i = 0; i < X_SIZE_VALUE; ++i) {
y[i] = 0;
x[i] = nondet_int();
__DSVERIFIER_assume(x[i] >= min_fxp && x[i] <= max_fxp);
yf[i] = 0.0f;
xf[i] = fxp_to_double(x[i]);
}
for (i = 0; i < X_SIZE_VALUE; ++i) {
# 139 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/engine/verify_error.h"
shiftRboth(0.0f, wfaux, 0, waux, Nw);
y[i] = fxp_direct_form_2(waux, x[i], a_fxp, b_fxp, ds.a_size, ds.b_size);
yf[i] = double_direct_form_2(wfaux, xf[i], ds.a, ds.b, ds.a_size, ds.b_size);
# 169 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/engine/verify_error.h"
double absolute_error = yf[i] - fxp_to_double(y[i]);
__DSVERIFIER_assert(absolute_error < (impl.max_error) && absolute_error > (-impl.max_error));
}
return 0;
}
# 35 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/dsverifier.h" 2
# 1 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/engine/verify_zero_input_limit_cycle.h" 1
# 13 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/engine/verify_zero_input_limit_cycle.h"
extern digital_system ds;
extern implementation impl;
int verify_zero_input_limit_cycle(void){
overflow_mode = 3;
int i,j;
int Set_xsize_at_least_two_times_Na = 2 * ds.a_size;
printf("X_SIZE must be at least 2 * ds.a_size");
# 23 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/engine/verify_zero_input_limit_cycle.h" 3 4
((void) sizeof ((
# 23 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/engine/verify_zero_input_limit_cycle.h"
X_SIZE_VALUE >= Set_xsize_at_least_two_times_Na
# 23 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/engine/verify_zero_input_limit_cycle.h" 3 4
) ? 1 : 0), __extension__ ({ if (
# 23 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/engine/verify_zero_input_limit_cycle.h"
X_SIZE_VALUE >= Set_xsize_at_least_two_times_Na
# 23 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/engine/verify_zero_input_limit_cycle.h" 3 4
) ; else __assert_fail (
# 23 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/engine/verify_zero_input_limit_cycle.h"
"X_SIZE_VALUE >= Set_xsize_at_least_two_times_Na"
# 23 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/engine/verify_zero_input_limit_cycle.h" 3 4
, "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/engine/verify_zero_input_limit_cycle.h", 23, __extension__ __PRETTY_FUNCTION__); }))
# 23 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/engine/verify_zero_input_limit_cycle.h"
;
fxp_t a_fxp[ds.a_size];
fxp_t b_fxp[ds.b_size];
fxp_double_to_fxp_array(ds.a, a_fxp, ds.a_size);
fxp_double_to_fxp_array(ds.b, b_fxp, ds.b_size);
# 71 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/engine/verify_zero_input_limit_cycle.h"
fxp_t min_fxp = fxp_double_to_fxp(impl.min);
fxp_t max_fxp = fxp_double_to_fxp(impl.max);
fxp_t y[X_SIZE_VALUE];
fxp_t x[X_SIZE_VALUE];
for (i = 0; i < X_SIZE_VALUE; ++i) {
y[i] = 0;
x[i] = 0;
}
int Nw = 0;
Nw = ds.a_size > ds.b_size ? ds.a_size : ds.b_size;
fxp_t yaux[ds.a_size];
fxp_t xaux[ds.b_size];
fxp_t waux[Nw];
fxp_t y0[ds.a_size];
fxp_t w0[Nw];
# 104 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/engine/verify_zero_input_limit_cycle.h"
for (i = 0; i < Nw; ++i) {
waux[i] = nondet_int();
__DSVERIFIER_assume(waux[i] >= min_fxp && waux[i] <= max_fxp);
w0[i] = waux[i];
}
for (i = 0; i < ds.b_size; ++i) {
xaux[i] = 0;
}
fxp_t xk, temp;
fxp_t *aptr, *bptr, *xptr, *yptr, *wptr;
for(i=0; i<X_SIZE_VALUE; ++i){
# 132 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/engine/verify_zero_input_limit_cycle.h"
shiftR(0, waux, Nw);
y[i] = fxp_direct_form_2(waux, x[i], a_fxp, b_fxp, ds.a_size, ds.b_size);
# 188 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/engine/verify_zero_input_limit_cycle.h"
}
fxp_check_persistent_limit_cycle(y, X_SIZE_VALUE);
return 0;
}
# 36 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/dsverifier.h" 2
# 1 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/engine/verify_generic_timing.h" 1
# 16 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/engine/verify_generic_timing.h"
int nondet_int();
float nondet_float();
extern digital_system ds;
extern implementation impl;
extern hardware hw;
int generic_timer = 0;
int verify_generic_timing(void) {
double y[X_SIZE_VALUE];
double x[X_SIZE_VALUE];
int i;
for (i = 0; i < X_SIZE_VALUE; ++i) {
y[i] = 0;
x[i] = nondet_float();
__DSVERIFIER_assume(x[i] >= impl.min && x[i] <= impl.max);
}
int Nw = 0;
Nw = ds.a_size > ds.b_size ? ds.a_size : ds.b_size;
double yaux[ds.a_size];
double xaux[ds.b_size];
double waux[Nw];
for (i = 0; i < ds.a_size; ++i) {
yaux[i] = 0;
}
for (i = 0; i < ds.b_size; ++i) {
xaux[i] = 0;
}
for (i = 0; i < Nw; ++i) {
waux[i] = 0;
}
double xk, temp;
double *aptr, *bptr, *xptr, *yptr, *wptr;
int j;
generic_timer += ((2 * hw.assembly.std) + (1 * hw.assembly.rjmp));
double initial_timer = generic_timer;
for (i = 0; i < X_SIZE_VALUE; ++i) {
generic_timer += ((2 * hw.assembly.ldd) + (1 * hw.assembly.adiw) + (2 * hw.assembly.std));
generic_timer += ((2 * hw.assembly.ldd) + (1 * hw.assembly.cpi) + (1 * hw.assembly.cpc) + (1 * hw.assembly.brlt));
# 79 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/engine/verify_generic_timing.h"
generic_timing_shift_r_double(0, waux, Nw);
y[i] = generic_timing_double_direct_form_2(waux, x[i], ds.a, ds.b, ds.a_size, ds.b_size);
double spent_time = (((double) generic_timer) * hw.cycle);
# 89 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/engine/verify_generic_timing.h" 3 4
((void) sizeof ((
# 89 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/engine/verify_generic_timing.h"
spent_time <= ds.sample_time
# 89 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/engine/verify_generic_timing.h" 3 4
) ? 1 : 0), __extension__ ({ if (
# 89 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/engine/verify_generic_timing.h"
spent_time <= ds.sample_time
# 89 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/engine/verify_generic_timing.h" 3 4
) ; else __assert_fail (
# 89 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/engine/verify_generic_timing.h"
"spent_time <= ds.sample_time"
# 89 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/engine/verify_generic_timing.h" 3 4
, "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/engine/verify_generic_timing.h", 89, __extension__ __PRETTY_FUNCTION__); }))
# 89 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/engine/verify_generic_timing.h"
;
generic_timer = initial_timer;
}
return 0;
}
# 37 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/dsverifier.h" 2
# 1 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/engine/verify_timing_msp430.h" 1
# 16 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/engine/verify_timing_msp430.h"
int nondet_int();
float nondet_float();
extern digital_system ds;
extern implementation impl;
int verify_timing_msp_430(void) {
double y[X_SIZE_VALUE];
double x[X_SIZE_VALUE];
int i;
for (i = 0; i < X_SIZE_VALUE; ++i) {
y[i] = 0;
x[i] = nondet_float();
__DSVERIFIER_assume(x[i] >= impl.min && x[i] <= impl.max);
}
int Nw = 0;
Nw = ds.a_size > ds.b_size ? ds.a_size : ds.b_size;
double yaux[ds.a_size];
double xaux[ds.b_size];
double waux[Nw];
for (i = 0; i < ds.a_size; ++i) {
yaux[i] = 0;
}
for (i = 0; i < ds.b_size; ++i) {
xaux[i] = 0;
}
for (i = 0; i < Nw; ++i) {
waux[i] = 0;
}
double xk, temp;
double *aptr, *bptr, *xptr, *yptr, *wptr;
int j;
for (i = 0; i < X_SIZE_VALUE; ++i) {
# 69 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/engine/verify_timing_msp430.h"
shiftR(0, waux, Nw);
y[i] = double_direct_form_2_MSP430(waux, x[i], ds.a, ds.b, ds.a_size, ds.b_size);
# 121 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/engine/verify_timing_msp430.h"
}
return 0;
}
# 38 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/dsverifier.h" 2
# 1 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/engine/verify_stability.h" 1
# 21 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/engine/verify_stability.h"
extern digital_system ds;
extern implementation impl;
int verify_stability(void){
overflow_mode = 0;
fxp_t a_fxp[ds.a_size];
fxp_double_to_fxp_array(ds.a, a_fxp, ds.a_size);
double _a[ds.a_size];
fxp_to_double_array(_a, a_fxp, ds.a_size);
# 37 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/engine/verify_stability.h" 3 4
((void) sizeof ((
# 37 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/engine/verify_stability.h"
check_stability(_a, ds.a_size)
# 37 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/engine/verify_stability.h" 3 4
) ? 1 : 0), __extension__ ({ if (
# 37 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/engine/verify_stability.h"
check_stability(_a, ds.a_size)
# 37 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/engine/verify_stability.h" 3 4
) ; else __assert_fail (
# 37 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/engine/verify_stability.h"
"check_stability(_a, ds.a_size)"
# 37 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/engine/verify_stability.h" 3 4
, "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/engine/verify_stability.h", 37, __extension__ __PRETTY_FUNCTION__); }))
# 37 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/engine/verify_stability.h"
;
# 83 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/engine/verify_stability.h"
return 0;
}
# 39 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/dsverifier.h" 2
# 1 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/engine/verify_minimum_phase.h" 1
# 21 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/engine/verify_minimum_phase.h"
extern digital_system ds;
extern implementation impl;
int verify_minimum_phase(void){
overflow_mode = 0;
fxp_t b_fxp[ds.b_size];
fxp_double_to_fxp_array(ds.b, b_fxp, ds.b_size);
double _b[ds.b_size];
fxp_to_double_array(_b, b_fxp, ds.b_size);
__DSVERIFIER_assert(check_stability(_b, ds.b_size));
# 85 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/engine/verify_minimum_phase.h"
return 0;
}
# 40 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/dsverifier.h" 2
# 1 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/engine/verify_stability_closedloop.h" 1
# 17 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/engine/verify_stability_closedloop.h"
extern digital_system plant;
extern digital_system plant_cbmc;
extern digital_system controller;
int verify_stability_closedloop_using_dslib(void){
double * c_num = controller.b;
int c_num_size = controller.b_size;
double * c_den = controller.a;
int c_den_size = controller.a_size;
fxp_t c_num_fxp[controller.b_size];
fxp_double_to_fxp_array(c_num, c_num_fxp, controller.b_size);
fxp_t c_den_fxp[controller.a_size];
fxp_double_to_fxp_array(c_den, c_den_fxp, controller.a_size);
double c_num_qtz[controller.b_size];
fxp_to_double_array(c_num_qtz, c_num_fxp, controller.b_size);
double c_den_qtz[controller.a_size];
fxp_to_double_array(c_den_qtz, c_den_fxp, controller.a_size);
double * p_num = plant.b;
int p_num_size = plant.b_size;
double * p_den = plant.a;
int p_den_size = plant.a_size;
double ans_num[100];
int ans_num_size = controller.b_size + plant.b_size - 1;
double ans_den[100];
int ans_den_size = controller.a_size + plant.a_size - 1;
# 68 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/engine/verify_stability_closedloop.h"
printf("Verifying stability for closedloop function\n");
__DSVERIFIER_assert(check_stability_closedloop(ans_den, ans_den_size, p_num, p_num_size, p_den, p_den_size));
return 0;
}
# 41 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/dsverifier.h" 2
# 1 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/engine/verify_limit_cycle_closedloop.h" 1
# 23 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/engine/verify_limit_cycle_closedloop.h"
extern digital_system plant;
extern digital_system plant_cbmc;
extern digital_system controller;
double nondet_double();
int verify_limit_cycle_closed_loop(void){
overflow_mode = 3;
double * c_num = controller.b;
int c_num_size = controller.b_size;
double * c_den = controller.a;
int c_den_size = controller.a_size;
fxp_t c_num_fxp[controller.b_size];
fxp_double_to_fxp_array(c_num, c_num_fxp, controller.b_size);
fxp_t c_den_fxp[controller.a_size];
fxp_double_to_fxp_array(c_den, c_den_fxp, controller.a_size);
double c_num_qtz[controller.b_size];
fxp_to_double_array(c_num_qtz, c_num_fxp, controller.b_size);
double c_den_qtz[controller.a_size];
fxp_to_double_array(c_den_qtz, c_den_fxp, controller.a_size);
double * p_num = plant.b;
int p_num_size = plant.b_size;
double * p_den = plant.a;
int p_den_size = plant.a_size;
double ans_num[100];
int ans_num_size = controller.b_size + plant.b_size - 1;
double ans_den[100];
int ans_den_size = controller.a_size + plant.a_size - 1;
int i;
double y[X_SIZE_VALUE];
double x[X_SIZE_VALUE];
double xaux[ans_num_size];
double nondet_constant_input = nondet_double();
__DSVERIFIER_assume(nondet_constant_input >= impl.min && nondet_constant_input <= impl.max);
for (i = 0; i < X_SIZE_VALUE; ++i) {
x[i] = nondet_constant_input;
y[i] = 0;
}
for (i = 0; i < ans_num_size; ++i) {
xaux[i] = nondet_constant_input;
}
double yaux[ans_den_size];
double y0[ans_den_size];
int Nw = ans_den_size > ans_num_size ? ans_den_size : ans_num_size;
double waux[Nw];
double w0[Nw];
# 105 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/engine/verify_limit_cycle_closedloop.h"
for (i = 0; i < Nw; ++i) {
waux[i] = nondet_int();
__DSVERIFIER_assume(waux[i] >= impl.min && waux[i] <= impl.max);
w0[i] = waux[i];
}
double xk, temp;
double *aptr, *bptr, *xptr, *yptr, *wptr;
int j;
for(i=0; i<X_SIZE_VALUE; ++i){
# 128 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/engine/verify_limit_cycle_closedloop.h"
shiftRDdouble(0, waux, Nw);
y[i] = double_direct_form_2(waux, x[i], ans_den, ans_num, ans_den_size, ans_num_size);
}
double_check_persistent_limit_cycle(y, X_SIZE_VALUE);
return 0;
}
# 42 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/dsverifier.h" 2
# 1 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/engine/verify_error_closedloop.h" 1
# 23 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/engine/verify_error_closedloop.h"
extern digital_system plant;
extern digital_system plant_cbmc;
extern digital_system controller;
int verify_error_closedloop(void){
overflow_mode = 3;
double * c_num = controller.b;
int c_num_size = controller.b_size;
double * c_den = controller.a;
int c_den_size = controller.a_size;
fxp_t c_num_fxp[controller.b_size];
fxp_double_to_fxp_array(c_num, c_num_fxp, controller.b_size);
fxp_t c_den_fxp[controller.a_size];
fxp_double_to_fxp_array(c_den, c_den_fxp, controller.a_size);
double c_num_qtz[controller.b_size];
fxp_to_double_array(c_num_qtz, c_num_fxp, controller.b_size);
double c_den_qtz[controller.a_size];
fxp_to_double_array(c_den_qtz, c_den_fxp, controller.a_size);
double * p_num = plant.b;
int p_num_size = plant.b_size;
double * p_den = plant.a;
int p_den_size = plant.a_size;
double ans_num_double[100];
double ans_num_qtz[100];
int ans_num_size = controller.b_size + plant.b_size - 1;
double ans_den_qtz[100];
double ans_den_double[100];
int ans_den_size = controller.a_size + plant.a_size - 1;
# 77 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/engine/verify_error_closedloop.h"
int i;
double y_qtz[X_SIZE_VALUE];
double y_double[X_SIZE_VALUE];
double x_qtz[X_SIZE_VALUE];
double x_double[X_SIZE_VALUE];
double xaux_qtz[ans_num_size];
double xaux_double[ans_num_size];
double xaux[ans_num_size];
double nondet_constant_input = nondet_double();
__DSVERIFIER_assume(nondet_constant_input >= impl.min && nondet_constant_input <= impl.max);
for (i = 0; i < X_SIZE_VALUE; ++i) {
x_qtz[i] = nondet_constant_input;
x_double[i] = nondet_constant_input;
y_qtz[i] = 0;
y_double[i] = 0;
}
for (i = 0; i < ans_num_size; ++i) {
xaux_qtz[i] = nondet_constant_input;
xaux_double[i] = nondet_constant_input;
}
double yaux_qtz[ans_den_size];
double yaux_double[ans_den_size];
double y0_qtz[ans_den_size];
double y0_double[ans_den_size];
int Nw = ans_den_size > ans_num_size ? ans_den_size : ans_num_size;
double waux_qtz[Nw];
double waux_double[Nw];
double w0_qtz[Nw];
double w0_double[Nw];
for (i = 0; i < Nw; ++i) {
waux_qtz[i] = 0;
waux_double[i] = 0;
}
for(i=0; i<X_SIZE_VALUE; ++i){
# 140 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/engine/verify_error_closedloop.h"
shiftRDdouble(0, waux_qtz, Nw);
y_qtz[i] = double_direct_form_2(waux_qtz, x_qtz[i], ans_den_qtz, ans_num_qtz, ans_den_size, ans_num_size);
shiftRDdouble(0, waux_double, Nw);
y_double[i] = double_direct_form_2(waux_double, x_double[i], ans_den_double, ans_num_double, ans_den_size, ans_num_size);
# 156 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/engine/verify_error_closedloop.h"
double absolute_error = y_double[i] - fxp_to_double(y_qtz[i]);
__DSVERIFIER_assert(absolute_error < (impl.max_error) && absolute_error > (-impl.max_error));
}
return 0;
}
# 43 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/dsverifier.h" 2
# 1 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/engine/verify_error_state_space.h" 1
# 20 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/engine/verify_error_state_space.h"
extern digital_system_state_space _controller;
extern double error_limit;
extern int closed_loop;
double new_state[4][4];
double new_stateFWL[4][4];
digital_system_state_space _controller_fxp;
digital_system_state_space _controller_double;
double ss_system_quantization_error(fxp_t inputs){
digital_system_state_space __backupController;
int i;
int j;
_controller.inputs[0][0] = inputs;
for(i=0; i<nStates;i++){
for(j=0; j<nStates;j++){
__backupController.A[i][j]= (_controller.A[i][j]);
}
}
for(i=0; i<nStates;i++){
for(j=0; j<nInputs;j++){
__backupController.B[i][j]= (_controller.B[i][j]);
}
}
for(i=0; i<nOutputs;i++){
for(j=0; j<nStates;j++){
__backupController.C[i][j]= (_controller.C[i][j]);
}
}
for(i=0; i<nOutputs;i++){
for(j=0; j<nInputs;j++){
__backupController.D[i][j]= (_controller.D[i][j]);
}
}
for(i=0; i<nStates;i++){
for(j=0; j<1;j++){
__backupController.states[i][j]= (_controller.states[i][j]);
}
}
for(i=0; i<nInputs;i++){
for(j=0; j<1;j++){
__backupController.inputs[i][j]= (_controller.inputs[i][j]);
}
}
for(i=0; i<nOutputs;i++){
for(j=0; j<1;j++){
__backupController.outputs[i][j]= (_controller.outputs[i][j]);
}
}
double __quant_error = 0.0;
for(i=0; i<nStates;i++){
for(j=0; j<1;j++){
_controller.states[i][j]= (new_state[i][j]);
}
}
double output_double = double_state_space_representation();
for(i=0; i<nStates;i++){
for(j=0; j<1;j++){
new_state[i][j]= (_controller.states[i][j]);
}
}
__backupController.inputs[0][0] = inputs;
for(i=0; i<nStates;i++){
for(j=0; j<nStates;j++){
_controller.A[i][j] = __backupController.A[i][j];
}
}
for(i=0; i<nStates;i++){
for(j=0; j<nInputs;j++){
_controller.B[i][j] = __backupController.B[i][j];
}
}
for(i=0; i<nOutputs;i++){
for(j=0; j<nStates;j++){
_controller.C[i][j] = __backupController.C[i][j];
}
}
for(i=0; i<nOutputs;i++){
for(j=0; j<nInputs;j++){
_controller.D[i][j] = __backupController.D[i][j];
}
}
for(i=0; i<nStates;i++){
for(j=0; j<1;j++){
_controller.states[i][j] = __backupController.states[i][j];
}
}
for(i=0; i<nInputs;i++){
for(j=0; j<1;j++){
_controller.inputs[i][j] = __backupController.inputs[i][j];
}
}
for(i=0; i<nOutputs;i++){
for(j=0; j<1;j++){
_controller.outputs[i][j] = __backupController.outputs[i][j];
}
}
for(i=0; i<nStates;i++){
for(j=0; j<1;j++){
_controller.states[i][j]= (new_stateFWL[i][j]);
}
}
double output_fxp = fxp_state_space_representation();
for(i=0; i<nStates;i++){
for(j=0; j<1;j++){
new_stateFWL[i][j]= (_controller.states[i][j]);
}
}
__quant_error = output_double - output_fxp;
return __quant_error;
}
double fxp_ss_closed_loop_quantization_error(double reference){
double reference_aux[4][4];
double result1[4][4];
double temp_result1[4][4];
double result2[4][4];
double temp_states[4][4];
fxp_t K_fxp[4][4];
fxp_t states_fxp[4][4];
fxp_t result_fxp[4][4];
unsigned int i;
unsigned int j;
unsigned int k;
short unsigned int flag = 0;
for(i=0; i<nOutputs;i++){
for(j=0; j<nInputs;j++){
if(_controller_fxp.D[i][j] != 0){
flag = 1;
}
}
}
for(i=0; i<4;i++){
for(j=0; j<4;j++){
reference_aux[i][j]=0;
K_fxp[i][j] = 0;
}
}
for(i=0; i<nInputs;i++){
reference_aux[i][0]= reference;
}
for(i=0; i<4;i++){
states_fxp[i][0]=0;
}
for(i=0; i<nStates;i++){
K_fxp[0][i]= fxp_double_to_fxp(_controller_fxp.K[0][i]);
}
for(i=0; i<4;i++){
for(j=0; j<4;j++){
result1[i][j]=0;
result2[i][j]=0;
}
}
for(k=0; k<nStates;k++)
{
states_fxp[k][0]= fxp_double_to_fxp(_controller_fxp.states[k][0]);
}
fxp_matrix_multiplication(nOutputs,nStates,nStates,1,K_fxp,states_fxp,result_fxp);
fxp_t reference_fxp[4][4];
fxp_t result_fxp2[4][4];
for(k=0;k<nInputs;k++)
{
reference_fxp[k][0] =fxp_double_to_fxp(fxp_quantize(reference_aux[k][0]));
}
fxp_sub_matrix(nInputs,1, reference_fxp, result_fxp, result_fxp2);
for(k=0; k<nInputs;k++)
{
_controller_fxp.inputs[k][0] = fxp_to_double(fxp_quantize(result_fxp2[k][0]));
}
double_matrix_multiplication(nOutputs,nStates,nStates,1,_controller_fxp.C,_controller_fxp.states,result1);
if(flag == 1)
{
double_matrix_multiplication(nOutputs,nInputs,nInputs,1,_controller_fxp.D,_controller_fxp.inputs,result2);
}
double_add_matrix(nOutputs,1,result1,result2,_controller_fxp.outputs);
double_matrix_multiplication(nStates,nStates,nStates,1,_controller_fxp.A,_controller_fxp.states,result1);
double_matrix_multiplication(nStates,nInputs,nInputs,1,_controller_fxp.B,_controller_fxp.inputs,result2);
double_add_matrix(nStates,1,result1,result2,_controller_fxp.states);
return _controller_fxp.outputs[0][0];
}
double ss_closed_loop_quantization_error(double reference){
double reference_aux[4][4];
double result1[4][4];
double result2[4][4];
unsigned int i;
unsigned int j;
short unsigned int flag = 0;
for(i=0; i<nOutputs;i++){
for(j=0; j<nInputs;j++){
if(_controller_double.D[i][j] != 0){
flag = 1;
}
}
}
for(i=0; i<nInputs;i++){
for(j=0; j<1;j++){
reference_aux[i][j]= reference;
}
}
for(i=0; i<4;i++){
for(j=0; j<4;j++){
result1[i][j]=0;
result2[i][j]=0;
}
}
double_matrix_multiplication(nOutputs,nStates,nStates,1,_controller_double.K,_controller_double.states,result1);
double_sub_matrix(nInputs,1,reference_aux,result1, _controller_double.inputs);
double_matrix_multiplication(nOutputs,nStates,nStates,1,_controller_double.C,_controller_double.states,result1);
if(flag == 1)
double_matrix_multiplication(nOutputs,nInputs,nInputs,1,_controller_double.D,_controller_double.inputs,result2);
double_add_matrix(nOutputs,1,result1,result2,_controller_double.outputs);
double_matrix_multiplication(nStates,nStates,nStates,1,_controller_double.A,_controller_double.states,result1);
double_matrix_multiplication(nStates,nInputs,nInputs,1,_controller_double.B,_controller_double.inputs,result2);
double_add_matrix(nStates,1,result1,result2,_controller_double.states);
return _controller_double.outputs[0][0];
}
int verify_error_state_space(void){
int i,j;
for(i=0; i<nStates;i++){
for(j=0; j<1;j++){
new_state[i][j]= (_controller.states[i][j]);
}
}
for(i=0; i<nStates;i++){
for(j=0; j<1;j++){
new_stateFWL[i][j]= (_controller.states[i][j]);
}
}
_controller_fxp = _controller;
_controller_double = _controller;
overflow_mode = 0;
fxp_t x[0];
fxp_t min_fxp = fxp_double_to_fxp(impl.min);
fxp_t max_fxp = fxp_double_to_fxp(impl.max);
double nondet_constant_input = nondet_double();
__DSVERIFIER_assume(nondet_constant_input >= min_fxp && nondet_constant_input <= max_fxp);
for (i = 0; i < 0; ++i) {
x[i] = nondet_constant_input;
}
double __quant_error;
if(closed_loop){
for (i = 0; i < 0; ++i) {
__quant_error = ss_closed_loop_quantization_error(x[i]) - fxp_ss_closed_loop_quantization_error(x[i]);
# 354 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/engine/verify_error_state_space.h" 3 4
((void) sizeof ((
# 354 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/engine/verify_error_state_space.h"
__quant_error < error_limit && __quant_error > ((-1)*error_limit)
# 354 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/engine/verify_error_state_space.h" 3 4
) ? 1 : 0), __extension__ ({ if (
# 354 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/engine/verify_error_state_space.h"
__quant_error < error_limit && __quant_error > ((-1)*error_limit)
# 354 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/engine/verify_error_state_space.h" 3 4
) ; else __assert_fail (
# 354 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/engine/verify_error_state_space.h"
"__quant_error < error_limit && __quant_error > ((-1)*error_limit)"
# 354 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/engine/verify_error_state_space.h" 3 4
, "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/engine/verify_error_state_space.h", 354, __extension__ __PRETTY_FUNCTION__); }))
# 354 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/engine/verify_error_state_space.h"
;
}
}
else {
for (i=0; i < 0; i++)
{
__quant_error = ss_system_quantization_error(x[i]);
# 361 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/engine/verify_error_state_space.h" 3 4
((void) sizeof ((
# 361 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/engine/verify_error_state_space.h"
__quant_error < error_limit && __quant_error > ((-1)*error_limit)
# 361 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/engine/verify_error_state_space.h" 3 4
) ? 1 : 0), __extension__ ({ if (
# 361 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/engine/verify_error_state_space.h"
__quant_error < error_limit && __quant_error > ((-1)*error_limit)
# 361 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/engine/verify_error_state_space.h" 3 4
) ; else __assert_fail (
# 361 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/engine/verify_error_state_space.h"
"__quant_error < error_limit && __quant_error > ((-1)*error_limit)"
# 361 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/engine/verify_error_state_space.h" 3 4
, "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/engine/verify_error_state_space.h", 361, __extension__ __PRETTY_FUNCTION__); }))
# 361 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/engine/verify_error_state_space.h"
;
}
}
return 0;
}
# 44 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/dsverifier.h" 2
# 1 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/engine/verify_safety_state_space.h" 1
# 17 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/engine/verify_safety_state_space.h"
extern digital_system_state_space _controller;
extern double error_limit;
extern int closed_loop;
double fxp_ss_closed_loop_safety(){
double reference[4][4];
double result1[4][4];
double result2[4][4];
fxp_t K_fpx[4][4];
fxp_t outputs_fpx[4][4];
fxp_t result_fxp[4][4];
unsigned int i;
unsigned int j;
unsigned int k;
short unsigned int flag = 0;
for(i=0; i<nOutputs;i++){
for(j=0; j<nInputs;j++){
if(_controller.D[i][j] != 0){
flag = 1;
}
}
}
for(i=0; i<nInputs;i++){
for(j=0; j<1;j++){
reference[i][j]= (_controller.inputs[i][j]);
}
}
for(i=0; i<nInputs;i++){
for(j=0; j<nOutputs;j++){
K_fpx[i][j]=0;
}
}
for(i=0; i<nOutputs;i++){
for(j=0; j<1;j++){
outputs_fpx[i][j]=0;
}
}
for(i=0; i<4;i++){
for(j=0; j<4;j++){
result_fxp[i][j]=0;
}
}
for(i=0; i<nInputs;i++){
for(j=0; j<nOutputs;j++){
K_fpx[i][j]= fxp_double_to_fxp(_controller.K[i][j]);
}
}
for(i=0; i<4;i++){
for(j=0; j<4;j++){
result1[i][j]=0;
result2[i][j]=0;
}
}
for (i = 1; i < 0; i++) {
double_matrix_multiplication(nOutputs,nStates,nStates,1,_controller.C,_controller.states,result1);
if(flag == 1){
double_matrix_multiplication(nOutputs,nInputs,nInputs,1,_controller.D,_controller.inputs,result2);
}
double_add_matrix(nOutputs,
1,
result1,
result2,
_controller.outputs);
for(k=0; k<nOutputs;k++){
for(j=0; j<1;j++){
outputs_fpx[k][j]= fxp_double_to_fxp(_controller.outputs[k][j]);
}
}
fxp_matrix_multiplication(nInputs,nOutputs,nOutputs,1,K_fpx,outputs_fpx,result_fxp);
for(k=0; k<nInputs;k++){
for(j=0; j<1;j++){
result1[k][j]= fxp_to_double(result_fxp[k][j]);
}
}
printf("### fxp: U (before) = %.9f", _controller.inputs[0][0]);
printf("### fxp: reference = %.9f", reference[0][0]);
printf("### fxp: result1 = %.9f", result1[0][0]);
printf("### fxp: reference - result1 = %.9f", (reference[0][0] - result1[0][0]));
double_sub_matrix(nInputs,
1,
reference,
result1,
_controller.inputs);
printf("### fxp: Y = %.9f", _controller.outputs[0][0]);
printf("### fxp: U (after) = %.9f \n### \n### ", _controller.inputs[0][0]);
double_matrix_multiplication(nStates,nStates,nStates,1,_controller.A,_controller.states,result1);
double_matrix_multiplication(nStates,nInputs,nInputs,1,_controller.B,_controller.inputs,result2);
double_add_matrix(nStates,
1,
result1,
result2,
_controller.states);
}
return _controller.outputs[0][0];
}
int verify_safety_state_space(void){
fxp_t output_fxp = fxp_ss_closed_loop_safety();
double output_double = fxp_to_double(output_fxp);
# 140 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/engine/verify_safety_state_space.h" 3 4
((void) sizeof ((
# 140 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/engine/verify_safety_state_space.h"
output_double <= error_limit
# 140 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/engine/verify_safety_state_space.h" 3 4
) ? 1 : 0), __extension__ ({ if (
# 140 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/engine/verify_safety_state_space.h"
output_double <= error_limit
# 140 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/engine/verify_safety_state_space.h" 3 4
) ; else __assert_fail (
# 140 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/engine/verify_safety_state_space.h"
"output_double <= error_limit"
# 140 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/engine/verify_safety_state_space.h" 3 4
, "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/engine/verify_safety_state_space.h", 140, __extension__ __PRETTY_FUNCTION__); }))
# 140 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/engine/verify_safety_state_space.h"
;
return 0;
}
# 45 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/dsverifier.h" 2
# 1 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/engine/verify_controllability.h" 1
# 14 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/engine/verify_controllability.h"
extern digital_system_state_space _controller;
int verify_controllability(void){
int i;
int j;
fxp_t A_fpx[4][4];
fxp_t B_fpx[4][4];
fxp_t controllabilityMatrix[4][4];
fxp_t backup[4][4];
fxp_t backupSecond[4][4];
double controllabilityMatrix_double[4][4];
for(i=0; i<nStates;i++){
for(j=0; j<(nStates*nInputs);j++){
A_fpx[i][j] = 0.0;
B_fpx[i][j] = 0.0;
controllabilityMatrix[i][j] = 0.0;
backup[i][j] = 0.0;
backupSecond[i][j] = 0.0;
controllabilityMatrix_double[i][j] = 0.0;
}
}
for(i=0; i<nStates;i++){
for(j=0; j<nStates;j++){
A_fpx[i][j]= fxp_double_to_fxp(_controller.A[i][j]);
}
}
for(i=0; i<nStates;i++){
for(j=0; j<nInputs;j++){
B_fpx[i][j]= fxp_double_to_fxp(_controller.B[i][j]);
}
}
if(nInputs > 1){
int l = 0;
for(j=0; j<(nStates*nInputs);){
fxp_exp_matrix(nStates,nStates,A_fpx,l,backup);
l++;
fxp_matrix_multiplication(nStates,nStates,nStates,nInputs,backup,B_fpx,backupSecond);
for(int k = 0; k < nInputs; k++){
for(i = 0; i<nStates;i++){
controllabilityMatrix[i][j]= backupSecond[i][k];
}
j++;
}
}
for(i=0; i<nStates;i++){
for(j=0; j<(nStates*nInputs);j++){
backup[i][j]= 0.0;
}
}
fxp_transpose(controllabilityMatrix,backup,nStates,(nStates*nInputs));
fxp_t mimo_controllabilityMatrix_fxp[4][4];
fxp_matrix_multiplication(nStates,(nStates*nInputs),(nStates*nInputs),nStates,controllabilityMatrix,backup,mimo_controllabilityMatrix_fxp);
for(i=0; i<nStates;i++){
for(j=0; j<nStates;j++){
controllabilityMatrix_double[i][j]= fxp_to_double(mimo_controllabilityMatrix_fxp[i][j]);
}
}
# 91 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/engine/verify_controllability.h" 3 4
((void) sizeof ((
# 91 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/engine/verify_controllability.h"
determinant(controllabilityMatrix_double,nStates) != 0
# 91 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/engine/verify_controllability.h" 3 4
) ? 1 : 0), __extension__ ({ if (
# 91 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/engine/verify_controllability.h"
determinant(controllabilityMatrix_double,nStates) != 0
# 91 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/engine/verify_controllability.h" 3 4
) ; else __assert_fail (
# 91 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/engine/verify_controllability.h"
"determinant(controllabilityMatrix_double,nStates) != 0"
# 91 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/engine/verify_controllability.h" 3 4
, "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/engine/verify_controllability.h", 91, __extension__ __PRETTY_FUNCTION__); }))
# 91 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/engine/verify_controllability.h"
;
} else {
for(j=0; j<nStates;j++){
fxp_exp_matrix(nStates,nStates,A_fpx,j,backup);
fxp_matrix_multiplication(nStates,nStates,nStates,nInputs,backup,B_fpx,backupSecond);
for(i = 0; i<nStates;i++){
controllabilityMatrix[i][j]= backupSecond[i][0];
}
}
for(i=0; i<nStates;i++){
for(j=0; j<nStates;j++){
controllabilityMatrix_double[i][j]= fxp_to_double(controllabilityMatrix[i][j]);
}
}
# 113 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/engine/verify_controllability.h" 3 4
((void) sizeof ((
# 113 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/engine/verify_controllability.h"
determinant(controllabilityMatrix_double,nStates) != 0
# 113 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/engine/verify_controllability.h" 3 4
) ? 1 : 0), __extension__ ({ if (
# 113 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/engine/verify_controllability.h"
determinant(controllabilityMatrix_double,nStates) != 0
# 113 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/engine/verify_controllability.h" 3 4
) ; else __assert_fail (
# 113 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/engine/verify_controllability.h"
"determinant(controllabilityMatrix_double,nStates) != 0"
# 113 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/engine/verify_controllability.h" 3 4
, "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/engine/verify_controllability.h", 113, __extension__ __PRETTY_FUNCTION__); }))
# 113 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/engine/verify_controllability.h"
;
}
return 0;
}
int verify_controllability_double(void){
int i;
int j;
double controllabilityMatrix[4][4];
double backup[4][4];
double backupSecond[4][4];
double controllabilityMatrix_double[4][4];
if(nInputs > 1){
int l = 0;
for(j=0; j<(nStates*nInputs);){
double_exp_matrix(nStates,nStates,_controller.A,l,backup);
l++;
double_matrix_multiplication(nStates,nStates,nStates,nInputs,backup,_controller.B,backupSecond);
for(int k = 0; k < nInputs; k++){
for(i = 0; i<nStates;i++){
controllabilityMatrix[i][j]= backupSecond[i][k];
}
j++;
}
}
for(i=0; i<nStates;i++){
for(j=0; j<(nStates*nInputs);j++){
backup[i][j]= 0.0;
}
}
transpose(controllabilityMatrix,backup,nStates,(nStates*nInputs));
double mimo_controllabilityMatrix_double[4][4];
double_matrix_multiplication(nStates,(nStates*nInputs),(nStates*nInputs),nStates,controllabilityMatrix,backup,mimo_controllabilityMatrix_double);
# 154 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/engine/verify_controllability.h" 3 4
((void) sizeof ((
# 154 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/engine/verify_controllability.h"
determinant(mimo_controllabilityMatrix_double,nStates) != 0
# 154 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/engine/verify_controllability.h" 3 4
) ? 1 : 0), __extension__ ({ if (
# 154 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/engine/verify_controllability.h"
determinant(mimo_controllabilityMatrix_double,nStates) != 0
# 154 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/engine/verify_controllability.h" 3 4
) ; else __assert_fail (
# 154 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/engine/verify_controllability.h"
"determinant(mimo_controllabilityMatrix_double,nStates) != 0"
# 154 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/engine/verify_controllability.h" 3 4
, "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/engine/verify_controllability.h", 154, __extension__ __PRETTY_FUNCTION__); }))
# 154 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/engine/verify_controllability.h"
;
} else {
for(j=0; j<nStates;j++){
double_exp_matrix(nStates,nStates,_controller.A,j,backup);
double_matrix_multiplication(nStates,nStates,nStates,nInputs,backup,_controller.B,backupSecond);
for(i = 0; i<nStates;i++){
controllabilityMatrix[i][j]= backupSecond[i][0];
}
}
# 163 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/engine/verify_controllability.h" 3 4
((void) sizeof ((
# 163 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/engine/verify_controllability.h"
determinant(controllabilityMatrix,nStates) != 0
# 163 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/engine/verify_controllability.h" 3 4
) ? 1 : 0), __extension__ ({ if (
# 163 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/engine/verify_controllability.h"
determinant(controllabilityMatrix,nStates) != 0
# 163 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/engine/verify_controllability.h" 3 4
) ; else __assert_fail (
# 163 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/engine/verify_controllability.h"
"determinant(controllabilityMatrix,nStates) != 0"
# 163 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/engine/verify_controllability.h" 3 4
, "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/engine/verify_controllability.h", 163, __extension__ __PRETTY_FUNCTION__); }))
# 163 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/engine/verify_controllability.h"
;
}
return 0;
}
# 46 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/dsverifier.h" 2
# 1 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/engine/verify_observability.h" 1
# 17 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/engine/verify_observability.h"
extern digital_system_state_space _controller;
int verify_observability(void){
int i;
int j;
fxp_t A_fpx[4][4];
fxp_t C_fpx[4][4];
fxp_t observabilityMatrix[4][4];
fxp_t backup[4][4];
fxp_t backupSecond[4][4];
double observabilityMatrix_double[4][4];
for(i=0; i<nStates;i++){
for(j=0; j<nStates;j++){
observabilityMatrix[i][j]= 0;
A_fpx[i][j]=0;
C_fpx[i][j]= 0;
backup[i][j]= 0;
backupSecond[i][j]= 0;
}
}
for(i=0; i<nStates;i++){
for(j=0; j<nStates;j++){
A_fpx[i][j]= fxp_double_to_fxp(_controller.A[i][j]);
}
}
for(i=0; i<nOutputs;i++){
for(j=0; j<nStates;j++){
C_fpx[i][j]= fxp_double_to_fxp(_controller.C[i][j]);
}
}
if(nOutputs > 1){
int l;
j = 0;
for(l=0; l<nStates;){
fxp_exp_matrix(nStates,nStates,A_fpx,l,backup);
l++;
fxp_matrix_multiplication(nOutputs,nStates,nStates,nStates,C_fpx,backup,backupSecond);
for(int k = 0; k < nOutputs; k++){
for(i = 0; i<nStates;i++){
observabilityMatrix[j][i]= backupSecond[k][i];
}
j++;
}
}
# 80 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/engine/verify_observability.h"
for(i=0; i<nStates;i++){
for(j=0; j<(nStates*nOutputs);j++){
backup[i][j]= 0.0;
}
}
fxp_transpose(observabilityMatrix,backup,(nStates*nOutputs),nStates);
# 99 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/engine/verify_observability.h"
fxp_t mimo_observabilityMatrix_fxp[4][4];
fxp_matrix_multiplication(nStates,(nStates*nOutputs),(nStates*nOutputs),nStates,backup,observabilityMatrix,mimo_observabilityMatrix_fxp);
# 112 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/engine/verify_observability.h"
for(i=0; i<nStates;i++){
for(j=0; j<nStates;j++){
observabilityMatrix_double[i][j]= fxp_to_double(mimo_observabilityMatrix_fxp[i][j]);
}
}
# 119 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/engine/verify_observability.h" 3 4
((void) sizeof ((
# 119 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/engine/verify_observability.h"
determinant(observabilityMatrix_double,nStates) != 0
# 119 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/engine/verify_observability.h" 3 4
) ? 1 : 0), __extension__ ({ if (
# 119 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/engine/verify_observability.h"
determinant(observabilityMatrix_double,nStates) != 0
# 119 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/engine/verify_observability.h" 3 4
) ; else __assert_fail (
# 119 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/engine/verify_observability.h"
"determinant(observabilityMatrix_double,nStates) != 0"
# 119 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/engine/verify_observability.h" 3 4
, "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/engine/verify_observability.h", 119, __extension__ __PRETTY_FUNCTION__); }))
# 119 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/engine/verify_observability.h"
;
}else{
for(i=0; i<nStates;i++){
fxp_exp_matrix(nStates,nStates,A_fpx,i,backup);
fxp_matrix_multiplication(nOutputs,nStates,nStates,nStates,C_fpx,backup,backupSecond);
for(j = 0; j<nStates;j++){
observabilityMatrix[i][j]= backupSecond[0][j];
}
}
for(i=0; i<nStates;i++){
for(j=0; j<nStates;j++){
observabilityMatrix_double[i][j]= fxp_to_double(observabilityMatrix[i][j]);
}
}
# 134 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/engine/verify_observability.h" 3 4
((void) sizeof ((
# 134 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/engine/verify_observability.h"
determinant(observabilityMatrix_double,nStates) != 0
# 134 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/engine/verify_observability.h" 3 4
) ? 1 : 0), __extension__ ({ if (
# 134 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/engine/verify_observability.h"
determinant(observabilityMatrix_double,nStates) != 0
# 134 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/engine/verify_observability.h" 3 4
) ; else __assert_fail (
# 134 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/engine/verify_observability.h"
"determinant(observabilityMatrix_double,nStates) != 0"
# 134 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/engine/verify_observability.h" 3 4
, "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/engine/verify_observability.h", 134, __extension__ __PRETTY_FUNCTION__); }))
# 134 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/engine/verify_observability.h"
;
}
return 0;
}
# 47 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/dsverifier.h" 2
# 1 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/engine/verify_magnitude.h" 1
# 16 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/engine/verify_magnitude.h"
extern filter_parameters filter;
extern implementation impl;
extern digital_system ds;
# 28 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/engine/verify_magnitude.h"
void resp_mag(double* num, int lnum, double* den, int lden, double* res, int N) {
double w;
int m, i;
double out_numRe[N + 1];
double out_numIm[N + 1];
double out_denRe[N + 1];
double out_denIm[N + 1];
double old_out_Re;
double zero_test;
for (w = 0, i = 0; w <= 3.14159265358979323846; w += 3.14159265358979323846 / N, ++i) {
out_numRe[i] = num[0];
out_numIm[i] = 0;
for (m = 1; m < lnum; ++m) {
old_out_Re = out_numRe[i];
out_numRe[i] = cosTyl(w, 6) * out_numRe[i] - sinTyl(w, 6) * out_numIm[i] + num[m];
out_numIm[i] = sinTyl(w, 6) * old_out_Re + cosTyl(w, 6) * out_numIm[i];
}
out_denRe[i] = den[0];
out_denIm[i] = 0;
for (m = 1; m < lden; ++m) {
old_out_Re = out_denRe[i];
out_denRe[i] = cosTyl(w, 6) * out_denRe[i] - sinTyl(w, 6) * out_denIm[i] + den[m];
out_denIm[i] = sinTyl(w, 6) * old_out_Re + cosTyl(w, 6) * out_denIm[i];
}
res[i] = sqrt3(out_numRe[i] * out_numRe[i] + out_numIm[i] * out_numIm[i]);
zero_test = sqrt3(out_denRe[i] * out_denRe[i] + out_denIm[i] * out_denIm[i]);
__DSVERIFIER_assume(zero_test != 0);
res[i] = res[i] / zero_test;
}
}
int verify_magnitude(void) {
int freq_response_samples = 100;
double w;
double w_incr = 1.0 / freq_response_samples;
double res[freq_response_samples+1];
int i,j;
fxp_t a_fxp[ds.a_size];
fxp_double_to_fxp_array(ds.a, a_fxp, ds.a_size);
double _a[ds.a_size];
fxp_to_double_array(_a, a_fxp, ds.a_size);
fxp_t b_fxp[ds.b_size];
fxp_double_to_fxp_array(ds.b, b_fxp, ds.b_size);
double _b[ds.b_size];
fxp_to_double_array(_b, b_fxp, ds.b_size);
resp_mag(ds.b, ds.b_size, ds.a, ds.a_size, res, freq_response_samples);
if (filter.type == 1) {
for (i = 0, w = 0; (w <= 1.0); ++i, w += w_incr) {
if (w <= filter.wp) {
__DSVERIFIER_assert_msg(res[i] >= filter.Ap, "|----------------Passband Failure-------------|");
} else if (w == filter.wc) {
__DSVERIFIER_assert_msg(res[i] <= filter.Ac, "|-------------Cutoff Frequency Failure--------|");
} else if ((w >= filter.wr) && (w <= 1)) {
__DSVERIFIER_assert_msg(res[i] <= filter.Ar, "|----------------Stopband Failure-------------|");
}
}
} else if (filter.type == 2) {
for (i = 0, w = 0; (w <= 1.0); ++i, w += w_incr) {
if (w <= filter.wr) {
__DSVERIFIER_assert_msg(res[i] <= filter.Ar, "|----------------Stopband Failure-------------|");
} else if (w == filter.wc) {
__DSVERIFIER_assert_msg(res[i] <= filter.Ac, "|-------------Cutoff Frequency Failure--------|");
} else if ((w > filter.wp) && (w <= 1)) {
__DSVERIFIER_assert_msg(res[i] >= filter.Ap, "|----------------Passband Failure-------------|");
}
}
} else {
__DSVERIFIER_assert(0);
}
return 0;
}
# 48 "/home/yashchopda/Desktop/dsverifier-v2.0.3-esbmc-v4.0-cbmc-5.6/bmc/dsverifier.h" 2
extern digital_system ds;
extern digital_system plant;
digital_system plant_cbmc;
extern digital_system controller;
extern implementation impl;
extern hardware hw;
extern digital_system_state_space _controller;
extern filter_parameters filter;
unsigned int nondet_uint();
extern void initials();
void validation();
void call_verification_task(void * verification_task);
void call_closedloop_verification_task(void * closedloop_verification_task);
float nondet_float();
double nondet_double();
int main(){
initialization();
validation();
if (1 == 0)
rounding_mode = 0;
else if (1 == 1)
rounding_mode = 1;
else if (1 == 2)
rounding_mode = 2;
if (2 == 3)
{
call_verification_task(&verify_overflow);
}
else if (2 == 2)
{
call_verification_task(&verify_limit_cycle);
}
else if (2 == 6)
{
call_verification_task(&verify_error);
}
else if (2 == 1)
{
call_verification_task(&verify_zero_input_limit_cycle);
}
else if (2 == 4)
{
call_verification_task(&verify_timing_msp_430);
}
else if (2 == 5)
{
call_verification_task(&verify_generic_timing);
}
else if (2 == 7)
{
call_verification_task(&verify_stability);
}
else if (2 == 8)
{
call_verification_task(&verify_minimum_phase);
}
else if (2 == 9)
{
call_closedloop_verification_task(&verify_stability_closedloop_using_dslib);
}
else if (2 == 10)
{
call_closedloop_verification_task(&verify_limit_cycle_closed_loop);
}
else if (2 == 11)
{
call_closedloop_verification_task(&verify_error_closedloop);
}
else if (2 == 12)
{
verify_error_state_space();
}
else if (2 == 16)
{
verify_safety_state_space();
}
else if (2 == 13)
{
verify_controllability();
}
else if (2 == 14)
{
verify_observability();
}
else if (2 == 15)
{
verify_limit_cycle_state_space();
}
else if (2 == 18)
{
call_verification_task(&verify_magnitude);
}
return 0;
}
void validation()
{
if (2 == 12 || 2 == 16 ||
2 == 15 || 2 == 13 ||
2 == 14)
{
if (0 == 0)
{
printf("\n\n********************************************************************************************\n");
printf("* set a K_SIZE to use this property in DSVerifier (use: -DK_SIZE=VALUE) *\n");
printf("********************************************************************************************\n");
__DSVERIFIER_assert(0);
exit(1);
}
initials();
return;
}
if (((2 != 9) && (2 != 10) &&
(2 != 11)) && (ds.a_size == 0 || ds.b_size == 0))
{
printf("\n\n****************************************************************************\n");
printf("* set (ds and impl) parameters to check with DSVerifier *\n");
printf("****************************************************************************\n");
__DSVERIFIER_assert(0);
}
if ((2 == 9) || (2 == 10) ||
(2 == 11))
{
if (controller.a_size == 0 || plant.b_size == 0 || impl.int_bits == 0 )
{
printf("\n\n*****************************************************************************************************\n");
printf("* set (controller, plant, and impl) parameters to check CLOSED LOOP with DSVerifier *\n");
printf("*****************************************************************************************************\n");
__DSVERIFIER_assert(0);
}
else
{
printf("\n\n*****************************************************************************************************\n");
printf("* set (controller and impl) parameters so that they do not overflow *\n");
printf("*****************************************************************************************************\n");
unsigned j;
for (j = 0; j < controller.a_size; ++j)
{
const double value=controller.a[j];
__DSVERIFIER_assert(value <= _dbl_max);
__DSVERIFIER_assert(value >= _dbl_min);
}
for (j = 0; j < controller.b_size; ++j)
{
const double value=controller.b[j];
__DSVERIFIER_assert(value <= _dbl_max);
__DSVERIFIER_assert(value >= _dbl_min);
}
}
if (controller.b_size > 0)
{
unsigned j, zeros=0;
for (j = 0; j < controller.b_size; ++j)
{
if (controller.b[j]==0)
++zeros;
}
if (zeros == controller.b_size)
{
printf("\n\n*****************************************************************************************************\n");
printf("* The controller numerator must not be zero *\n");
printf("*****************************************************************************************************\n");
__DSVERIFIER_assert(0);
}
}
if (controller.a_size > 0)
{
unsigned j, zeros=0;
for (j = 0; j < controller.a_size; ++j)
{
if (controller.a[j]==0)
++zeros;
}
if (zeros == controller.a_size)
{
printf("\n\n*****************************************************************************************************\n");
printf("* The controller denominator must not be zero *\n");
printf("*****************************************************************************************************\n");
__DSVERIFIER_assert(0);
}
}
if (0 == 0)
{
printf("\n\n***************************************************************************************************************\n");
printf("* set a connection mode to check CLOSED LOOP with DSVerifier (use: --connection-mode TYPE) *\n");
printf("***************************************************************************************************************\n");
__DSVERIFIER_assert(0);
}
}
if (2 == 0)
{
printf("\n\n***************************************************************************************\n");
printf("* set the property to check with DSVerifier (use: --property NAME) *\n");
printf("***************************************************************************************\n");
__DSVERIFIER_assert(0);
}
if ((2 == 3) || (2 == 2) || (2 == 1) ||
(2 == 10) || (2 == 11) ||
(2 == 4 || 2 == 5) || 2 == 6)
{
if ((5 == 0) && !(0 == 1))
{
printf("\n\n********************************************************************************************\n");
printf("* set a X_SIZE to use this property in DSVerifier (use: --x-size VALUE) *\n");
printf("********************************************************************************************\n");
__DSVERIFIER_assert(0);
}
else if (0 == 1)
{
X_SIZE_VALUE = nondet_uint();
__DSVERIFIER_assume( X_SIZE_VALUE > (2 * ds.a_size));
}
else if (5 < 0)
{
printf("\n\n********************************************************************************************\n");
printf("* set a X_SIZE > 0 *\n");
printf("********************************************************************************************\n");
__DSVERIFIER_assert(0);
}
else
{
X_SIZE_VALUE = 5;
}
}
if ((2 == 0) && (2 != 9) && (2 != 18))
{
printf("\n\n*********************************************************************************************\n");
printf("* set the realization to check with DSVerifier (use: --realization NAME) *\n");
printf("*********************************************************************************************\n");
__DSVERIFIER_assert(0);
}
if (2 == 6 || 2 == 11)
{
if (impl.max_error == 0)
{
printf("\n\n***********************************************************************\n");
printf("* provide the maximum expected error (use: impl.max_error) *\n");
printf("***********************************************************************\n");
__DSVERIFIER_assert(0);
}
}
if (2 == 4 || 2 == 5)
{
if (2 == 5 || 2 == 4)
{
if (hw.clock == 0l)
{
printf("\n\n***************************\n");
printf("* Clock could not be zero *\n");
printf("***************************\n");
__DSVERIFIER_assert(0);
}
hw.cycle = ((double) 1.0 / hw.clock);
if (hw.cycle < 0)
{
printf("\n\n*********************************************\n");
printf("* The cycle time could not be representable *\n");
printf("*********************************************\n");
__DSVERIFIER_assert(0);
}
if (ds.sample_time == 0)
{
printf("\n\n*****************************************************************************\n");
printf("* provide the sample time of the digital system (ds.sample_time) *\n");
printf("*****************************************************************************\n");
__DSVERIFIER_assert(0);
}
}
}
if (2 == 18)
{
if (!((filter.Ap > 0) && (filter.Ac >0) && (filter.Ar >0)))
{
printf("\n\n*****************************************************************************\n");
printf("* set values bigger than 0 for Ap, Ac and Ar* \n");
printf("*****************************************************************************\n");
__DSVERIFIER_assert(0);
}
}
if ((2 == 7) || (2 == 8) || (2 == 9) ||
(2 == 10) || (2 == 11) || (2 == 12))
{
printf("\n\n******************************************\n");
printf("* Temporarily the cascade modes are disabled *\n");
printf("**********************************************\n");
__DSVERIFIER_assert(0);
}
}
void call_verification_task(void * verification_task)
{
int i = 0;
_Bool base_case_executed = 0;
if (0 == 2)
{
for(i=0; i<ds.b_size; i++)
{
if (ds.b_uncertainty[i] > 0)
{
double factor = ds.b_uncertainty[i];
factor = factor < 0 ? factor * (-1) : factor;
double min = ds.b[i] - factor;
double max = ds.b[i] + factor;
if ((factor == 0) && (base_case_executed == 1))
{
continue;
}
else if ((factor == 0) && (base_case_executed == 0))
{
base_case_executed = 1;
}
ds.b[i] = nondet_double();
__DSVERIFIER_assume((ds.b[i] >= min) && (ds.b[i] <= max));
}
}
for(i=0; i<ds.a_size; i++)
{
if (ds.a_uncertainty[i] > 0)
{
double factor = ds.a_uncertainty[i];
factor = factor < 0 ? factor * (-1) : factor;
double min = ds.a[i] - factor;
double max = ds.a[i] + factor;
if ((factor == 0) && (base_case_executed == 1))
{
continue;
}
else if ((factor == 0) && (base_case_executed == 0))
{
base_case_executed = 1;
}
ds.a[i] = nondet_double();
__DSVERIFIER_assume((ds.a[i] >= min) && (ds.a[i] <= max));
}
}
}
else
{
int i=0;
for(i=0; i<ds.b_size; i++)
{
if (ds.b_uncertainty[i] > 0)
{
double factor = ((ds.b[i] * ds.b_uncertainty[i]) / 100);
factor = factor < 0 ? factor * (-1) : factor;
double min = ds.b[i] - factor;
double max = ds.b[i] + factor;
if ((factor == 0) && (base_case_executed == 1))
{
continue;
}
else if ((factor == 0) && (base_case_executed == 0))
{
base_case_executed = 1;
}
ds.b[i] = nondet_double();
__DSVERIFIER_assume((ds.b[i] >= min) && (ds.b[i] <= max));
}
}
for(i=0; i<ds.a_size; i++)
{
if (ds.a_uncertainty[i] > 0)
{
double factor = ((ds.a[i] * ds.a_uncertainty[i]) / 100);
factor = factor < 0 ? factor * (-1) : factor;
double min = ds.a[i] - factor;
double max = ds.a[i] + factor;
if ((factor == 0) && (base_case_executed == 1))
{
continue;
}
else if ((factor == 0) && (base_case_executed == 0))
{
base_case_executed = 1;
}
ds.a[i] = nondet_double();
__DSVERIFIER_assume((ds.a[i] >= min) && (ds.a[i] <= max));
}
}
}
((void(*)())verification_task)();
}
void call_closedloop_verification_task(void * closedloop_verification_task)
{
_Bool base_case_executed = 0;
int i=0;
for(i=0; i<plant.b_size; i++)
{
if (plant.b_uncertainty[i] > 0)
{
double factor = ((plant.b[i] * plant.b_uncertainty[i]) / 100);
factor = factor < 0 ? factor * (-1) : factor;
double min = plant.b[i] - factor;
double max = plant.b[i] + factor;
if ((factor == 0) && (base_case_executed == 1))
{
continue;
}
else if ((factor == 0) && (base_case_executed == 0))
{
base_case_executed = 1;
}
plant.b[i] = nondet_double();
__DSVERIFIER_assume((plant.b[i] >= min) && (plant.b[i] <= max));
}else{
}
}
for(i=0; i<plant.a_size; i++)
{
if (plant.a_uncertainty[i] > 0)
{
double factor = ((plant.a[i] * plant.a_uncertainty[i]) / 100);
factor = factor < 0 ? factor * (-1) : factor;
double min = plant.a[i] - factor;
double max = plant.a[i] + factor;
if ((factor == 0) && (base_case_executed == 1))
{
continue;
}
else if ((factor == 0) && (base_case_executed == 0))
{
base_case_executed = 1;
}
plant.a[i] = nondet_double();
__DSVERIFIER_assume((plant.a[i] >= min) && (plant.a[i] <= max));
}
else
{
}
}
((void(*)())closedloop_verification_task)();
}
# 2 "benchmarks/ds-02-impl1.c" 2
digital_system ds = {
.b = { 60.0, -50.0 },
.b_size = 2,
.a = { 1.0, 0.0 },
.a_size = 2,
.sample_time = 0.02
};
implementation impl = {
.int_bits = 6,
.frac_bits = 10,
.max = 1.0,
.min = -1.0
};
|
the_stack_data/326352.c | #include <stdio.h>
#include <sys/mman.h>
#define ARRAY_SIZE(arr) (sizeof(arr) / sizeof((arr)[0]))
#define PAGE_SIZE 4096
#define LOW_ADDR ((void *) (1UL << 30))
#define HIGH_ADDR ((void *) (1UL << 50))
struct testcase {
void *addr;
unsigned long size;
unsigned long flags;
const char *msg;
unsigned int low_addr_required:1;
unsigned int keep_mapped:1;
};
static struct testcase testcases[] = {
{
.addr = NULL,
.size = 2 * PAGE_SIZE,
.flags = MAP_PRIVATE | MAP_ANONYMOUS,
.msg = "mmap(NULL)",
.low_addr_required = 1,
},
{
.addr = LOW_ADDR,
.size = 2 * PAGE_SIZE,
.flags = MAP_PRIVATE | MAP_ANONYMOUS,
.msg = "mmap(LOW_ADDR)",
.low_addr_required = 1,
},
{
.addr = HIGH_ADDR,
.size = 2 * PAGE_SIZE,
.flags = MAP_PRIVATE | MAP_ANONYMOUS,
.msg = "mmap(HIGH_ADDR)",
.keep_mapped = 1,
},
{
.addr = HIGH_ADDR,
.size = 2 * PAGE_SIZE,
.flags = MAP_PRIVATE | MAP_ANONYMOUS,
.msg = "mmap(HIGH_ADDR) again",
.keep_mapped = 1,
},
{
.addr = HIGH_ADDR,
.size = 2 * PAGE_SIZE,
.flags = MAP_PRIVATE | MAP_ANONYMOUS | MAP_FIXED,
.msg = "mmap(HIGH_ADDR, MAP_FIXED)",
},
{
.addr = (void*) -1,
.size = 2 * PAGE_SIZE,
.flags = MAP_PRIVATE | MAP_ANONYMOUS,
.msg = "mmap(-1)",
.keep_mapped = 1,
},
{
.addr = (void*) -1,
.size = 2 * PAGE_SIZE,
.flags = MAP_PRIVATE | MAP_ANONYMOUS,
.msg = "mmap(-1) again",
},
{
.addr = (void *)((1UL << 47) - PAGE_SIZE),
.size = 2 * PAGE_SIZE,
.flags = MAP_PRIVATE | MAP_ANONYMOUS,
.msg = "mmap((1UL << 47), 2 * PAGE_SIZE)",
.low_addr_required = 1,
.keep_mapped = 1,
},
{
.addr = (void *)((1UL << 47) - PAGE_SIZE / 2),
.size = 2 * PAGE_SIZE,
.flags = MAP_PRIVATE | MAP_ANONYMOUS,
.msg = "mmap((1UL << 47), 2 * PAGE_SIZE / 2)",
.low_addr_required = 1,
.keep_mapped = 1,
},
{
.addr = (void *)((1UL << 47) - PAGE_SIZE),
.size = 2 * PAGE_SIZE,
.flags = MAP_PRIVATE | MAP_ANONYMOUS | MAP_FIXED,
.msg = "mmap((1UL << 47) - PAGE_SIZE, 2 * PAGE_SIZE, MAP_FIXED)",
},
{
.addr = NULL,
.size = 2UL << 20,
.flags = MAP_HUGETLB | MAP_PRIVATE | MAP_ANONYMOUS,
.msg = "mmap(NULL, MAP_HUGETLB)",
.low_addr_required = 1,
},
{
.addr = LOW_ADDR,
.size = 2UL << 20,
.flags = MAP_HUGETLB | MAP_PRIVATE | MAP_ANONYMOUS,
.msg = "mmap(LOW_ADDR, MAP_HUGETLB)",
.low_addr_required = 1,
},
{
.addr = HIGH_ADDR,
.size = 2UL << 20,
.flags = MAP_HUGETLB | MAP_PRIVATE | MAP_ANONYMOUS,
.msg = "mmap(HIGH_ADDR, MAP_HUGETLB)",
.keep_mapped = 1,
},
{
.addr = HIGH_ADDR,
.size = 2UL << 20,
.flags = MAP_HUGETLB | MAP_PRIVATE | MAP_ANONYMOUS,
.msg = "mmap(HIGH_ADDR, MAP_HUGETLB) again",
.keep_mapped = 1,
},
{
.addr = HIGH_ADDR,
.size = 2UL << 20,
.flags = MAP_HUGETLB | MAP_PRIVATE | MAP_ANONYMOUS | MAP_FIXED,
.msg = "mmap(HIGH_ADDR, MAP_FIXED | MAP_HUGETLB)",
},
{
.addr = (void*) -1,
.size = 2UL << 20,
.flags = MAP_HUGETLB | MAP_PRIVATE | MAP_ANONYMOUS,
.msg = "mmap(-1, MAP_HUGETLB)",
.keep_mapped = 1,
},
{
.addr = (void*) -1,
.size = 2UL << 20,
.flags = MAP_HUGETLB | MAP_PRIVATE | MAP_ANONYMOUS,
.msg = "mmap(-1, MAP_HUGETLB) again",
},
{
.addr = (void *)((1UL << 47) - PAGE_SIZE),
.size = 4UL << 20,
.flags = MAP_HUGETLB | MAP_PRIVATE | MAP_ANONYMOUS,
.msg = "mmap((1UL << 47), 4UL << 20, MAP_HUGETLB)",
.low_addr_required = 1,
.keep_mapped = 1,
},
{
.addr = (void *)((1UL << 47) - (2UL << 20)),
.size = 4UL << 20,
.flags = MAP_HUGETLB | MAP_PRIVATE | MAP_ANONYMOUS | MAP_FIXED,
.msg = "mmap((1UL << 47) - (2UL << 20), 4UL << 20, MAP_FIXED | MAP_HUGETLB)",
},
};
int main(int argc, char **argv)
{
int i;
void *p;
for (i = 0; i < ARRAY_SIZE(testcases); i++) {
struct testcase *t = testcases + i;
p = mmap(t->addr, t->size, PROT_NONE, t->flags, -1, 0);
printf("%s: %p - ", t->msg, p);
if (p == MAP_FAILED) {
printf("FAILED\n");
continue;
}
if (t->low_addr_required && p >= (void *)(1UL << 47))
printf("FAILED\n");
else
printf("OK\n");
if (!t->keep_mapped)
munmap(p, t->size);
}
return 0;
}
|
the_stack_data/166100.c | /* Copyright (c) 1998, 1999 Thai Open Source Software Center Ltd
See the file COPYING for copying permission.
*/
/* This file is included! */
#ifdef XML_TOK_IMPL_C
#ifndef IS_INVALID_CHAR
#define IS_INVALID_CHAR(enc, ptr, n) (0)
#endif
#define INVALID_LEAD_CASE(n, ptr, nextTokPtr) \
case BT_LEAD ## n: \
if (end - ptr < n) \
return XML_TOK_PARTIAL_CHAR; \
if (IS_INVALID_CHAR(enc, ptr, n)) { \
*(nextTokPtr) = (ptr); \
return XML_TOK_INVALID; \
} \
ptr += n; \
break;
#define INVALID_CASES(ptr, nextTokPtr) \
INVALID_LEAD_CASE(2, ptr, nextTokPtr) \
INVALID_LEAD_CASE(3, ptr, nextTokPtr) \
INVALID_LEAD_CASE(4, ptr, nextTokPtr) \
case BT_NONXML: \
case BT_MALFORM: \
case BT_TRAIL: \
*(nextTokPtr) = (ptr); \
return XML_TOK_INVALID;
#define CHECK_NAME_CASE(n, enc, ptr, end, nextTokPtr) \
case BT_LEAD ## n: \
if (end - ptr < n) \
return XML_TOK_PARTIAL_CHAR; \
if (!IS_NAME_CHAR(enc, ptr, n)) { \
*nextTokPtr = ptr; \
return XML_TOK_INVALID; \
} \
ptr += n; \
break;
#define CHECK_NAME_CASES(enc, ptr, end, nextTokPtr) \
case BT_NONASCII: \
if (!IS_NAME_CHAR_MINBPC(enc, ptr)) { \
*nextTokPtr = ptr; \
return XML_TOK_INVALID; \
} \
/* fall through */ \
case BT_NMSTRT: \
case BT_HEX: \
case BT_DIGIT: \
case BT_NAME: \
case BT_MINUS: \
ptr += MINBPC(enc); \
break; \
CHECK_NAME_CASE(2, enc, ptr, end, nextTokPtr) \
CHECK_NAME_CASE(3, enc, ptr, end, nextTokPtr) \
CHECK_NAME_CASE(4, enc, ptr, end, nextTokPtr)
#define CHECK_NMSTRT_CASE(n, enc, ptr, end, nextTokPtr) \
case BT_LEAD ## n: \
if (end - ptr < n) \
return XML_TOK_PARTIAL_CHAR; \
if (!IS_NMSTRT_CHAR(enc, ptr, n)) { \
*nextTokPtr = ptr; \
return XML_TOK_INVALID; \
} \
ptr += n; \
break;
#define CHECK_NMSTRT_CASES(enc, ptr, end, nextTokPtr) \
case BT_NONASCII: \
if (!IS_NMSTRT_CHAR_MINBPC(enc, ptr)) { \
*nextTokPtr = ptr; \
return XML_TOK_INVALID; \
} \
/* fall through */ \
case BT_NMSTRT: \
case BT_HEX: \
ptr += MINBPC(enc); \
break; \
CHECK_NMSTRT_CASE(2, enc, ptr, end, nextTokPtr) \
CHECK_NMSTRT_CASE(3, enc, ptr, end, nextTokPtr) \
CHECK_NMSTRT_CASE(4, enc, ptr, end, nextTokPtr)
#ifndef PREFIX
#define PREFIX(ident) ident
#endif
#define HAS_CHARS(enc, ptr, end, count) \
(end - ptr >= count * MINBPC(enc))
#define HAS_CHAR(enc, ptr, end) \
HAS_CHARS(enc, ptr, end, 1)
#define REQUIRE_CHARS(enc, ptr, end, count) \
{ \
if (! HAS_CHARS(enc, ptr, end, count)) { \
return XML_TOK_PARTIAL; \
} \
}
#define REQUIRE_CHAR(enc, ptr, end) \
REQUIRE_CHARS(enc, ptr, end, 1)
/* ptr points to character following "<!-" */
static int PTRCALL
PREFIX(scanComment)(const ENCODING *enc, const char *ptr,
const char *end, const char **nextTokPtr)
{
if (HAS_CHAR(enc, ptr, end)) {
if (!CHAR_MATCHES(enc, ptr, ASCII_MINUS)) {
*nextTokPtr = ptr;
return XML_TOK_INVALID;
}
ptr += MINBPC(enc);
while (HAS_CHAR(enc, ptr, end)) {
switch (BYTE_TYPE(enc, ptr)) {
INVALID_CASES(ptr, nextTokPtr)
case BT_MINUS:
ptr += MINBPC(enc);
REQUIRE_CHAR(enc, ptr, end);
if (CHAR_MATCHES(enc, ptr, ASCII_MINUS)) {
ptr += MINBPC(enc);
REQUIRE_CHAR(enc, ptr, end);
if (!CHAR_MATCHES(enc, ptr, ASCII_GT)) {
*nextTokPtr = ptr;
return XML_TOK_INVALID;
}
*nextTokPtr = ptr + MINBPC(enc);
return XML_TOK_COMMENT;
}
break;
default:
ptr += MINBPC(enc);
break;
}
}
}
return XML_TOK_PARTIAL;
}
/* ptr points to character following "<!" */
static int PTRCALL
PREFIX(scanDecl)(const ENCODING *enc, const char *ptr,
const char *end, const char **nextTokPtr)
{
REQUIRE_CHAR(enc, ptr, end);
switch (BYTE_TYPE(enc, ptr)) {
case BT_MINUS:
return PREFIX(scanComment)(enc, ptr + MINBPC(enc), end, nextTokPtr);
case BT_LSQB:
*nextTokPtr = ptr + MINBPC(enc);
return XML_TOK_COND_SECT_OPEN;
case BT_NMSTRT:
case BT_HEX:
ptr += MINBPC(enc);
break;
default:
*nextTokPtr = ptr;
return XML_TOK_INVALID;
}
while (HAS_CHAR(enc, ptr, end)) {
switch (BYTE_TYPE(enc, ptr)) {
case BT_PERCNT:
REQUIRE_CHARS(enc, ptr, end, 2);
/* don't allow <!ENTITY% foo "whatever"> */
switch (BYTE_TYPE(enc, ptr + MINBPC(enc))) {
case BT_S: case BT_CR: case BT_LF: case BT_PERCNT:
*nextTokPtr = ptr;
return XML_TOK_INVALID;
}
/* fall through */
case BT_S: case BT_CR: case BT_LF:
*nextTokPtr = ptr;
return XML_TOK_DECL_OPEN;
case BT_NMSTRT:
case BT_HEX:
ptr += MINBPC(enc);
break;
default:
*nextTokPtr = ptr;
return XML_TOK_INVALID;
}
}
return XML_TOK_PARTIAL;
}
static int PTRCALL
PREFIX(checkPiTarget)(const ENCODING *UNUSED_P(enc), const char *ptr,
const char *end, int *tokPtr)
{
int upper = 0;
*tokPtr = XML_TOK_PI;
if (end - ptr != MINBPC(enc)*3)
return 1;
switch (BYTE_TO_ASCII(enc, ptr)) {
case ASCII_x:
break;
case ASCII_X:
upper = 1;
break;
default:
return 1;
}
ptr += MINBPC(enc);
switch (BYTE_TO_ASCII(enc, ptr)) {
case ASCII_m:
break;
case ASCII_M:
upper = 1;
break;
default:
return 1;
}
ptr += MINBPC(enc);
switch (BYTE_TO_ASCII(enc, ptr)) {
case ASCII_l:
break;
case ASCII_L:
upper = 1;
break;
default:
return 1;
}
if (upper)
return 0;
*tokPtr = XML_TOK_XML_DECL;
return 1;
}
/* ptr points to character following "<?" */
static int PTRCALL
PREFIX(scanPi)(const ENCODING *enc, const char *ptr,
const char *end, const char **nextTokPtr)
{
int tok;
const char *target = ptr;
REQUIRE_CHAR(enc, ptr, end);
switch (BYTE_TYPE(enc, ptr)) {
CHECK_NMSTRT_CASES(enc, ptr, end, nextTokPtr)
default:
*nextTokPtr = ptr;
return XML_TOK_INVALID;
}
while (HAS_CHAR(enc, ptr, end)) {
switch (BYTE_TYPE(enc, ptr)) {
CHECK_NAME_CASES(enc, ptr, end, nextTokPtr)
case BT_S: case BT_CR: case BT_LF:
if (!PREFIX(checkPiTarget)(enc, target, ptr, &tok)) {
*nextTokPtr = ptr;
return XML_TOK_INVALID;
}
ptr += MINBPC(enc);
while (HAS_CHAR(enc, ptr, end)) {
switch (BYTE_TYPE(enc, ptr)) {
INVALID_CASES(ptr, nextTokPtr)
case BT_QUEST:
ptr += MINBPC(enc);
REQUIRE_CHAR(enc, ptr, end);
if (CHAR_MATCHES(enc, ptr, ASCII_GT)) {
*nextTokPtr = ptr + MINBPC(enc);
return tok;
}
break;
default:
ptr += MINBPC(enc);
break;
}
}
return XML_TOK_PARTIAL;
case BT_QUEST:
if (!PREFIX(checkPiTarget)(enc, target, ptr, &tok)) {
*nextTokPtr = ptr;
return XML_TOK_INVALID;
}
ptr += MINBPC(enc);
REQUIRE_CHAR(enc, ptr, end);
if (CHAR_MATCHES(enc, ptr, ASCII_GT)) {
*nextTokPtr = ptr + MINBPC(enc);
return tok;
}
/* fall through */
default:
*nextTokPtr = ptr;
return XML_TOK_INVALID;
}
}
return XML_TOK_PARTIAL;
}
static int PTRCALL
PREFIX(scanCdataSection)(const ENCODING *UNUSED_P(enc), const char *ptr,
const char *end, const char **nextTokPtr)
{
static const char CDATA_LSQB[] = { ASCII_C, ASCII_D, ASCII_A,
ASCII_T, ASCII_A, ASCII_LSQB };
int i;
/* CDATA[ */
REQUIRE_CHARS(enc, ptr, end, 6);
for (i = 0; i < 6; i++, ptr += MINBPC(enc)) {
if (!CHAR_MATCHES(enc, ptr, CDATA_LSQB[i])) {
*nextTokPtr = ptr;
return XML_TOK_INVALID;
}
}
*nextTokPtr = ptr;
return XML_TOK_CDATA_SECT_OPEN;
}
static int PTRCALL
PREFIX(cdataSectionTok)(const ENCODING *enc, const char *ptr,
const char *end, const char **nextTokPtr)
{
if (ptr >= end)
return XML_TOK_NONE;
if (MINBPC(enc) > 1) {
size_t n = end - ptr;
if (n & (MINBPC(enc) - 1)) {
n &= ~(MINBPC(enc) - 1);
if (n == 0)
return XML_TOK_PARTIAL;
end = ptr + n;
}
}
switch (BYTE_TYPE(enc, ptr)) {
case BT_RSQB:
ptr += MINBPC(enc);
REQUIRE_CHAR(enc, ptr, end);
if (!CHAR_MATCHES(enc, ptr, ASCII_RSQB))
break;
ptr += MINBPC(enc);
REQUIRE_CHAR(enc, ptr, end);
if (!CHAR_MATCHES(enc, ptr, ASCII_GT)) {
ptr -= MINBPC(enc);
break;
}
*nextTokPtr = ptr + MINBPC(enc);
return XML_TOK_CDATA_SECT_CLOSE;
case BT_CR:
ptr += MINBPC(enc);
REQUIRE_CHAR(enc, ptr, end);
if (BYTE_TYPE(enc, ptr) == BT_LF)
ptr += MINBPC(enc);
*nextTokPtr = ptr;
return XML_TOK_DATA_NEWLINE;
case BT_LF:
*nextTokPtr = ptr + MINBPC(enc);
return XML_TOK_DATA_NEWLINE;
INVALID_CASES(ptr, nextTokPtr)
default:
ptr += MINBPC(enc);
break;
}
while (HAS_CHAR(enc, ptr, end)) {
switch (BYTE_TYPE(enc, ptr)) {
#define LEAD_CASE(n) \
case BT_LEAD ## n: \
if (end - ptr < n || IS_INVALID_CHAR(enc, ptr, n)) { \
*nextTokPtr = ptr; \
return XML_TOK_DATA_CHARS; \
} \
ptr += n; \
break;
LEAD_CASE(2) LEAD_CASE(3) LEAD_CASE(4)
#undef LEAD_CASE
case BT_NONXML:
case BT_MALFORM:
case BT_TRAIL:
case BT_CR:
case BT_LF:
case BT_RSQB:
*nextTokPtr = ptr;
return XML_TOK_DATA_CHARS;
default:
ptr += MINBPC(enc);
break;
}
}
*nextTokPtr = ptr;
return XML_TOK_DATA_CHARS;
}
/* ptr points to character following "</" */
static int PTRCALL
PREFIX(scanEndTag)(const ENCODING *enc, const char *ptr,
const char *end, const char **nextTokPtr)
{
REQUIRE_CHAR(enc, ptr, end);
switch (BYTE_TYPE(enc, ptr)) {
CHECK_NMSTRT_CASES(enc, ptr, end, nextTokPtr)
default:
*nextTokPtr = ptr;
return XML_TOK_INVALID;
}
while (HAS_CHAR(enc, ptr, end)) {
switch (BYTE_TYPE(enc, ptr)) {
CHECK_NAME_CASES(enc, ptr, end, nextTokPtr)
case BT_S: case BT_CR: case BT_LF:
for (ptr += MINBPC(enc); HAS_CHAR(enc, ptr, end); ptr += MINBPC(enc)) {
switch (BYTE_TYPE(enc, ptr)) {
case BT_S: case BT_CR: case BT_LF:
break;
case BT_GT:
*nextTokPtr = ptr + MINBPC(enc);
return XML_TOK_END_TAG;
default:
*nextTokPtr = ptr;
return XML_TOK_INVALID;
}
}
return XML_TOK_PARTIAL;
#ifdef XML_NS
case BT_COLON:
/* no need to check qname syntax here,
since end-tag must match exactly */
ptr += MINBPC(enc);
break;
#endif
case BT_GT:
*nextTokPtr = ptr + MINBPC(enc);
return XML_TOK_END_TAG;
default:
*nextTokPtr = ptr;
return XML_TOK_INVALID;
}
}
return XML_TOK_PARTIAL;
}
/* ptr points to character following "&#X" */
static int PTRCALL
PREFIX(scanHexCharRef)(const ENCODING *enc, const char *ptr,
const char *end, const char **nextTokPtr)
{
if (HAS_CHAR(enc, ptr, end)) {
switch (BYTE_TYPE(enc, ptr)) {
case BT_DIGIT:
case BT_HEX:
break;
default:
*nextTokPtr = ptr;
return XML_TOK_INVALID;
}
for (ptr += MINBPC(enc); HAS_CHAR(enc, ptr, end); ptr += MINBPC(enc)) {
switch (BYTE_TYPE(enc, ptr)) {
case BT_DIGIT:
case BT_HEX:
break;
case BT_SEMI:
*nextTokPtr = ptr + MINBPC(enc);
return XML_TOK_CHAR_REF;
default:
*nextTokPtr = ptr;
return XML_TOK_INVALID;
}
}
}
return XML_TOK_PARTIAL;
}
/* ptr points to character following "&#" */
static int PTRCALL
PREFIX(scanCharRef)(const ENCODING *enc, const char *ptr,
const char *end, const char **nextTokPtr)
{
if (HAS_CHAR(enc, ptr, end)) {
if (CHAR_MATCHES(enc, ptr, ASCII_x))
return PREFIX(scanHexCharRef)(enc, ptr + MINBPC(enc), end, nextTokPtr);
switch (BYTE_TYPE(enc, ptr)) {
case BT_DIGIT:
break;
default:
*nextTokPtr = ptr;
return XML_TOK_INVALID;
}
for (ptr += MINBPC(enc); HAS_CHAR(enc, ptr, end); ptr += MINBPC(enc)) {
switch (BYTE_TYPE(enc, ptr)) {
case BT_DIGIT:
break;
case BT_SEMI:
*nextTokPtr = ptr + MINBPC(enc);
return XML_TOK_CHAR_REF;
default:
*nextTokPtr = ptr;
return XML_TOK_INVALID;
}
}
}
return XML_TOK_PARTIAL;
}
/* ptr points to character following "&" */
static int PTRCALL
PREFIX(scanRef)(const ENCODING *enc, const char *ptr, const char *end,
const char **nextTokPtr)
{
REQUIRE_CHAR(enc, ptr, end);
switch (BYTE_TYPE(enc, ptr)) {
CHECK_NMSTRT_CASES(enc, ptr, end, nextTokPtr)
case BT_NUM:
return PREFIX(scanCharRef)(enc, ptr + MINBPC(enc), end, nextTokPtr);
default:
*nextTokPtr = ptr;
return XML_TOK_INVALID;
}
while (HAS_CHAR(enc, ptr, end)) {
switch (BYTE_TYPE(enc, ptr)) {
CHECK_NAME_CASES(enc, ptr, end, nextTokPtr)
case BT_SEMI:
*nextTokPtr = ptr + MINBPC(enc);
return XML_TOK_ENTITY_REF;
default:
*nextTokPtr = ptr;
return XML_TOK_INVALID;
}
}
return XML_TOK_PARTIAL;
}
/* ptr points to character following first character of attribute name */
static int PTRCALL
PREFIX(scanAtts)(const ENCODING *enc, const char *ptr, const char *end,
const char **nextTokPtr)
{
#ifdef XML_NS
int hadColon = 0;
#endif
while (HAS_CHAR(enc, ptr, end)) {
switch (BYTE_TYPE(enc, ptr)) {
CHECK_NAME_CASES(enc, ptr, end, nextTokPtr)
#ifdef XML_NS
case BT_COLON:
if (hadColon) {
*nextTokPtr = ptr;
return XML_TOK_INVALID;
}
hadColon = 1;
ptr += MINBPC(enc);
REQUIRE_CHAR(enc, ptr, end);
switch (BYTE_TYPE(enc, ptr)) {
CHECK_NMSTRT_CASES(enc, ptr, end, nextTokPtr)
default:
*nextTokPtr = ptr;
return XML_TOK_INVALID;
}
break;
#endif
case BT_S: case BT_CR: case BT_LF:
for (;;) {
int t;
ptr += MINBPC(enc);
REQUIRE_CHAR(enc, ptr, end);
t = BYTE_TYPE(enc, ptr);
if (t == BT_EQUALS)
break;
switch (t) {
case BT_S:
case BT_LF:
case BT_CR:
break;
default:
*nextTokPtr = ptr;
return XML_TOK_INVALID;
}
}
/* fall through */
case BT_EQUALS:
{
int open;
#ifdef XML_NS
hadColon = 0;
#endif
for (;;) {
ptr += MINBPC(enc);
REQUIRE_CHAR(enc, ptr, end);
open = BYTE_TYPE(enc, ptr);
if (open == BT_QUOT || open == BT_APOS)
break;
switch (open) {
case BT_S:
case BT_LF:
case BT_CR:
break;
default:
*nextTokPtr = ptr;
return XML_TOK_INVALID;
}
}
ptr += MINBPC(enc);
/* in attribute value */
for (;;) {
int t;
REQUIRE_CHAR(enc, ptr, end);
t = BYTE_TYPE(enc, ptr);
if (t == open)
break;
switch (t) {
INVALID_CASES(ptr, nextTokPtr)
case BT_AMP:
{
int tok = PREFIX(scanRef)(enc, ptr + MINBPC(enc), end, &ptr);
if (tok <= 0) {
if (tok == XML_TOK_INVALID)
*nextTokPtr = ptr;
return tok;
}
break;
}
case BT_LT:
*nextTokPtr = ptr;
return XML_TOK_INVALID;
default:
ptr += MINBPC(enc);
break;
}
}
ptr += MINBPC(enc);
REQUIRE_CHAR(enc, ptr, end);
switch (BYTE_TYPE(enc, ptr)) {
case BT_S:
case BT_CR:
case BT_LF:
break;
case BT_SOL:
goto sol;
case BT_GT:
goto gt;
default:
*nextTokPtr = ptr;
return XML_TOK_INVALID;
}
/* ptr points to closing quote */
for (;;) {
ptr += MINBPC(enc);
REQUIRE_CHAR(enc, ptr, end);
switch (BYTE_TYPE(enc, ptr)) {
CHECK_NMSTRT_CASES(enc, ptr, end, nextTokPtr)
case BT_S: case BT_CR: case BT_LF:
continue;
case BT_GT:
gt:
*nextTokPtr = ptr + MINBPC(enc);
return XML_TOK_START_TAG_WITH_ATTS;
case BT_SOL:
sol:
ptr += MINBPC(enc);
REQUIRE_CHAR(enc, ptr, end);
if (!CHAR_MATCHES(enc, ptr, ASCII_GT)) {
*nextTokPtr = ptr;
return XML_TOK_INVALID;
}
*nextTokPtr = ptr + MINBPC(enc);
return XML_TOK_EMPTY_ELEMENT_WITH_ATTS;
default:
*nextTokPtr = ptr;
return XML_TOK_INVALID;
}
break;
}
break;
}
default:
*nextTokPtr = ptr;
return XML_TOK_INVALID;
}
}
return XML_TOK_PARTIAL;
}
/* ptr points to character following "<" */
static int PTRCALL
PREFIX(scanLt)(const ENCODING *enc, const char *ptr, const char *end,
const char **nextTokPtr)
{
#ifdef XML_NS
int hadColon;
#endif
REQUIRE_CHAR(enc, ptr, end);
switch (BYTE_TYPE(enc, ptr)) {
CHECK_NMSTRT_CASES(enc, ptr, end, nextTokPtr)
case BT_EXCL:
ptr += MINBPC(enc);
REQUIRE_CHAR(enc, ptr, end);
switch (BYTE_TYPE(enc, ptr)) {
case BT_MINUS:
return PREFIX(scanComment)(enc, ptr + MINBPC(enc), end, nextTokPtr);
case BT_LSQB:
return PREFIX(scanCdataSection)(enc, ptr + MINBPC(enc),
end, nextTokPtr);
}
*nextTokPtr = ptr;
return XML_TOK_INVALID;
case BT_QUEST:
return PREFIX(scanPi)(enc, ptr + MINBPC(enc), end, nextTokPtr);
case BT_SOL:
return PREFIX(scanEndTag)(enc, ptr + MINBPC(enc), end, nextTokPtr);
default:
*nextTokPtr = ptr;
return XML_TOK_INVALID;
}
#ifdef XML_NS
hadColon = 0;
#endif
/* we have a start-tag */
while (HAS_CHAR(enc, ptr, end)) {
switch (BYTE_TYPE(enc, ptr)) {
CHECK_NAME_CASES(enc, ptr, end, nextTokPtr)
#ifdef XML_NS
case BT_COLON:
if (hadColon) {
*nextTokPtr = ptr;
return XML_TOK_INVALID;
}
hadColon = 1;
ptr += MINBPC(enc);
REQUIRE_CHAR(enc, ptr, end);
switch (BYTE_TYPE(enc, ptr)) {
CHECK_NMSTRT_CASES(enc, ptr, end, nextTokPtr)
default:
*nextTokPtr = ptr;
return XML_TOK_INVALID;
}
break;
#endif
case BT_S: case BT_CR: case BT_LF:
{
ptr += MINBPC(enc);
while (HAS_CHAR(enc, ptr, end)) {
switch (BYTE_TYPE(enc, ptr)) {
CHECK_NMSTRT_CASES(enc, ptr, end, nextTokPtr)
case BT_GT:
goto gt;
case BT_SOL:
goto sol;
case BT_S: case BT_CR: case BT_LF:
ptr += MINBPC(enc);
continue;
default:
*nextTokPtr = ptr;
return XML_TOK_INVALID;
}
return PREFIX(scanAtts)(enc, ptr, end, nextTokPtr);
}
return XML_TOK_PARTIAL;
}
case BT_GT:
gt:
*nextTokPtr = ptr + MINBPC(enc);
return XML_TOK_START_TAG_NO_ATTS;
case BT_SOL:
sol:
ptr += MINBPC(enc);
REQUIRE_CHAR(enc, ptr, end);
if (!CHAR_MATCHES(enc, ptr, ASCII_GT)) {
*nextTokPtr = ptr;
return XML_TOK_INVALID;
}
*nextTokPtr = ptr + MINBPC(enc);
return XML_TOK_EMPTY_ELEMENT_NO_ATTS;
default:
*nextTokPtr = ptr;
return XML_TOK_INVALID;
}
}
return XML_TOK_PARTIAL;
}
static int PTRCALL
PREFIX(contentTok)(const ENCODING *enc, const char *ptr, const char *end,
const char **nextTokPtr)
{
if (ptr >= end)
return XML_TOK_NONE;
if (MINBPC(enc) > 1) {
size_t n = end - ptr;
if (n & (MINBPC(enc) - 1)) {
n &= ~(MINBPC(enc) - 1);
if (n == 0)
return XML_TOK_PARTIAL;
end = ptr + n;
}
}
switch (BYTE_TYPE(enc, ptr)) {
case BT_LT:
return PREFIX(scanLt)(enc, ptr + MINBPC(enc), end, nextTokPtr);
case BT_AMP:
return PREFIX(scanRef)(enc, ptr + MINBPC(enc), end, nextTokPtr);
case BT_CR:
ptr += MINBPC(enc);
if (! HAS_CHAR(enc, ptr, end))
return XML_TOK_TRAILING_CR;
if (BYTE_TYPE(enc, ptr) == BT_LF)
ptr += MINBPC(enc);
*nextTokPtr = ptr;
return XML_TOK_DATA_NEWLINE;
case BT_LF:
*nextTokPtr = ptr + MINBPC(enc);
return XML_TOK_DATA_NEWLINE;
case BT_RSQB:
ptr += MINBPC(enc);
if (! HAS_CHAR(enc, ptr, end))
return XML_TOK_TRAILING_RSQB;
if (!CHAR_MATCHES(enc, ptr, ASCII_RSQB))
break;
ptr += MINBPC(enc);
if (! HAS_CHAR(enc, ptr, end))
return XML_TOK_TRAILING_RSQB;
if (!CHAR_MATCHES(enc, ptr, ASCII_GT)) {
ptr -= MINBPC(enc);
break;
}
*nextTokPtr = ptr;
return XML_TOK_INVALID;
INVALID_CASES(ptr, nextTokPtr)
default:
ptr += MINBPC(enc);
break;
}
while (HAS_CHAR(enc, ptr, end)) {
switch (BYTE_TYPE(enc, ptr)) {
#define LEAD_CASE(n) \
case BT_LEAD ## n: \
if (end - ptr < n || IS_INVALID_CHAR(enc, ptr, n)) { \
*nextTokPtr = ptr; \
return XML_TOK_DATA_CHARS; \
} \
ptr += n; \
break;
LEAD_CASE(2) LEAD_CASE(3) LEAD_CASE(4)
#undef LEAD_CASE
case BT_RSQB:
if (HAS_CHARS(enc, ptr, end, 2)) {
if (!CHAR_MATCHES(enc, ptr + MINBPC(enc), ASCII_RSQB)) {
ptr += MINBPC(enc);
break;
}
if (HAS_CHARS(enc, ptr, end, 3)) {
if (!CHAR_MATCHES(enc, ptr + 2*MINBPC(enc), ASCII_GT)) {
ptr += MINBPC(enc);
break;
}
*nextTokPtr = ptr + 2*MINBPC(enc);
return XML_TOK_INVALID;
}
}
/* fall through */
case BT_AMP:
case BT_LT:
case BT_NONXML:
case BT_MALFORM:
case BT_TRAIL:
case BT_CR:
case BT_LF:
*nextTokPtr = ptr;
return XML_TOK_DATA_CHARS;
default:
ptr += MINBPC(enc);
break;
}
}
*nextTokPtr = ptr;
return XML_TOK_DATA_CHARS;
}
/* ptr points to character following "%" */
static int PTRCALL
PREFIX(scanPercent)(const ENCODING *enc, const char *ptr, const char *end,
const char **nextTokPtr)
{
REQUIRE_CHAR(enc, ptr, end);
switch (BYTE_TYPE(enc, ptr)) {
CHECK_NMSTRT_CASES(enc, ptr, end, nextTokPtr)
case BT_S: case BT_LF: case BT_CR: case BT_PERCNT:
*nextTokPtr = ptr;
return XML_TOK_PERCENT;
default:
*nextTokPtr = ptr;
return XML_TOK_INVALID;
}
while (HAS_CHAR(enc, ptr, end)) {
switch (BYTE_TYPE(enc, ptr)) {
CHECK_NAME_CASES(enc, ptr, end, nextTokPtr)
case BT_SEMI:
*nextTokPtr = ptr + MINBPC(enc);
return XML_TOK_PARAM_ENTITY_REF;
default:
*nextTokPtr = ptr;
return XML_TOK_INVALID;
}
}
return XML_TOK_PARTIAL;
}
static int PTRCALL
PREFIX(scanPoundName)(const ENCODING *enc, const char *ptr, const char *end,
const char **nextTokPtr)
{
REQUIRE_CHAR(enc, ptr, end);
switch (BYTE_TYPE(enc, ptr)) {
CHECK_NMSTRT_CASES(enc, ptr, end, nextTokPtr)
default:
*nextTokPtr = ptr;
return XML_TOK_INVALID;
}
while (HAS_CHAR(enc, ptr, end)) {
switch (BYTE_TYPE(enc, ptr)) {
CHECK_NAME_CASES(enc, ptr, end, nextTokPtr)
case BT_CR: case BT_LF: case BT_S:
case BT_RPAR: case BT_GT: case BT_PERCNT: case BT_VERBAR:
*nextTokPtr = ptr;
return XML_TOK_POUND_NAME;
default:
*nextTokPtr = ptr;
return XML_TOK_INVALID;
}
}
return -XML_TOK_POUND_NAME;
}
static int PTRCALL
PREFIX(scanLit)(int open, const ENCODING *enc,
const char *ptr, const char *end,
const char **nextTokPtr)
{
while (HAS_CHAR(enc, ptr, end)) {
int t = BYTE_TYPE(enc, ptr);
switch (t) {
INVALID_CASES(ptr, nextTokPtr)
case BT_QUOT:
case BT_APOS:
ptr += MINBPC(enc);
if (t != open)
break;
if (! HAS_CHAR(enc, ptr, end))
return -XML_TOK_LITERAL;
*nextTokPtr = ptr;
switch (BYTE_TYPE(enc, ptr)) {
case BT_S: case BT_CR: case BT_LF:
case BT_GT: case BT_PERCNT: case BT_LSQB:
return XML_TOK_LITERAL;
default:
return XML_TOK_INVALID;
}
default:
ptr += MINBPC(enc);
break;
}
}
return XML_TOK_PARTIAL;
}
static int PTRCALL
PREFIX(prologTok)(const ENCODING *enc, const char *ptr, const char *end,
const char **nextTokPtr)
{
int tok;
if (ptr >= end)
return XML_TOK_NONE;
if (MINBPC(enc) > 1) {
size_t n = end - ptr;
if (n & (MINBPC(enc) - 1)) {
n &= ~(MINBPC(enc) - 1);
if (n == 0)
return XML_TOK_PARTIAL;
end = ptr + n;
}
}
switch (BYTE_TYPE(enc, ptr)) {
case BT_QUOT:
return PREFIX(scanLit)(BT_QUOT, enc, ptr + MINBPC(enc), end, nextTokPtr);
case BT_APOS:
return PREFIX(scanLit)(BT_APOS, enc, ptr + MINBPC(enc), end, nextTokPtr);
case BT_LT:
{
ptr += MINBPC(enc);
REQUIRE_CHAR(enc, ptr, end);
switch (BYTE_TYPE(enc, ptr)) {
case BT_EXCL:
return PREFIX(scanDecl)(enc, ptr + MINBPC(enc), end, nextTokPtr);
case BT_QUEST:
return PREFIX(scanPi)(enc, ptr + MINBPC(enc), end, nextTokPtr);
case BT_NMSTRT:
case BT_HEX:
case BT_NONASCII:
case BT_LEAD2:
case BT_LEAD3:
case BT_LEAD4:
*nextTokPtr = ptr - MINBPC(enc);
return XML_TOK_INSTANCE_START;
}
*nextTokPtr = ptr;
return XML_TOK_INVALID;
}
case BT_CR:
if (ptr + MINBPC(enc) == end) {
*nextTokPtr = end;
/* indicate that this might be part of a CR/LF pair */
return -XML_TOK_PROLOG_S;
}
/* fall through */
case BT_S: case BT_LF:
for (;;) {
ptr += MINBPC(enc);
if (! HAS_CHAR(enc, ptr, end))
break;
switch (BYTE_TYPE(enc, ptr)) {
case BT_S: case BT_LF:
break;
case BT_CR:
/* don't split CR/LF pair */
if (ptr + MINBPC(enc) != end)
break;
/* fall through */
default:
*nextTokPtr = ptr;
return XML_TOK_PROLOG_S;
}
}
*nextTokPtr = ptr;
return XML_TOK_PROLOG_S;
case BT_PERCNT:
return PREFIX(scanPercent)(enc, ptr + MINBPC(enc), end, nextTokPtr);
case BT_COMMA:
*nextTokPtr = ptr + MINBPC(enc);
return XML_TOK_COMMA;
case BT_LSQB:
*nextTokPtr = ptr + MINBPC(enc);
return XML_TOK_OPEN_BRACKET;
case BT_RSQB:
ptr += MINBPC(enc);
if (! HAS_CHAR(enc, ptr, end))
return -XML_TOK_CLOSE_BRACKET;
if (CHAR_MATCHES(enc, ptr, ASCII_RSQB)) {
REQUIRE_CHARS(enc, ptr, end, 2);
if (CHAR_MATCHES(enc, ptr + MINBPC(enc), ASCII_GT)) {
*nextTokPtr = ptr + 2*MINBPC(enc);
return XML_TOK_COND_SECT_CLOSE;
}
}
*nextTokPtr = ptr;
return XML_TOK_CLOSE_BRACKET;
case BT_LPAR:
*nextTokPtr = ptr + MINBPC(enc);
return XML_TOK_OPEN_PAREN;
case BT_RPAR:
ptr += MINBPC(enc);
if (! HAS_CHAR(enc, ptr, end))
return -XML_TOK_CLOSE_PAREN;
switch (BYTE_TYPE(enc, ptr)) {
case BT_AST:
*nextTokPtr = ptr + MINBPC(enc);
return XML_TOK_CLOSE_PAREN_ASTERISK;
case BT_QUEST:
*nextTokPtr = ptr + MINBPC(enc);
return XML_TOK_CLOSE_PAREN_QUESTION;
case BT_PLUS:
*nextTokPtr = ptr + MINBPC(enc);
return XML_TOK_CLOSE_PAREN_PLUS;
case BT_CR: case BT_LF: case BT_S:
case BT_GT: case BT_COMMA: case BT_VERBAR:
case BT_RPAR:
*nextTokPtr = ptr;
return XML_TOK_CLOSE_PAREN;
}
*nextTokPtr = ptr;
return XML_TOK_INVALID;
case BT_VERBAR:
*nextTokPtr = ptr + MINBPC(enc);
return XML_TOK_OR;
case BT_GT:
*nextTokPtr = ptr + MINBPC(enc);
return XML_TOK_DECL_CLOSE;
case BT_NUM:
return PREFIX(scanPoundName)(enc, ptr + MINBPC(enc), end, nextTokPtr);
#define LEAD_CASE(n) \
case BT_LEAD ## n: \
if (end - ptr < n) \
return XML_TOK_PARTIAL_CHAR; \
if (IS_NMSTRT_CHAR(enc, ptr, n)) { \
ptr += n; \
tok = XML_TOK_NAME; \
break; \
} \
if (IS_NAME_CHAR(enc, ptr, n)) { \
ptr += n; \
tok = XML_TOK_NMTOKEN; \
break; \
} \
*nextTokPtr = ptr; \
return XML_TOK_INVALID;
LEAD_CASE(2) LEAD_CASE(3) LEAD_CASE(4)
#undef LEAD_CASE
case BT_NMSTRT:
case BT_HEX:
tok = XML_TOK_NAME;
ptr += MINBPC(enc);
break;
case BT_DIGIT:
case BT_NAME:
case BT_MINUS:
#ifdef XML_NS
case BT_COLON:
#endif
tok = XML_TOK_NMTOKEN;
ptr += MINBPC(enc);
break;
case BT_NONASCII:
if (IS_NMSTRT_CHAR_MINBPC(enc, ptr)) {
ptr += MINBPC(enc);
tok = XML_TOK_NAME;
break;
}
if (IS_NAME_CHAR_MINBPC(enc, ptr)) {
ptr += MINBPC(enc);
tok = XML_TOK_NMTOKEN;
break;
}
/* fall through */
default:
*nextTokPtr = ptr;
return XML_TOK_INVALID;
}
while (HAS_CHAR(enc, ptr, end)) {
switch (BYTE_TYPE(enc, ptr)) {
CHECK_NAME_CASES(enc, ptr, end, nextTokPtr)
case BT_GT: case BT_RPAR: case BT_COMMA:
case BT_VERBAR: case BT_LSQB: case BT_PERCNT:
case BT_S: case BT_CR: case BT_LF:
*nextTokPtr = ptr;
return tok;
#ifdef XML_NS
case BT_COLON:
ptr += MINBPC(enc);
switch (tok) {
case XML_TOK_NAME:
REQUIRE_CHAR(enc, ptr, end);
tok = XML_TOK_PREFIXED_NAME;
switch (BYTE_TYPE(enc, ptr)) {
CHECK_NAME_CASES(enc, ptr, end, nextTokPtr)
default:
tok = XML_TOK_NMTOKEN;
break;
}
break;
case XML_TOK_PREFIXED_NAME:
tok = XML_TOK_NMTOKEN;
break;
}
break;
#endif
case BT_PLUS:
if (tok == XML_TOK_NMTOKEN) {
*nextTokPtr = ptr;
return XML_TOK_INVALID;
}
*nextTokPtr = ptr + MINBPC(enc);
return XML_TOK_NAME_PLUS;
case BT_AST:
if (tok == XML_TOK_NMTOKEN) {
*nextTokPtr = ptr;
return XML_TOK_INVALID;
}
*nextTokPtr = ptr + MINBPC(enc);
return XML_TOK_NAME_ASTERISK;
case BT_QUEST:
if (tok == XML_TOK_NMTOKEN) {
*nextTokPtr = ptr;
return XML_TOK_INVALID;
}
*nextTokPtr = ptr + MINBPC(enc);
return XML_TOK_NAME_QUESTION;
default:
*nextTokPtr = ptr;
return XML_TOK_INVALID;
}
}
return -tok;
}
static int PTRCALL
PREFIX(attributeValueTok)(const ENCODING *enc, const char *ptr,
const char *end, const char **nextTokPtr)
{
const char *start;
if (ptr >= end)
return XML_TOK_NONE;
else if (! HAS_CHAR(enc, ptr, end))
return XML_TOK_PARTIAL;
start = ptr;
while (HAS_CHAR(enc, ptr, end)) {
switch (BYTE_TYPE(enc, ptr)) {
#define LEAD_CASE(n) \
case BT_LEAD ## n: ptr += n; break;
LEAD_CASE(2) LEAD_CASE(3) LEAD_CASE(4)
#undef LEAD_CASE
case BT_AMP:
if (ptr == start)
return PREFIX(scanRef)(enc, ptr + MINBPC(enc), end, nextTokPtr);
*nextTokPtr = ptr;
return XML_TOK_DATA_CHARS;
case BT_LT:
/* this is for inside entity references */
*nextTokPtr = ptr;
return XML_TOK_INVALID;
case BT_LF:
if (ptr == start) {
*nextTokPtr = ptr + MINBPC(enc);
return XML_TOK_DATA_NEWLINE;
}
*nextTokPtr = ptr;
return XML_TOK_DATA_CHARS;
case BT_CR:
if (ptr == start) {
ptr += MINBPC(enc);
if (! HAS_CHAR(enc, ptr, end))
return XML_TOK_TRAILING_CR;
if (BYTE_TYPE(enc, ptr) == BT_LF)
ptr += MINBPC(enc);
*nextTokPtr = ptr;
return XML_TOK_DATA_NEWLINE;
}
*nextTokPtr = ptr;
return XML_TOK_DATA_CHARS;
case BT_S:
if (ptr == start) {
*nextTokPtr = ptr + MINBPC(enc);
return XML_TOK_ATTRIBUTE_VALUE_S;
}
*nextTokPtr = ptr;
return XML_TOK_DATA_CHARS;
default:
ptr += MINBPC(enc);
break;
}
}
*nextTokPtr = ptr;
return XML_TOK_DATA_CHARS;
}
static int PTRCALL
PREFIX(entityValueTok)(const ENCODING *enc, const char *ptr,
const char *end, const char **nextTokPtr)
{
const char *start;
if (ptr >= end)
return XML_TOK_NONE;
else if (! HAS_CHAR(enc, ptr, end))
return XML_TOK_PARTIAL;
start = ptr;
while (HAS_CHAR(enc, ptr, end)) {
switch (BYTE_TYPE(enc, ptr)) {
#define LEAD_CASE(n) \
case BT_LEAD ## n: ptr += n; break;
LEAD_CASE(2) LEAD_CASE(3) LEAD_CASE(4)
#undef LEAD_CASE
case BT_AMP:
if (ptr == start)
return PREFIX(scanRef)(enc, ptr + MINBPC(enc), end, nextTokPtr);
*nextTokPtr = ptr;
return XML_TOK_DATA_CHARS;
case BT_PERCNT:
if (ptr == start) {
int tok = PREFIX(scanPercent)(enc, ptr + MINBPC(enc),
end, nextTokPtr);
return (tok == XML_TOK_PERCENT) ? XML_TOK_INVALID : tok;
}
*nextTokPtr = ptr;
return XML_TOK_DATA_CHARS;
case BT_LF:
if (ptr == start) {
*nextTokPtr = ptr + MINBPC(enc);
return XML_TOK_DATA_NEWLINE;
}
*nextTokPtr = ptr;
return XML_TOK_DATA_CHARS;
case BT_CR:
if (ptr == start) {
ptr += MINBPC(enc);
if (! HAS_CHAR(enc, ptr, end))
return XML_TOK_TRAILING_CR;
if (BYTE_TYPE(enc, ptr) == BT_LF)
ptr += MINBPC(enc);
*nextTokPtr = ptr;
return XML_TOK_DATA_NEWLINE;
}
*nextTokPtr = ptr;
return XML_TOK_DATA_CHARS;
default:
ptr += MINBPC(enc);
break;
}
}
*nextTokPtr = ptr;
return XML_TOK_DATA_CHARS;
}
#ifdef XML_DTD
static int PTRCALL
PREFIX(ignoreSectionTok)(const ENCODING *enc, const char *ptr,
const char *end, const char **nextTokPtr)
{
int level = 0;
if (MINBPC(enc) > 1) {
size_t n = end - ptr;
if (n & (MINBPC(enc) - 1)) {
n &= ~(MINBPC(enc) - 1);
end = ptr + n;
}
}
while (HAS_CHAR(enc, ptr, end)) {
switch (BYTE_TYPE(enc, ptr)) {
INVALID_CASES(ptr, nextTokPtr)
case BT_LT:
ptr += MINBPC(enc);
REQUIRE_CHAR(enc, ptr, end);
if (CHAR_MATCHES(enc, ptr, ASCII_EXCL)) {
ptr += MINBPC(enc);
REQUIRE_CHAR(enc, ptr, end);
if (CHAR_MATCHES(enc, ptr, ASCII_LSQB)) {
++level;
ptr += MINBPC(enc);
}
}
break;
case BT_RSQB:
ptr += MINBPC(enc);
REQUIRE_CHAR(enc, ptr, end);
if (CHAR_MATCHES(enc, ptr, ASCII_RSQB)) {
ptr += MINBPC(enc);
REQUIRE_CHAR(enc, ptr, end);
if (CHAR_MATCHES(enc, ptr, ASCII_GT)) {
ptr += MINBPC(enc);
if (level == 0) {
*nextTokPtr = ptr;
return XML_TOK_IGNORE_SECT;
}
--level;
}
}
break;
default:
ptr += MINBPC(enc);
break;
}
}
return XML_TOK_PARTIAL;
}
#endif /* XML_DTD */
static int PTRCALL
PREFIX(isPublicId)(const ENCODING *enc, const char *ptr, const char *end,
const char **badPtr)
{
ptr += MINBPC(enc);
end -= MINBPC(enc);
for (; HAS_CHAR(enc, ptr, end); ptr += MINBPC(enc)) {
switch (BYTE_TYPE(enc, ptr)) {
case BT_DIGIT:
case BT_HEX:
case BT_MINUS:
case BT_APOS:
case BT_LPAR:
case BT_RPAR:
case BT_PLUS:
case BT_COMMA:
case BT_SOL:
case BT_EQUALS:
case BT_QUEST:
case BT_CR:
case BT_LF:
case BT_SEMI:
case BT_EXCL:
case BT_AST:
case BT_PERCNT:
case BT_NUM:
#ifdef XML_NS
case BT_COLON:
#endif
break;
case BT_S:
if (CHAR_MATCHES(enc, ptr, ASCII_TAB)) {
*badPtr = ptr;
return 0;
}
break;
case BT_NAME:
case BT_NMSTRT:
if (!(BYTE_TO_ASCII(enc, ptr) & ~0x7f))
break;
/* fall through */
default:
switch (BYTE_TO_ASCII(enc, ptr)) {
case 0x24: /* $ */
case 0x40: /* @ */
break;
default:
*badPtr = ptr;
return 0;
}
break;
}
}
return 1;
}
/* This must only be called for a well-formed start-tag or empty
element tag. Returns the number of attributes. Pointers to the
first attsMax attributes are stored in atts.
*/
static int PTRCALL
PREFIX(getAtts)(const ENCODING *enc, const char *ptr,
int attsMax, ATTRIBUTE *atts)
{
enum { other, inName, inValue } state = inName;
int nAtts = 0;
int open = 0; /* defined when state == inValue;
initialization just to shut up compilers */
for (ptr += MINBPC(enc);; ptr += MINBPC(enc)) {
switch (BYTE_TYPE(enc, ptr)) {
#define START_NAME \
if (state == other) { \
if (nAtts < attsMax) { \
atts[nAtts].name = ptr; \
atts[nAtts].normalized = 1; \
} \
state = inName; \
}
#define LEAD_CASE(n) \
case BT_LEAD ## n: START_NAME ptr += (n - MINBPC(enc)); break;
LEAD_CASE(2) LEAD_CASE(3) LEAD_CASE(4)
#undef LEAD_CASE
case BT_NONASCII:
case BT_NMSTRT:
case BT_HEX:
START_NAME
break;
#undef START_NAME
case BT_QUOT:
if (state != inValue) {
if (nAtts < attsMax)
atts[nAtts].valuePtr = ptr + MINBPC(enc);
state = inValue;
open = BT_QUOT;
}
else if (open == BT_QUOT) {
state = other;
if (nAtts < attsMax)
atts[nAtts].valueEnd = ptr;
nAtts++;
}
break;
case BT_APOS:
if (state != inValue) {
if (nAtts < attsMax)
atts[nAtts].valuePtr = ptr + MINBPC(enc);
state = inValue;
open = BT_APOS;
}
else if (open == BT_APOS) {
state = other;
if (nAtts < attsMax)
atts[nAtts].valueEnd = ptr;
nAtts++;
}
break;
case BT_AMP:
if (nAtts < attsMax)
atts[nAtts].normalized = 0;
break;
case BT_S:
if (state == inName)
state = other;
else if (state == inValue
&& nAtts < attsMax
&& atts[nAtts].normalized
&& (ptr == atts[nAtts].valuePtr
|| BYTE_TO_ASCII(enc, ptr) != ASCII_SPACE
|| BYTE_TO_ASCII(enc, ptr + MINBPC(enc)) == ASCII_SPACE
|| BYTE_TYPE(enc, ptr + MINBPC(enc)) == open))
atts[nAtts].normalized = 0;
break;
case BT_CR: case BT_LF:
/* This case ensures that the first attribute name is counted
Apart from that we could just change state on the quote. */
if (state == inName)
state = other;
else if (state == inValue && nAtts < attsMax)
atts[nAtts].normalized = 0;
break;
case BT_GT:
case BT_SOL:
if (state != inValue)
return nAtts;
break;
default:
break;
}
}
/* not reached */
}
static int PTRFASTCALL
PREFIX(charRefNumber)(const ENCODING *UNUSED_P(enc), const char *ptr)
{
int result = 0;
/* skip &# */
ptr += 2*MINBPC(enc);
if (CHAR_MATCHES(enc, ptr, ASCII_x)) {
for (ptr += MINBPC(enc);
!CHAR_MATCHES(enc, ptr, ASCII_SEMI);
ptr += MINBPC(enc)) {
int c = BYTE_TO_ASCII(enc, ptr);
switch (c) {
case ASCII_0: case ASCII_1: case ASCII_2: case ASCII_3: case ASCII_4:
case ASCII_5: case ASCII_6: case ASCII_7: case ASCII_8: case ASCII_9:
result <<= 4;
result |= (c - ASCII_0);
break;
case ASCII_A: case ASCII_B: case ASCII_C:
case ASCII_D: case ASCII_E: case ASCII_F:
result <<= 4;
result += 10 + (c - ASCII_A);
break;
case ASCII_a: case ASCII_b: case ASCII_c:
case ASCII_d: case ASCII_e: case ASCII_f:
result <<= 4;
result += 10 + (c - ASCII_a);
break;
}
if (result >= 0x110000)
return -1;
}
}
else {
for (; !CHAR_MATCHES(enc, ptr, ASCII_SEMI); ptr += MINBPC(enc)) {
int c = BYTE_TO_ASCII(enc, ptr);
result *= 10;
result += (c - ASCII_0);
if (result >= 0x110000)
return -1;
}
}
return checkCharRefNumber(result);
}
static int PTRCALL
PREFIX(predefinedEntityName)(const ENCODING *UNUSED_P(enc), const char *ptr,
const char *end)
{
switch ((end - ptr)/MINBPC(enc)) {
case 2:
if (CHAR_MATCHES(enc, ptr + MINBPC(enc), ASCII_t)) {
switch (BYTE_TO_ASCII(enc, ptr)) {
case ASCII_l:
return ASCII_LT;
case ASCII_g:
return ASCII_GT;
}
}
break;
case 3:
if (CHAR_MATCHES(enc, ptr, ASCII_a)) {
ptr += MINBPC(enc);
if (CHAR_MATCHES(enc, ptr, ASCII_m)) {
ptr += MINBPC(enc);
if (CHAR_MATCHES(enc, ptr, ASCII_p))
return ASCII_AMP;
}
}
break;
case 4:
switch (BYTE_TO_ASCII(enc, ptr)) {
case ASCII_q:
ptr += MINBPC(enc);
if (CHAR_MATCHES(enc, ptr, ASCII_u)) {
ptr += MINBPC(enc);
if (CHAR_MATCHES(enc, ptr, ASCII_o)) {
ptr += MINBPC(enc);
if (CHAR_MATCHES(enc, ptr, ASCII_t))
return ASCII_QUOT;
}
}
break;
case ASCII_a:
ptr += MINBPC(enc);
if (CHAR_MATCHES(enc, ptr, ASCII_p)) {
ptr += MINBPC(enc);
if (CHAR_MATCHES(enc, ptr, ASCII_o)) {
ptr += MINBPC(enc);
if (CHAR_MATCHES(enc, ptr, ASCII_s))
return ASCII_APOS;
}
}
break;
}
}
return 0;
}
static int PTRCALL
PREFIX(sameName)(const ENCODING *enc, const char *ptr1, const char *ptr2)
{
for (;;) {
switch (BYTE_TYPE(enc, ptr1)) {
#define LEAD_CASE(n) \
case BT_LEAD ## n: \
if (*ptr1++ != *ptr2++) \
return 0;
LEAD_CASE(4) LEAD_CASE(3) LEAD_CASE(2)
#undef LEAD_CASE
/* fall through */
if (*ptr1++ != *ptr2++)
return 0;
break;
case BT_NONASCII:
case BT_NMSTRT:
#ifdef XML_NS
case BT_COLON:
#endif
case BT_HEX:
case BT_DIGIT:
case BT_NAME:
case BT_MINUS:
if (*ptr2++ != *ptr1++)
return 0;
if (MINBPC(enc) > 1) {
if (*ptr2++ != *ptr1++)
return 0;
if (MINBPC(enc) > 2) {
if (*ptr2++ != *ptr1++)
return 0;
if (MINBPC(enc) > 3) {
if (*ptr2++ != *ptr1++)
return 0;
}
}
}
break;
default:
if (MINBPC(enc) == 1 && *ptr1 == *ptr2)
return 1;
switch (BYTE_TYPE(enc, ptr2)) {
case BT_LEAD2:
case BT_LEAD3:
case BT_LEAD4:
case BT_NONASCII:
case BT_NMSTRT:
#ifdef XML_NS
case BT_COLON:
#endif
case BT_HEX:
case BT_DIGIT:
case BT_NAME:
case BT_MINUS:
return 0;
default:
return 1;
}
}
}
/* not reached */
}
static int PTRCALL
PREFIX(nameMatchesAscii)(const ENCODING *UNUSED_P(enc), const char *ptr1,
const char *end1, const char *ptr2)
{
for (; *ptr2; ptr1 += MINBPC(enc), ptr2++) {
if (end1 - ptr1 < MINBPC(enc))
return 0;
if (!CHAR_MATCHES(enc, ptr1, *ptr2))
return 0;
}
return ptr1 == end1;
}
static int PTRFASTCALL
PREFIX(nameLength)(const ENCODING *enc, const char *ptr)
{
const char *start = ptr;
for (;;) {
switch (BYTE_TYPE(enc, ptr)) {
#define LEAD_CASE(n) \
case BT_LEAD ## n: ptr += n; break;
LEAD_CASE(2) LEAD_CASE(3) LEAD_CASE(4)
#undef LEAD_CASE
case BT_NONASCII:
case BT_NMSTRT:
#ifdef XML_NS
case BT_COLON:
#endif
case BT_HEX:
case BT_DIGIT:
case BT_NAME:
case BT_MINUS:
ptr += MINBPC(enc);
break;
default:
return (int)(ptr - start);
}
}
}
static const char * PTRFASTCALL
PREFIX(skipS)(const ENCODING *enc, const char *ptr)
{
for (;;) {
switch (BYTE_TYPE(enc, ptr)) {
case BT_LF:
case BT_CR:
case BT_S:
ptr += MINBPC(enc);
break;
default:
return ptr;
}
}
}
static void PTRCALL
PREFIX(updatePosition)(const ENCODING *enc,
const char *ptr,
const char *end,
POSITION *pos)
{
while (HAS_CHAR(enc, ptr, end)) {
switch (BYTE_TYPE(enc, ptr)) {
#define LEAD_CASE(n) \
case BT_LEAD ## n: \
ptr += n; \
break;
LEAD_CASE(2) LEAD_CASE(3) LEAD_CASE(4)
#undef LEAD_CASE
case BT_LF:
pos->columnNumber = (XML_Size)-1;
pos->lineNumber++;
ptr += MINBPC(enc);
break;
case BT_CR:
pos->lineNumber++;
ptr += MINBPC(enc);
if (HAS_CHAR(enc, ptr, end) && BYTE_TYPE(enc, ptr) == BT_LF)
ptr += MINBPC(enc);
pos->columnNumber = (XML_Size)-1;
break;
default:
ptr += MINBPC(enc);
break;
}
pos->columnNumber++;
}
}
#undef DO_LEAD_CASE
#undef MULTIBYTE_CASES
#undef INVALID_CASES
#undef CHECK_NAME_CASE
#undef CHECK_NAME_CASES
#undef CHECK_NMSTRT_CASE
#undef CHECK_NMSTRT_CASES
#endif /* XML_TOK_IMPL_C */
|
the_stack_data/141646.c | extern void __VERIFIER_error() __attribute__ ((__noreturn__));
extern int __VERIFIER_nondet_int(void);
extern int printf (__const char *__restrict __format, ...);
/* Generated by CIL v. 1.3.7 */
/* print_CIL_Input is true */
struct JoinPoint {
void **(*fp)(struct JoinPoint * ) ;
void **args ;
int argsCount ;
char const **argsType ;
void *(*arg)(int , struct JoinPoint * ) ;
char const *(*argType)(int , struct JoinPoint * ) ;
void **retValue ;
char const *retType ;
char const *funcName ;
char const *targetName ;
char const *fileName ;
char const *kind ;
void *excep_return ;
};
struct __UTAC__CFLOW_FUNC {
int (*func)(int , int ) ;
int val ;
struct __UTAC__CFLOW_FUNC *next ;
};
struct __UTAC__EXCEPTION {
void *jumpbuf ;
unsigned long long prtValue ;
int pops ;
struct __UTAC__CFLOW_FUNC *cflowfuncs ;
};
typedef unsigned int size_t;
struct __ACC__ERR {
void *v ;
struct __ACC__ERR *next ;
};
#pragma merger(0,"Environment.i","")
void lowerWaterLevel(void) ;
void waterRise(void) ;
void changeMethaneLevel(void) ;
int isMethaneLevelCritical(void) ;
int getWaterLevel(void) ;
void printEnvironment(void) ;
int waterLevel = 1;
int methaneLevelCritical = 0;
void lowerWaterLevel(void)
{
{
if (waterLevel > 0) {
waterLevel = waterLevel - 1;
} else {
}
return;
}
}
void waterRise(void)
{
{
if (waterLevel < 2) {
waterLevel = waterLevel + 1;
} else {
}
return;
}
}
void changeMethaneLevel(void)
{
{
if (methaneLevelCritical) {
methaneLevelCritical = 0;
} else {
methaneLevelCritical = 1;
}
return;
}
}
int isMethaneLevelCritical(void)
{ int retValue_acc ;
{
retValue_acc = methaneLevelCritical;
return (retValue_acc);
return (retValue_acc);
}
}
void printEnvironment(void)
{
{
{
printf("Env(Water:%i", waterLevel);
printf(",Meth:");
}
if (methaneLevelCritical) {
{
printf("CRIT");
}
} else {
{
printf("OK");
}
}
{
printf(")");
}
return;
}
}
int getWaterLevel(void)
{ int retValue_acc ;
{
retValue_acc = waterLevel;
return (retValue_acc);
return (retValue_acc);
}
}
#pragma merger(0,"libacc.i","")
extern __attribute__((__nothrow__, __noreturn__)) void __assert_fail(char const *__assertion ,
char const *__file ,
unsigned int __line ,
char const *__function ) ;
extern __attribute__((__nothrow__)) void *malloc(size_t __size ) __attribute__((__malloc__)) ;
extern __attribute__((__nothrow__)) void free(void *__ptr ) ;
void __utac__exception__cf_handler_set(void *exception , int (*cflow_func)(int ,
int ) ,
int val )
{ struct __UTAC__EXCEPTION *excep ;
struct __UTAC__CFLOW_FUNC *cf ;
void *tmp ;
unsigned long __cil_tmp7 ;
unsigned long __cil_tmp8 ;
unsigned long __cil_tmp9 ;
unsigned long __cil_tmp10 ;
unsigned long __cil_tmp11 ;
unsigned long __cil_tmp12 ;
unsigned long __cil_tmp13 ;
unsigned long __cil_tmp14 ;
int (**mem_15)(int , int ) ;
int *mem_16 ;
struct __UTAC__CFLOW_FUNC **mem_17 ;
struct __UTAC__CFLOW_FUNC **mem_18 ;
struct __UTAC__CFLOW_FUNC **mem_19 ;
{
{
excep = (struct __UTAC__EXCEPTION *)exception;
tmp = malloc(24UL);
cf = (struct __UTAC__CFLOW_FUNC *)tmp;
mem_15 = (int (**)(int , int ))cf;
*mem_15 = cflow_func;
__cil_tmp7 = (unsigned long )cf;
__cil_tmp8 = __cil_tmp7 + 8;
mem_16 = (int *)__cil_tmp8;
*mem_16 = val;
__cil_tmp9 = (unsigned long )cf;
__cil_tmp10 = __cil_tmp9 + 16;
__cil_tmp11 = (unsigned long )excep;
__cil_tmp12 = __cil_tmp11 + 24;
mem_17 = (struct __UTAC__CFLOW_FUNC **)__cil_tmp10;
mem_18 = (struct __UTAC__CFLOW_FUNC **)__cil_tmp12;
*mem_17 = *mem_18;
__cil_tmp13 = (unsigned long )excep;
__cil_tmp14 = __cil_tmp13 + 24;
mem_19 = (struct __UTAC__CFLOW_FUNC **)__cil_tmp14;
*mem_19 = cf;
}
return;
}
}
void __utac__exception__cf_handler_free(void *exception )
{ struct __UTAC__EXCEPTION *excep ;
struct __UTAC__CFLOW_FUNC *cf ;
struct __UTAC__CFLOW_FUNC *tmp ;
unsigned long __cil_tmp5 ;
unsigned long __cil_tmp6 ;
struct __UTAC__CFLOW_FUNC *__cil_tmp7 ;
unsigned long __cil_tmp8 ;
unsigned long __cil_tmp9 ;
unsigned long __cil_tmp10 ;
unsigned long __cil_tmp11 ;
void *__cil_tmp12 ;
unsigned long __cil_tmp13 ;
unsigned long __cil_tmp14 ;
struct __UTAC__CFLOW_FUNC **mem_15 ;
struct __UTAC__CFLOW_FUNC **mem_16 ;
struct __UTAC__CFLOW_FUNC **mem_17 ;
{
excep = (struct __UTAC__EXCEPTION *)exception;
__cil_tmp5 = (unsigned long )excep;
__cil_tmp6 = __cil_tmp5 + 24;
mem_15 = (struct __UTAC__CFLOW_FUNC **)__cil_tmp6;
cf = *mem_15;
{
while (1) {
while_0_continue: /* CIL Label */ ;
{
__cil_tmp7 = (struct __UTAC__CFLOW_FUNC *)0;
__cil_tmp8 = (unsigned long )__cil_tmp7;
__cil_tmp9 = (unsigned long )cf;
if (__cil_tmp9 != __cil_tmp8) {
} else {
goto while_0_break;
}
}
{
tmp = cf;
__cil_tmp10 = (unsigned long )cf;
__cil_tmp11 = __cil_tmp10 + 16;
mem_16 = (struct __UTAC__CFLOW_FUNC **)__cil_tmp11;
cf = *mem_16;
__cil_tmp12 = (void *)tmp;
free(__cil_tmp12);
}
}
while_0_break: /* CIL Label */ ;
}
__cil_tmp13 = (unsigned long )excep;
__cil_tmp14 = __cil_tmp13 + 24;
mem_17 = (struct __UTAC__CFLOW_FUNC **)__cil_tmp14;
*mem_17 = (struct __UTAC__CFLOW_FUNC *)0;
return;
}
}
void __utac__exception__cf_handler_reset(void *exception )
{ struct __UTAC__EXCEPTION *excep ;
struct __UTAC__CFLOW_FUNC *cf ;
unsigned long __cil_tmp5 ;
unsigned long __cil_tmp6 ;
struct __UTAC__CFLOW_FUNC *__cil_tmp7 ;
unsigned long __cil_tmp8 ;
unsigned long __cil_tmp9 ;
int (*__cil_tmp10)(int , int ) ;
unsigned long __cil_tmp11 ;
unsigned long __cil_tmp12 ;
int __cil_tmp13 ;
unsigned long __cil_tmp14 ;
unsigned long __cil_tmp15 ;
struct __UTAC__CFLOW_FUNC **mem_16 ;
int (**mem_17)(int , int ) ;
int *mem_18 ;
struct __UTAC__CFLOW_FUNC **mem_19 ;
{
excep = (struct __UTAC__EXCEPTION *)exception;
__cil_tmp5 = (unsigned long )excep;
__cil_tmp6 = __cil_tmp5 + 24;
mem_16 = (struct __UTAC__CFLOW_FUNC **)__cil_tmp6;
cf = *mem_16;
{
while (1) {
while_1_continue: /* CIL Label */ ;
{
__cil_tmp7 = (struct __UTAC__CFLOW_FUNC *)0;
__cil_tmp8 = (unsigned long )__cil_tmp7;
__cil_tmp9 = (unsigned long )cf;
if (__cil_tmp9 != __cil_tmp8) {
} else {
goto while_1_break;
}
}
{
mem_17 = (int (**)(int , int ))cf;
__cil_tmp10 = *mem_17;
__cil_tmp11 = (unsigned long )cf;
__cil_tmp12 = __cil_tmp11 + 8;
mem_18 = (int *)__cil_tmp12;
__cil_tmp13 = *mem_18;
(*__cil_tmp10)(4, __cil_tmp13);
__cil_tmp14 = (unsigned long )cf;
__cil_tmp15 = __cil_tmp14 + 16;
mem_19 = (struct __UTAC__CFLOW_FUNC **)__cil_tmp15;
cf = *mem_19;
}
}
while_1_break: /* CIL Label */ ;
}
{
__utac__exception__cf_handler_free(exception);
}
return;
}
}
void *__utac__error_stack_mgt(void *env , int mode , int count ) ;
static struct __ACC__ERR *head = (struct __ACC__ERR *)0;
void *__utac__error_stack_mgt(void *env , int mode , int count )
{ void *retValue_acc ;
struct __ACC__ERR *new ;
void *tmp ;
struct __ACC__ERR *temp ;
struct __ACC__ERR *next ;
void *excep ;
unsigned long __cil_tmp10 ;
unsigned long __cil_tmp11 ;
unsigned long __cil_tmp12 ;
unsigned long __cil_tmp13 ;
void *__cil_tmp14 ;
unsigned long __cil_tmp15 ;
unsigned long __cil_tmp16 ;
void *__cil_tmp17 ;
void **mem_18 ;
struct __ACC__ERR **mem_19 ;
struct __ACC__ERR **mem_20 ;
void **mem_21 ;
struct __ACC__ERR **mem_22 ;
void **mem_23 ;
void **mem_24 ;
{
if (count == 0) {
return (retValue_acc);
} else {
}
if (mode == 0) {
{
tmp = malloc(16UL);
new = (struct __ACC__ERR *)tmp;
mem_18 = (void **)new;
*mem_18 = env;
__cil_tmp10 = (unsigned long )new;
__cil_tmp11 = __cil_tmp10 + 8;
mem_19 = (struct __ACC__ERR **)__cil_tmp11;
*mem_19 = head;
head = new;
retValue_acc = (void *)new;
}
return (retValue_acc);
} else {
}
if (mode == 1) {
temp = head;
{
while (1) {
while_2_continue: /* CIL Label */ ;
if (count > 1) {
} else {
goto while_2_break;
}
{
__cil_tmp12 = (unsigned long )temp;
__cil_tmp13 = __cil_tmp12 + 8;
mem_20 = (struct __ACC__ERR **)__cil_tmp13;
next = *mem_20;
mem_21 = (void **)temp;
excep = *mem_21;
__cil_tmp14 = (void *)temp;
free(__cil_tmp14);
__utac__exception__cf_handler_reset(excep);
temp = next;
count = count - 1;
}
}
while_2_break: /* CIL Label */ ;
}
{
__cil_tmp15 = (unsigned long )temp;
__cil_tmp16 = __cil_tmp15 + 8;
mem_22 = (struct __ACC__ERR **)__cil_tmp16;
head = *mem_22;
mem_23 = (void **)temp;
excep = *mem_23;
__cil_tmp17 = (void *)temp;
free(__cil_tmp17);
__utac__exception__cf_handler_reset(excep);
retValue_acc = excep;
}
return (retValue_acc);
} else {
}
if (mode == 2) {
if (head) {
mem_24 = (void **)head;
retValue_acc = *mem_24;
return (retValue_acc);
} else {
retValue_acc = (void *)0;
return (retValue_acc);
}
} else {
}
return (retValue_acc);
}
}
void *__utac__get_this_arg(int i , struct JoinPoint *this )
{ void *retValue_acc ;
unsigned long __cil_tmp4 ;
unsigned long __cil_tmp5 ;
int __cil_tmp6 ;
int __cil_tmp7 ;
unsigned long __cil_tmp8 ;
unsigned long __cil_tmp9 ;
void **__cil_tmp10 ;
void **__cil_tmp11 ;
int *mem_12 ;
void ***mem_13 ;
{
if (i > 0) {
{
__cil_tmp4 = (unsigned long )this;
__cil_tmp5 = __cil_tmp4 + 16;
mem_12 = (int *)__cil_tmp5;
__cil_tmp6 = *mem_12;
if (i <= __cil_tmp6) {
} else {
{
__assert_fail("i > 0 && i <= this->argsCount", "libacc.c",
123U, "__utac__get_this_arg");
}
}
}
} else {
{
__assert_fail("i > 0 && i <= this->argsCount", "libacc.c",
123U, "__utac__get_this_arg");
}
}
__cil_tmp7 = i - 1;
__cil_tmp8 = (unsigned long )this;
__cil_tmp9 = __cil_tmp8 + 8;
mem_13 = (void ***)__cil_tmp9;
__cil_tmp10 = *mem_13;
__cil_tmp11 = __cil_tmp10 + __cil_tmp7;
retValue_acc = *__cil_tmp11;
return (retValue_acc);
return (retValue_acc);
}
}
char const *__utac__get_this_argtype(int i , struct JoinPoint *this )
{ char const *retValue_acc ;
unsigned long __cil_tmp4 ;
unsigned long __cil_tmp5 ;
int __cil_tmp6 ;
int __cil_tmp7 ;
unsigned long __cil_tmp8 ;
unsigned long __cil_tmp9 ;
char const **__cil_tmp10 ;
char const **__cil_tmp11 ;
int *mem_12 ;
char const ***mem_13 ;
{
if (i > 0) {
{
__cil_tmp4 = (unsigned long )this;
__cil_tmp5 = __cil_tmp4 + 16;
mem_12 = (int *)__cil_tmp5;
__cil_tmp6 = *mem_12;
if (i <= __cil_tmp6) {
} else {
{
__assert_fail("i > 0 && i <= this->argsCount", "libacc.c",
131U, "__utac__get_this_argtype");
}
}
}
} else {
{
__assert_fail("i > 0 && i <= this->argsCount", "libacc.c",
131U, "__utac__get_this_argtype");
}
}
__cil_tmp7 = i - 1;
__cil_tmp8 = (unsigned long )this;
__cil_tmp9 = __cil_tmp8 + 24;
mem_13 = (char const ***)__cil_tmp9;
__cil_tmp10 = *mem_13;
__cil_tmp11 = __cil_tmp10 + __cil_tmp7;
retValue_acc = *__cil_tmp11;
return (retValue_acc);
return (retValue_acc);
}
}
#pragma merger(0,"wsllib_check.i","")
void __automaton_fail(void)
{
{
ERROR: __VERIFIER_error();
return;
}
}
#pragma merger(0,"Specification4_spec.i","")
int isPumpRunning(void) ;
inline static void __utac_acc__Specification4_spec__1(void)
{ int tmp ;
int tmp___0 ;
{
{
tmp = getWaterLevel();
}
if (tmp == 0) {
{
tmp___0 = isPumpRunning();
}
if (tmp___0) {
{
__automaton_fail();
}
} else {
}
} else {
}
return;
}
}
#pragma merger(0,"Test.i","")
int cleanupTimeShifts = 4;
void timeShift(void) ;
void cleanup(void)
{ int i ;
int __cil_tmp2 ;
{
{
timeShift();
i = 0;
}
{
while (1) {
while_3_continue: /* CIL Label */ ;
{
__cil_tmp2 = cleanupTimeShifts - 1;
if (i < __cil_tmp2) {
} else {
goto while_3_break;
}
}
{
timeShift();
i = i + 1;
}
}
while_3_break: /* CIL Label */ ;
}
return;
}
}
void printPump(void) ;
void Specification2(void)
{
{
{
timeShift();
printPump();
timeShift();
printPump();
timeShift();
printPump();
waterRise();
printPump();
timeShift();
printPump();
changeMethaneLevel();
printPump();
timeShift();
printPump();
cleanup();
}
return;
}
}
void setup(void)
{
{
return;
}
}
void test(void) ;
void runTest(void)
{
{
{
test();
}
return;
}
}
void select_helpers(void) ;
void select_features(void) ;
int valid_product(void) ;
int main(void)
{ int retValue_acc ;
int tmp ;
{
{
select_helpers();
select_features();
tmp = valid_product();
}
if (tmp) {
{
setup();
runTest();
}
} else {
}
retValue_acc = 0;
return (retValue_acc);
return (retValue_acc);
}
}
#pragma merger(0,"MinePump.i","")
void activatePump(void) ;
void deactivatePump(void) ;
int pumpRunning = 0;
int systemActive = 1;
void processEnvironment(void) ;
void timeShift(void)
{
{
if (pumpRunning) {
{
lowerWaterLevel();
}
} else {
}
if (systemActive) {
{
processEnvironment();
}
} else {
}
{
__utac_acc__Specification4_spec__1();
}
return;
}
}
void processEnvironment__wrappee__methaneQuery(void)
{
{
return;
}
}
int isMethaneAlarm(void) ;
void processEnvironment(void)
{ int tmp ;
{
if (pumpRunning) {
{
tmp = isMethaneAlarm();
}
if (tmp) {
{
deactivatePump();
}
} else {
{
processEnvironment__wrappee__methaneQuery();
}
}
} else {
{
processEnvironment__wrappee__methaneQuery();
}
}
return;
}
}
void activatePump__wrappee__base(void)
{
{
pumpRunning = 1;
return;
}
}
void activatePump(void)
{ int tmp ;
{
{
tmp = isMethaneAlarm();
}
if (tmp) {
} else {
{
activatePump__wrappee__base();
}
}
return;
}
}
void deactivatePump(void)
{
{
pumpRunning = 0;
return;
}
}
int isMethaneAlarm(void)
{ int retValue_acc ;
{
{
retValue_acc = isMethaneLevelCritical();
}
return (retValue_acc);
return (retValue_acc);
}
}
int isPumpRunning(void)
{ int retValue_acc ;
{
retValue_acc = pumpRunning;
return (retValue_acc);
return (retValue_acc);
}
}
void printPump(void)
{
{
{
printf("Pump(System:");
}
if (systemActive) {
{
printf("On");
}
} else {
{
printf("Off");
}
}
{
printf(",Pump:");
}
if (pumpRunning) {
{
printf("On");
}
} else {
{
printf("Off");
}
}
{
printf(") ");
printEnvironment();
printf("\n");
}
return;
}
}
#pragma merger(0,"scenario.i","")
void test(void)
{ int splverifierCounter ;
int tmp ;
int tmp___0 ;
int tmp___1 ;
int tmp___2 ;
{
splverifierCounter = 0;
{
while (1) {
while_4_continue: /* CIL Label */ ;
if (splverifierCounter < 4) {
} else {
goto while_4_break;
}
{
tmp = __VERIFIER_nondet_int();
}
if (tmp) {
{
waterRise();
}
} else {
}
{
tmp___0 = __VERIFIER_nondet_int();
}
if (tmp___0) {
{
changeMethaneLevel();
}
} else {
}
{
tmp___2 = __VERIFIER_nondet_int();
}
if (tmp___2) {
} else {
{
tmp___1 = __VERIFIER_nondet_int();
}
if (tmp___1) {
} else {
}
}
{
timeShift();
}
}
while_4_break: /* CIL Label */ ;
}
{
cleanup();
}
return;
}
}
#pragma merger(0,"featureselect.i","")
int select_one(void) ;
int select_one(void)
{ int retValue_acc ;
int choice = __VERIFIER_nondet_int();
{
retValue_acc = choice;
return (retValue_acc);
return (retValue_acc);
}
}
void select_features(void)
{
{
return;
}
}
void select_helpers(void)
{
{
return;
}
}
int valid_product(void)
{ int retValue_acc ;
{
retValue_acc = 1;
return (retValue_acc);
return (retValue_acc);
}
}
|
the_stack_data/93888731.c | /* Copyright (C) 2000-2018 Free Software Foundation, Inc.
This file is part of the GNU C Library.
The GNU C Library is free software; you can redistribute it and/or
modify it under the terms of the GNU Lesser General Public
License as published by the Free Software Foundation; either
version 2.1 of the License, or (at your option) any later version.
The GNU C Library is distributed in the hope that it will be useful,
but WITHOUT ANY WARRANTY; without even the implied warranty of
MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the GNU
Lesser General Public License for more details.
You should have received a copy of the GNU Lesser General Public
License along with the GNU C Library; if not, see
<http://www.gnu.org/licenses/>. */
#include <spawn.h>
#include <string.h>
/* Get flag word from the attribute structure. */
int
posix_spawnattr_getflags (const posix_spawnattr_t *attr, short int *flags)
{
/* Copy the flag word. */
*flags = attr->__flags;
return 0;
}
|
the_stack_data/668583.c | /**
******************************************************************************
* @file usbd_WebUSB_if.c
* @author MCD Application Team
* @brief Generic media access Layer.
******************************************************************************
* @attention
*
* <h2><center>© Copyright (c) 2015 STMicroelectronics.
* All rights reserved.</center></h2>
*
* This software component is licensed by ST under Ultimate Liberty license
* SLA0044, the "License"; You may not use this file except in compliance with
* the License. You may obtain a copy of the License at:
* www.st.com/SLA0044
*
******************************************************************************
*/
#ifdef USBCON
#ifdef USBD_USE_CDC
/* Includes ------------------------------------------------------------------*/
#include <stdint.h>
#include "usbd_desc.h"
#include "usbd_webusb_if.h"
#include "usbd_ctlreq.h"
#include "bootloader.h"
// =====================================================================
// === WEB USB =======================================================
// =================================================================
USBD_DescriptorsTypeDef USBD_Desc_webusb;
#if defined ( __ICCARM__ ) /*!< IAR Compiler */
#pragma data_alignment=4
#endif
__ALIGN_BEGIN uint8_t USBD_StrDesc[USBD_MAX_STR_DESC_SIZ] __ALIGN_END;
/* USB Device Billboard BOS descriptor Template */
#if (USBD_CLASS_BOS_ENABLED == 1)
#define USB_WEBUSB_SIZ_BOS_DESC 0x1D
__ALIGN_BEGIN uint8_t USBD_WebUSB_BOSDesc[USB_WEBUSB_SIZ_BOS_DESC] __ALIGN_END = {
0x05, /* bLength */
USB_DESC_TYPE_BOS, /* Device Descriptor Type */
USB_WEBUSB_SIZ_BOS_DESC, 0x00, /* Total length of BOS descriptor and all of its sub descs */
0x01, /* The number of separate device capability descriptors in the BOS */
/* ----------- Device Capability Descriptor: PLATFORM ---------- */
0x18, //.bLength
0x10, //.bDescriptorType
0x05, //.bDevCapabilityType
0x00, //.bReserved
0x38, 0xB6, 0x08, 0x34, 0xA9, 0x09, 0xA0, 0x47, 0x8B, 0xFD, 0xA0, 0x76, 0x88, 0x15, 0xB6, 0x65, //.PlatformCapabilityUUID
0x01, 0x00, //.bcdVersion
0x02,
0x00,
};
#endif
#if (USBD_CLASS_USER_STRING_DESC == 1)
/**
* @brief Returns the Class User string descriptor.
* @param speed: Current device speed
* @param idx: index of string descriptor
* @param length: Pointer to data length variable
* @retval Pointer to descriptor buffer
*/
uint8_t *USBD_WebUSB_Class_UserStrDescriptor(USBD_SpeedTypeDef speed, uint8_t idx, uint16_t *length)
{
UNUSED(speed);
switch(idx){
case 10:
USBD_GetString((uint8_t *)"WebUSB Interface", USBD_StrDesc, length);
break;
default:
USBD_GetString((uint8_t *)"UNKNOWN STRING", USBD_StrDesc, length);
break;
}
return USBD_StrDesc;
}
#endif
#if ((USBD_LPM_ENABLED == 1) || (USBD_CLASS_BOS_ENABLED == 1))
/**
* @brief USBD_USR_BOSDescriptor
* return the BOS descriptor
* @param speed : current device speed
* @param length : pointer to data length variable
* @retval pointer to descriptor buffer
*/
uint8_t *USBD_WebUSB_USR_BOSDescriptor(USBD_SpeedTypeDef speed, uint16_t *length)
{
UNUSED(speed);
*length = sizeof(USBD_WebUSB_BOSDesc);
return (uint8_t *)USBD_WebUSB_BOSDesc;
}
#endif
// =====================================================================
// === CDC ===========================================================
// =================================================================
#ifdef USE_USB_HS
#define WebUSB_MAX_PACKET_SIZE USB_OTG_HS_MAX_PACKET_SIZE
#elif defined(USB_OTG_FS) || defined(USB_OTG_FS_MAX_PACKET_SIZE)
#define WebUSB_MAX_PACKET_SIZE USB_OTG_FS_MAX_PACKET_SIZE
#else /* USB */
#define WebUSB_MAX_PACKET_SIZE USB_MAX_EP0_SIZE
#endif
/*
* The value USB_WebUSB_TRANSMIT_TIMEOUT is defined in terms of HAL_GetTick() units.
* Typically it is 1ms value. The timeout determines when we would consider the
* host "too slow" and threat the USB CDC port as disconnected.
*/
#ifndef USB_WebUSB_TRANSMIT_TIMEOUT
#define USB_WebUSB_TRANSMIT_TIMEOUT 3
#endif
/* USBD_CDC Private Variables */
/* USB Device Core CDC handle declaration */
USBD_HandleTypeDef hUSBD_Device_WebUSB;
static bool WebUSB_initialized = false;
/* Received Data over USB are stored in this buffer */
CDC_TransmitQueue_TypeDef WebUSB_TransmitQueue;
CDC_ReceiveQueue_TypeDef WebUSB_ReceiveQueue;
__IO uint32_t lineState_webusb = 0;
__IO bool receivePended_webusb = true;
static uint32_t transmitStart = 0;
#ifdef DTR_TOGGLING_SEQ
/* DTR toggling sequence management */
extern void dtr_togglingHook(uint8_t *buf, uint32_t *len);
uint8_t dtr_toggling = 0;
#endif
/** USBD_CDC Private Function Prototypes */
static int8_t USBD_WebUSB_Init(void);
static int8_t USBD_WebUSB_DeInit(void);
static int8_t USBD_WebUSB_Control(uint8_t cmd, uint8_t *pbuf, uint16_t length);
static int8_t USBD_WebUSB_Receive(uint8_t *pbuf, uint32_t *Len);
static int8_t USBD_WebUSB_TransmitCplt(uint8_t *pbuf, uint32_t *Len, uint8_t epnum);
USBD_WebUSB_ItfTypeDef USBD_WebUSB_fops = {
USBD_WebUSB_Init,
USBD_WebUSB_DeInit,
USBD_WebUSB_Control,
USBD_WebUSB_Receive,
USBD_WebUSB_TransmitCplt
};
USBD_WebUSB_LineCodingTypeDef linecoding_webusb = {
115200, /* baud rate*/
0x00, /* stop bits-1*/
0x00, /* parity - none*/
0x08 /* nb. of bits 8*/
};
void (*webusb_rx_callback)(void) = NULL;
/* Private functions ---------------------------------------------------------*/
/**
* @brief USBD_WebUSB_Init
* Initializes the CDC media low layer
* @param None
* @retval Result of the operation: USBD_OK if all operations are OK else USBD_FAIL
*/
static int8_t USBD_WebUSB_Init(void)
{
/* Set Application Buffers */
CDC_TransmitQueue_Init(&WebUSB_TransmitQueue);
CDC_ReceiveQueue_Init(&WebUSB_ReceiveQueue);
receivePended_webusb = true;
USBD_WebUSB_SetRxBuffer(&hUSBD_Device_WebUSB, CDC_ReceiveQueue_ReserveBlock(&WebUSB_ReceiveQueue));
return ((int8_t)USBD_OK);
}
/**
* @brief USBD_WebUSB_DeInit
* DeInitializes the CDC media low layer
* @param None
* @retval Result of the operation: USBD_OK if all operations are OK else USBD_FAIL
*/
static int8_t USBD_WebUSB_DeInit(void)
{
return ((int8_t)USBD_OK);
}
/**
* @brief USBD_WebUSB_Control
* Manage the CDC class requests
* @param cmd: Command code
* @param pbuf: Buffer containing command data (request parameters)
* @param length: Number of data to be sent (in bytes)
* @retval Result of the operation: USBD_OK if all operations are OK else USBD_FAIL
*/
static int8_t USBD_WebUSB_Control(uint8_t cmd, uint8_t *pbuf, uint16_t length)
{
UNUSED(length);
switch (cmd) {
case WebUSB_SEND_ENCAPSULATED_COMMAND:
break;
case WebUSB_GET_ENCAPSULATED_RESPONSE:
break;
case WebUSB_SET_COMM_FEATURE:
break;
case WebUSB_GET_COMM_FEATURE:
break;
case WebUSB_CLEAR_COMM_FEATURE:
break;
/*******************************************************************************/
/* Line Coding Structure */
/*-----------------------------------------------------------------------------*/
/* Offset | Field | Size | Value | Description */
/* 0 | dwDTERate | 4 | Number |Data terminal rate, in bits per second*/
/* 4 | bCharFormat | 1 | Number | Stop bits */
/* 0 - 1 Stop bit */
/* 1 - 1.5 Stop bits */
/* 2 - 2 Stop bits */
/* 5 | bParityType | 1 | Number | Parity */
/* 0 - None */
/* 1 - Odd */
/* 2 - Even */
/* 3 - Mark */
/* 4 - Space */
/* 6 | bDataBits | 1 | Number Data bits (5, 6, 7, 8 or 16). */
/*******************************************************************************/
case WebUSB_SET_LINE_CODING:
linecoding_webusb.bitrate = (uint32_t)(pbuf[0] | (pbuf[1] << 8) | \
(pbuf[2] << 16) | (pbuf[3] << 24));
linecoding_webusb.format = pbuf[4];
linecoding_webusb.paritytype = pbuf[5];
linecoding_webusb.datatype = pbuf[6];
break;
case WebUSB_GET_LINE_CODING:
pbuf[0] = (uint8_t)(linecoding_webusb.bitrate);
pbuf[1] = (uint8_t)(linecoding_webusb.bitrate >> 8);
pbuf[2] = (uint8_t)(linecoding_webusb.bitrate >> 16);
pbuf[3] = (uint8_t)(linecoding_webusb.bitrate >> 24);
pbuf[4] = linecoding_webusb.format;
pbuf[5] = linecoding_webusb.paritytype;
pbuf[6] = linecoding_webusb.datatype;
break;
case WebUSB_SET_CONTROL_LINE_STATE:
lineState_webusb =
(((USBD_SetupReqTypedef *)pbuf)->wValue & 0x01) != 0; // Check DTR state
if (lineState_webusb) { // Reset the transmit timeout when the port is connected
transmitStart = 0;
}
#ifdef DTR_TOGGLING_SEQ
dtr_toggling++; /* Count DTR toggling */
#endif
break;
case WebUSB_SEND_BREAK:
break;
default:
break;
}
return ((int8_t)USBD_OK);
}
/**
* @brief USBD_WebUSB_Receive
* Data received over USB OUT endpoint are sent over CDC interface
* through this function.
*
* @note
* This function will issue a NAK packet on any OUT packet received on
* USB endpoint until exiting this function. If you exit this function
* before transfer is complete on CDC interface (ie. using DMA controller)
* it will result in receiving more data while previous ones are still
* not sent.
*
* @param Buf: Buffer of data to be received
* @param Len: Number of data received (in bytes)
* @retval Result of the operation: USBD_OK if all operations are OK else USBD_FAIL
*/
static int8_t USBD_WebUSB_Receive(uint8_t *Buf, uint32_t *Len)
{
#ifdef DTR_TOGGLING_SEQ
if (dtr_toggling > 3) {
dtr_togglingHook(Buf, Len);
dtr_toggling = 0;
}
#else
UNUSED(Buf);
#endif
/* It always contains required amount of free space for writing */
CDC_ReceiveQueue_CommitBlock(&WebUSB_ReceiveQueue, (uint16_t)(*Len));
receivePended_webusb = false;
/* If enough space in the queue for a full buffer then continue receive */
if (!webUSB_resume_receive()) {
USBD_WebUSB_ClearBuffer(&hUSBD_Device_WebUSB);
}
if(webusb_rx_callback != NULL){
webusb_rx_callback();
}
return ((int8_t)USBD_OK);
}
/**
* @brief USBD_WebUSB_TransmitCplt
* Data transmited callback
*
* @note
* This function is IN transfer complete callback used to inform user that
* the submitted Data is successfully sent over USB.
*
* @param Buf: Buffer of data to be received
* @param Len: Number of data received (in bytes)
* @retval Result of the operation: USBD_OK if all operations are OK else USBD_FAIL
*/
static int8_t USBD_WebUSB_TransmitCplt(uint8_t *Buf, uint32_t *Len, uint8_t epnum)
{
UNUSED(Buf);
UNUSED(Len);
UNUSED(epnum);
transmitStart = 0;
CDC_TransmitQueue_CommitRead(&WebUSB_TransmitQueue);
webUSB_continue_transmit();
return ((int8_t)USBD_OK);
}
void webUSB_init(void)
{
USBD_Desc_webusb.GetDeviceDescriptor = USBD_Desc.GetDeviceDescriptor;
USBD_Desc_webusb.GetLangIDStrDescriptor = USBD_Desc.GetLangIDStrDescriptor;
USBD_Desc_webusb.GetManufacturerStrDescriptor = USBD_Desc.GetManufacturerStrDescriptor;
USBD_Desc_webusb.GetProductStrDescriptor = USBD_Desc.GetProductStrDescriptor;
USBD_Desc_webusb.GetSerialStrDescriptor = USBD_Desc.GetSerialStrDescriptor;
USBD_Desc_webusb.GetConfigurationStrDescriptor = USBD_Desc.GetConfigurationStrDescriptor;
USBD_Desc_webusb.GetInterfaceStrDescriptor = USBD_Desc.GetInterfaceStrDescriptor;
#if (USBD_CLASS_USER_STRING_DESC == 1)
USBD_Desc_webusb.GetUserStrDescriptor = USBD_WebUSB_Class_UserStrDescriptor;
#endif
#if ((USBD_LPM_ENABLED == 1) || (USBD_CLASS_BOS_ENABLED == 1))
USBD_Desc_webusb.GetBOSDescriptor = USBD_WebUSB_USR_BOSDescriptor;
#endif
if (!WebUSB_initialized) {
/* Init Device Library */
if (USBD_Init(&hUSBD_Device_WebUSB, &USBD_Desc_webusb, 0) == USBD_OK) {
/* Add Supported Class */
if (USBD_RegisterClass(&hUSBD_Device_WebUSB, USBD_WebUSB_CLASS) == USBD_OK) {
/* Add CDC Interface Class */
if (USBD_WebUSB_RegisterInterface(&hUSBD_Device_WebUSB, &USBD_WebUSB_fops) == USBD_OK) {
/* Start Device Process */
USBD_Start(&hUSBD_Device_WebUSB);
WebUSB_initialized = true;
}
}
}
}
}
void webUSB_deInit(void)
{
if (WebUSB_initialized) {
USBD_Stop(&hUSBD_Device_WebUSB);
USBD_WebUSB_DeInit();
USBD_DeInit(&hUSBD_Device_WebUSB);
WebUSB_initialized = false;
}
}
bool webUSB_connected()
{
/* Save the transmitStart value in a local variable to avoid twice reading - fix #478 */
uint32_t transmitTime = transmitStart;
if (transmitTime) {
transmitTime = HAL_GetTick() - transmitTime;
}
return ((hUSBD_Device_WebUSB.dev_state == USBD_STATE_CONFIGURED)
&& (transmitTime < USB_WebUSB_TRANSMIT_TIMEOUT)
&& lineState_webusb);
}
void webUSB_continue_transmit(void)
{
uint16_t size;
uint8_t *buffer;
USBD_WebUSB_HandleTypeDef *hcdc = (USBD_WebUSB_HandleTypeDef *) hUSBD_Device_WebUSB.pClassData;
/*
* TS: This method can be called both in the main thread
* (via USBSerial::write) and in the IRQ stream (via USBD_WebUSB_TransmistCplt),
* BUT the main thread cannot pass this condition while waiting for a IRQ!
* This is not possible because TxState is not zero while waiting for data
* transfer ending! The IRQ thread is uninterrupted, since its priority
* is higher than that of the main thread. So this method is thread safe.
*/
if (hcdc->TxState == 0U) {
buffer = CDC_TransmitQueue_ReadBlock(&WebUSB_TransmitQueue, &size);
if (size > 0) {
transmitStart = HAL_GetTick();
USBD_WebUSB_SetTxBuffer(&hUSBD_Device_WebUSB, buffer, size);
/*
* size never exceed PMA buffer and USBD_WebUSB_TransmitPacket make full
* copy of block in PMA, so no need to worry about buffer damage
*/
USBD_WebUSB_TransmitPacket(&hUSBD_Device_WebUSB);
}
}
}
bool webUSB_resume_receive(void)
{
/*
* TS: main and IRQ threads can't pass it at same time, because
* IRQ may occur only if receivePended_webusb is true. So it is thread-safe!
*/
if (!receivePended_webusb) {
uint8_t *block = CDC_ReceiveQueue_ReserveBlock(&WebUSB_ReceiveQueue);
if (block != NULL) {
receivePended_webusb = true;
/* Set new buffer */
USBD_WebUSB_SetRxBuffer(&hUSBD_Device_WebUSB, block);
USBD_WebUSB_ReceivePacket(&hUSBD_Device_WebUSB);
return true;
}
}
return false;
}
void webUSB_OnDataReceived( void (*callback)(void) ){
webusb_rx_callback = callback;
}
#endif /* USBD_USE_CDC */
#endif /* USBCON */
/************************ (C) COPYRIGHT STMicroelectronics *****END OF FILE****/
|
the_stack_data/540857.c | #include <stdlib.h>
#include <string.h>
static char *get_file_ext(char *file)
{
char *ext;
ext = strrchr(file, '.');
if (ext == NULL || ext == file) return NULL;
return (ext + 1);
}
char *get_object_file(const char *file)
{
char *str;
char *ext;
size_t len;
str = strdup(file);
if (!str) return (NULL);
ext = get_file_ext(str);
if (ext == NULL || *ext == '\0')
{
len = strlen(str);
str = (char *)realloc(str, (len + 3) * sizeof(char));
if (!str) return (NULL);
strcat(str, ".o");
return (str);
}
*ext++ = 'o';
*ext = '\0';
return (str);
}
|
the_stack_data/168892000.c | #include <stdio.h>
extern int foo(void);
extern int bar(void);
typedef int (*func_p) (void);
func_p foo_ptr = foo;
func_p
__attribute__((noinline))
get_bar (void)
{
return bar;
}
int
main (void)
{
func_p bar_ptr = get_bar ();
if (bar_ptr != bar)
__builtin_abort ();
if (bar_ptr() != -1)
__builtin_abort ();
if (bar() != -1)
__builtin_abort ();
if (foo_ptr != foo)
__builtin_abort ();
if (foo_ptr() != 1)
__builtin_abort ();
if (foo() != 1)
__builtin_abort ();
printf ("OK\n");
return 0;
}
|
the_stack_data/788501.c | #include <stdio.h>
int main()
{
for (int i = 1; i <= 100; i++)
printf("%d\n", i);
} |
the_stack_data/681574.c | #include "stdio.h"
#include "stdlib.h"
void readline(char *s, int maxlength) {
int i = 0;
while (1) {
char c = getch();
/* if end of line, finish up */
if (c == '\n') {
putchar('\n');
s[i] = '\0';
return;
}
/* else if backspace... */
else if (c == '\b') {
/* if nothing to delete, beep */
if (i == 0) {
beep();
}
/* else delete it */
else {
printf("\b \b");
i--;
}
}
/* else if bad character or no room for more, beep */
else if (c < 0x20 || i + 1 == maxlength) {
beep();
}
/* else add the character */
else {
s[i++] = c;
putchar(c);
}
}
}
|
the_stack_data/40646.c | #include<stdio.h>
int main()
{
int n,r,c;
printf ("Enter N =");
scanf ("%d",&n);
for (r=1 ; r<=n ; r++)
{
for (c=1 ; c<=n-r ; c++)
{
printf (" ");
}
for (c=1 ; c<=n ; c++)
{
printf ("%d",c);
}
printf("\n");
}
}
|
the_stack_data/67100.c | #include <math.h>
#include <string.h>
void score(double * input, double * output) {
double var0;
var0 = exp((-0.06389634699048878) * ((((pow((5.1) - (input[0]), 2.0)) + (pow((2.5) - (input[1]), 2.0))) + (pow((3.0) - (input[2]), 2.0))) + (pow((1.1) - (input[3]), 2.0))));
double var1;
var1 = exp((-0.06389634699048878) * ((((pow((4.9) - (input[0]), 2.0)) + (pow((2.4) - (input[1]), 2.0))) + (pow((3.3) - (input[2]), 2.0))) + (pow((1.0) - (input[3]), 2.0))));
double var2;
var2 = exp((-0.06389634699048878) * ((((pow((6.3) - (input[0]), 2.0)) + (pow((2.5) - (input[1]), 2.0))) + (pow((4.9) - (input[2]), 2.0))) + (pow((1.5) - (input[3]), 2.0))));
double var3;
var3 = exp((-0.06389634699048878) * ((((pow((5.4) - (input[0]), 2.0)) + (pow((3.0) - (input[1]), 2.0))) + (pow((4.5) - (input[2]), 2.0))) + (pow((1.5) - (input[3]), 2.0))));
double var4;
var4 = exp((-0.06389634699048878) * ((((pow((6.2) - (input[0]), 2.0)) + (pow((2.2) - (input[1]), 2.0))) + (pow((4.5) - (input[2]), 2.0))) + (pow((1.5) - (input[3]), 2.0))));
double var5;
var5 = exp((-0.06389634699048878) * ((((pow((5.6) - (input[0]), 2.0)) + (pow((2.9) - (input[1]), 2.0))) + (pow((3.6) - (input[2]), 2.0))) + (pow((1.3) - (input[3]), 2.0))));
double var6;
var6 = exp((-0.06389634699048878) * ((((pow((6.7) - (input[0]), 2.0)) + (pow((3.0) - (input[1]), 2.0))) + (pow((5.0) - (input[2]), 2.0))) + (pow((1.7) - (input[3]), 2.0))));
double var7;
var7 = exp((-0.06389634699048878) * ((((pow((5.0) - (input[0]), 2.0)) + (pow((2.3) - (input[1]), 2.0))) + (pow((3.3) - (input[2]), 2.0))) + (pow((1.0) - (input[3]), 2.0))));
double var8;
var8 = exp((-0.06389634699048878) * ((((pow((6.0) - (input[0]), 2.0)) + (pow((2.7) - (input[1]), 2.0))) + (pow((5.1) - (input[2]), 2.0))) + (pow((1.6) - (input[3]), 2.0))));
double var9;
var9 = exp((-0.06389634699048878) * ((((pow((5.9) - (input[0]), 2.0)) + (pow((3.2) - (input[1]), 2.0))) + (pow((4.8) - (input[2]), 2.0))) + (pow((1.8) - (input[3]), 2.0))));
double var10;
var10 = exp((-0.06389634699048878) * ((((pow((5.7) - (input[0]), 2.0)) + (pow((2.6) - (input[1]), 2.0))) + (pow((3.5) - (input[2]), 2.0))) + (pow((1.0) - (input[3]), 2.0))));
double var11;
var11 = exp((-0.06389634699048878) * ((((pow((5.0) - (input[0]), 2.0)) + (pow((3.0) - (input[1]), 2.0))) + (pow((1.6) - (input[2]), 2.0))) + (pow((0.2) - (input[3]), 2.0))));
double var12;
var12 = exp((-0.06389634699048878) * ((((pow((5.4) - (input[0]), 2.0)) + (pow((3.4) - (input[1]), 2.0))) + (pow((1.7) - (input[2]), 2.0))) + (pow((0.2) - (input[3]), 2.0))));
double var13;
var13 = exp((-0.06389634699048878) * ((((pow((5.7) - (input[0]), 2.0)) + (pow((3.8) - (input[1]), 2.0))) + (pow((1.7) - (input[2]), 2.0))) + (pow((0.3) - (input[3]), 2.0))));
double var14;
var14 = exp((-0.06389634699048878) * ((((pow((4.8) - (input[0]), 2.0)) + (pow((3.4) - (input[1]), 2.0))) + (pow((1.9) - (input[2]), 2.0))) + (pow((0.2) - (input[3]), 2.0))));
double var15;
var15 = exp((-0.06389634699048878) * ((((pow((4.5) - (input[0]), 2.0)) + (pow((2.3) - (input[1]), 2.0))) + (pow((1.3) - (input[2]), 2.0))) + (pow((0.3) - (input[3]), 2.0))));
double var16;
var16 = exp((-0.06389634699048878) * ((((pow((5.7) - (input[0]), 2.0)) + (pow((4.4) - (input[1]), 2.0))) + (pow((1.5) - (input[2]), 2.0))) + (pow((0.4) - (input[3]), 2.0))));
double var17;
var17 = exp((-0.06389634699048878) * ((((pow((5.1) - (input[0]), 2.0)) + (pow((3.8) - (input[1]), 2.0))) + (pow((1.9) - (input[2]), 2.0))) + (pow((0.4) - (input[3]), 2.0))));
double var18;
var18 = exp((-0.06389634699048878) * ((((pow((5.1) - (input[0]), 2.0)) + (pow((3.3) - (input[1]), 2.0))) + (pow((1.7) - (input[2]), 2.0))) + (pow((0.5) - (input[3]), 2.0))));
double var19;
var19 = exp((-0.06389634699048878) * ((((pow((6.2) - (input[0]), 2.0)) + (pow((2.8) - (input[1]), 2.0))) + (pow((4.8) - (input[2]), 2.0))) + (pow((1.8) - (input[3]), 2.0))));
double var20;
var20 = exp((-0.06389634699048878) * ((((pow((7.2) - (input[0]), 2.0)) + (pow((3.0) - (input[1]), 2.0))) + (pow((5.8) - (input[2]), 2.0))) + (pow((1.6) - (input[3]), 2.0))));
double var21;
var21 = exp((-0.06389634699048878) * ((((pow((6.1) - (input[0]), 2.0)) + (pow((3.0) - (input[1]), 2.0))) + (pow((4.9) - (input[2]), 2.0))) + (pow((1.8) - (input[3]), 2.0))));
double var22;
var22 = exp((-0.06389634699048878) * ((((pow((6.0) - (input[0]), 2.0)) + (pow((3.0) - (input[1]), 2.0))) + (pow((4.8) - (input[2]), 2.0))) + (pow((1.8) - (input[3]), 2.0))));
double var23;
var23 = exp((-0.06389634699048878) * ((((pow((4.9) - (input[0]), 2.0)) + (pow((2.5) - (input[1]), 2.0))) + (pow((4.5) - (input[2]), 2.0))) + (pow((1.7) - (input[3]), 2.0))));
double var24;
var24 = exp((-0.06389634699048878) * ((((pow((7.9) - (input[0]), 2.0)) + (pow((3.8) - (input[1]), 2.0))) + (pow((6.4) - (input[2]), 2.0))) + (pow((2.0) - (input[3]), 2.0))));
double var25;
var25 = exp((-0.06389634699048878) * ((((pow((5.6) - (input[0]), 2.0)) + (pow((2.8) - (input[1]), 2.0))) + (pow((4.9) - (input[2]), 2.0))) + (pow((2.0) - (input[3]), 2.0))));
double var26;
var26 = exp((-0.06389634699048878) * ((((pow((6.0) - (input[0]), 2.0)) + (pow((2.2) - (input[1]), 2.0))) + (pow((5.0) - (input[2]), 2.0))) + (pow((1.5) - (input[3]), 2.0))));
double var27;
var27 = exp((-0.06389634699048878) * ((((pow((6.3) - (input[0]), 2.0)) + (pow((2.8) - (input[1]), 2.0))) + (pow((5.1) - (input[2]), 2.0))) + (pow((1.5) - (input[3]), 2.0))));
memcpy(output, (double[]){(((((((((((((((((((0.11172510039290856) + ((var0) * (-0.8898986041811555))) + ((var1) * (-0.8898986041811555))) + ((var2) * (-0.0))) + ((var3) * (-0.0))) + ((var4) * (-0.0))) + ((var5) * (-0.756413813553974))) + ((var6) * (-0.0))) + ((var7) * (-0.8898986041811555))) + ((var8) * (-0.0))) + ((var9) * (-0.0))) + ((var10) * (-0.8898986041811555))) + ((var11) * (0.04218875216876044))) + ((var12) * (0.7142250613852136))) + ((var13) * (0.0))) + ((var14) * (0.8898986041811555))) + ((var15) * (0.8898986041811555))) + ((var16) * (0.0))) + ((var17) * (0.8898986041811555))) + ((var18) * (0.8898986041811555)), (((((((((((((((((-0.04261957451303831) + ((var19) * (-0.37953658977037247))) + ((var20) * (-0.0))) + ((var21) * (-0.0))) + ((var22) * (-0.37953658977037247))) + ((var23) * (-0.37953658977037247))) + ((var24) * (-0.26472396872040066))) + ((var25) * (-0.3745962010653211))) + ((var26) * (-0.10077618026650095))) + ((var27) * (-0.0))) + ((var11) * (0.0))) + ((var12) * (0.0))) + ((var13) * (0.37953658977037247))) + ((var14) * (0.37953658977037247))) + ((var15) * (0.3044555865539922))) + ((var16) * (0.05610417372785803))) + ((var17) * (0.37953658977037247))) + ((var18) * (0.37953658977037247)), ((((((((((((((((((((1.8136162062461285) + ((var19) * (-110.34516826676301))) + ((var20) * (-13.999391039896215))) + ((var21) * (-108.44329471899991))) + ((var22) * (-110.34516826676301))) + ((var23) * (-22.21095753342801))) + ((var24) * (-0.0))) + ((var25) * (-0.0))) + ((var26) * (-65.00217641452454))) + ((var27) * (-110.34516826676301))) + ((var0) * (0.0))) + ((var1) * (0.0))) + ((var2) * (110.34516826676301))) + ((var3) * (62.115561183470184))) + ((var4) * (37.19509025661546))) + ((var5) * (0.0))) + ((var6) * (110.34516826676301))) + ((var7) * (0.0))) + ((var8) * (110.34516826676301))) + ((var9) * (110.34516826676301))) + ((var10) * (0.0))}, 3 * sizeof(double));
}
|
the_stack_data/973418.c | #include <stdio.h>
#include <string.h>
int intercambia_cadenas(char s[], char t[]){
char aux[1001];
strcpy(aux, s);
strcpy(s, t);
strcpy(t, aux);
return;
}
int main(int argc, char **argv){
FILE *arch_nombres, *arch_salida;
char nombre[1001][11];
int n,i,j;
arch_nombres=fopen(argv[1], "r");
fscanf(arch_nombres,"%d",&n);
for(i=0;i<n;i++){
fscanf(arch_nombres,"%s",nombre[i]);
}
for(i = 0; i < n; i++){
for(j = i; j < n; j++){
if((strcmp(nombre[i], nombre[j])) > 0){
intercambia_cadenas(nombre[i],nombre[j]);
}
}
}
arch_salida=fopen(argv[2], "w");
for(i = 0; i < n; i++){
fprintf(arch_salida,"%s\n", nombre[i]);
}
fclose(arch_nombres);
fclose(arch_salida);
return 0;
}
|
the_stack_data/168893388.c | #include <stdio.h>
int main()
{
int n,m,i,j,k;
scanf("%d",&n);
while (n!=0)
{
m=0;
i=1;
j=n;
while (j)
{
k=j%10;
if (k>4)
k--;
m+=i*k;
i*=9;
j/=10;
}
printf("%d: %d\n",n,m);
scanf("%d",&n);
}
return 0;
}
|
the_stack_data/972790.c | // combinetaggedfn_2.c
// foo will be tagged
int foo(int x);
// wrong type; originally used 'void' but our polymorphism defeats hat
typedef int* (*Func)(int*);
int main()
{
Func f;
int x;
f = (Func)&foo; // make foo tagged
// cast to correct type and invoke
x = ((int (*)(int))f)(3);
return x-4;
}
|
the_stack_data/66288.c | /**************************************************************************
Copyright 1998-1999 Precision Insight, Inc., Cedar Park, Texas.
All Rights Reserved.
Permission is hereby granted, free of charge, to any person obtaining a
copy of this software and associated documentation files (the
"Software"), to deal in the Software without restriction, including
without limitation the rights to use, copy, modify, merge, publish,
distribute, sub license, and/or sell copies of the Software, and to
permit persons to whom the Software is furnished to do so, subject to
the following conditions:
The above copyright notice and this permission notice (including the
next paragraph) shall be included in all copies or substantial portions
of the Software.
THE SOFTWARE IS PROVIDED "AS IS", WITHOUT WARRANTY OF ANY KIND, EXPRESS
OR IMPLIED, INCLUDING BUT NOT LIMITED TO THE WARRANTIES OF
MERCHANTABILITY, FITNESS FOR A PARTICULAR PURPOSE AND NON-INFRINGEMENT.
IN NO EVENT SHALL PRECISION INSIGHT AND/OR ITS SUPPLIERS BE LIABLE FOR
ANY CLAIM, DAMAGES OR OTHER LIABILITY, WHETHER IN AN ACTION OF CONTRACT,
TORT OR OTHERWISE, ARISING FROM, OUT OF OR IN CONNECTION WITH THE
SOFTWARE OR THE USE OR OTHER DEALINGS IN THE SOFTWARE.
**************************************************************************/
/* $XFree86: xc/lib/GL/glx/dri_glx.c,v 1.2 2005/10/14 15:15:55 tsi Exp $ */
/*
* Authors:
* Kevin E. Martin <[email protected]>
* Brian Paul <[email protected]>
*
*/
#ifdef GLX_DIRECT_RENDERING
#include <unistd.h>
#include <X11/Xlibint.h>
#include <X11/extensions/Xext.h>
#include <X11/extensions/extutil.h>
#include "glxclient.h"
#include "xf86dri.h"
#include "sarea.h"
#include <stdio.h>
#include <dlfcn.h>
#include "dri_glx.h"
#include <sys/types.h>
#include <stdarg.h>
#ifndef RTLD_NOW
#define RTLD_NOW 0
#endif
#ifndef RTLD_GLOBAL
#define RTLD_GLOBAL 0
#endif
#ifdef BUILT_IN_DRI_DRIVER
extern void *__driCreateScreen(Display *dpy, int scrn, __DRIscreen *psc,
int numConfigs, __GLXvisualConfig *config);
#else /* BUILT_IN_DRI_DRIVER */
#ifndef DEFAULT_DRIVER_DIR
/* this is normally defined in the Imakefile */
#define DEFAULT_DRIVER_DIR "/usr/X11R6/lib/modules/dri"
#endif
static __DRIdriver *Drivers = NULL;
/*
* printf wrappers
*/
static void InfoMessageF(const char *f, ...)
{
va_list args;
const char *env;
if ((env = getenv("LIBGL_DEBUG")) && strstr(env, "verbose")) {
fprintf(stderr, "libGL: ");
va_start(args, f);
vfprintf(stderr, f, args);
va_end(args);
}
}
static void ErrorMessageF(const char *f, ...)
{
va_list args;
if (getenv("LIBGL_DEBUG")) {
fprintf(stderr, "libGL error: ");
va_start(args, f);
vfprintf(stderr, f, args);
va_end(args);
}
}
/*
* We'll save a pointer to this function when we couldn't find a
* direct rendering driver for a given screen.
*/
static void *DummyCreateScreen(Display *dpy, int scrn, __DRIscreen *psc,
int numConfigs, __GLXvisualConfig *config)
{
(void) dpy;
(void) scrn;
(void) psc;
(void) numConfigs;
(void) config;
return NULL;
}
/*
* Extract the ith directory path out of a colon-separated list of
* paths.
* Input:
* index - index of path to extract (starting at zero)
* paths - the colon-separated list of paths
* dirLen - max length of result to store in <dir>
* Output:
* dir - the extracted directory path, dir[0] will be zero when
* extraction fails.
*/
static void ExtractDir(int index, const char *paths, int dirLen, char *dir)
{
int i, len;
const char *start, *end;
/* find ith colon */
start = paths;
i = 0;
while (i < index) {
if (*start == ':') {
i++;
start++;
}
else if (*start == 0) {
/* end of string and couldn't find ith colon */
dir[0] = 0;
return;
}
else {
start++;
}
}
while (*start == ':')
start++;
/* find next colon, or end of string */
end = start + 1;
while (*end != ':' && *end != 0) {
end++;
}
/* copy string between <start> and <end> into result string */
len = end - start;
if (len > dirLen - 1)
len = dirLen - 1;
strncpy(dir, start, len);
dir[len] = 0;
}
/*
* Try to dlopen() the named driver. This function adds the
* "_dri.so" suffix to the driver name and searches the
* directories specified by the LIBGL_DRIVERS_PATH env var
* in order to find the driver.
* Input:
* driverName - a name like "tdfx", "i810", "mga", etc.
* Return:
* handle from dlopen, or NULL if driver file not found.
*/
static __DRIdriver *OpenDriver(const char *driverName)
{
char *libPaths = NULL;
int i;
__DRIdriver *driver;
/* First, search Drivers list to see if we've already opened this driver */
for (driver = Drivers; driver; driver = driver->next) {
if (strcmp(driver->name, driverName) == 0) {
/* found it */
return driver;
}
}
if (geteuid() == getuid()) {
/* don't allow setuid apps to use LIBGL_DRIVERS_PATH */
libPaths = getenv("LIBGL_DRIVERS_PATH");
if (!libPaths)
libPaths = getenv("LIBGL_DRIVERS_DIR"); /* deprecated */
}
if (!libPaths)
libPaths = DEFAULT_DRIVER_DIR;
for (i = 0; ; i++) {
char libDir[1000], realDriverName[200];
void *handle;
ExtractDir(i, libPaths, 1000, libDir);
if (!libDir[0])
break; /* ran out of paths to search */
snprintf(realDriverName, 200, "%s/%s_dri.so", libDir, driverName);
InfoMessageF("OpenDriver: trying %s\n", realDriverName);
handle = dlopen(realDriverName, RTLD_NOW | RTLD_GLOBAL);
if (handle) {
/* allocate __DRIdriver struct */
driver = (__DRIdriver *) Xmalloc(sizeof(__DRIdriver));
if (!driver)
return NULL; /* out of memory! */
/* init the struct */
driver->name = __glXstrdup(driverName);
if (!driver->name) {
Xfree(driver);
return NULL; /* out of memory! */
}
driver->createScreenFunc = (CreateScreenFunc)
dlsym(handle, "__driCreateScreen");
driver->createNewScreenFunc = (CreateNewScreenFunc)
dlsym(handle, "__driCreateNewScreen");
if ( (driver->createScreenFunc == NULL)
&& (driver->createNewScreenFunc == NULL) ) {
/* If the driver doesn't have this symbol then something's
* really, really wrong.
*/
ErrorMessageF("Neither __driCreateScreen or __driCreateNewScreen "
"are defined in %s_dri.so!\n", driverName);
Xfree(driver);
dlclose(handle);
continue;
}
driver->handle = handle;
/* put at head of linked list */
driver->next = Drivers;
Drivers = driver;
return driver;
}
else {
ErrorMessageF("dlopen %s failed (%s)\n", realDriverName, dlerror());
}
}
ErrorMessageF("unable to find driver: %s_dri.so\n", driverName);
return NULL;
}
/*
* Given a display pointer and screen number, determine the name of
* the DRI driver for the screen. (I.e. "r128", "tdfx", etc).
* Return True for success, False for failure.
*/
static Bool GetDriverName(Display *dpy, int scrNum, char **driverName)
{
int directCapable;
Bool b;
int driverMajor, driverMinor, driverPatch;
*driverName = NULL;
if (!XF86DRIQueryDirectRenderingCapable(dpy, scrNum, &directCapable)) {
ErrorMessageF("XF86DRIQueryDirectRenderingCapable failed\n");
return False;
}
if (!directCapable) {
ErrorMessageF("XF86DRIQueryDirectRenderingCapable returned false\n");
return False;
}
b = XF86DRIGetClientDriverName(dpy, scrNum, &driverMajor, &driverMinor,
&driverPatch, driverName);
if (!b) {
ErrorMessageF("Cannot determine driver name for screen %d\n", scrNum);
return False;
}
InfoMessageF("XF86DRIGetClientDriverName: %d.%d.%d %s (screen %d)\n",
driverMajor, driverMinor, driverPatch, *driverName, scrNum);
return True;
}
/*
* Given a display pointer and screen number, return a __DRIdriver handle.
* Return NULL if anything goes wrong.
*/
__DRIdriver *driGetDriver(Display *dpy, int scrNum)
{
char *driverName;
if (GetDriverName(dpy, scrNum, &driverName)) {
__DRIdriver *ret;
ret = OpenDriver(driverName);
if (driverName)
Xfree(driverName);
return ret;
}
return NULL;
}
/*
* Exported function for querying the DRI driver for a given screen.
*
* The returned char pointer points to a static array that will be
* overwritten by subsequent calls.
*/
const char *glXGetScreenDriver (Display *dpy, int scrNum) {
static char ret[32];
char *driverName;
if (GetDriverName(dpy, scrNum, &driverName)) {
int len;
if (!driverName)
return NULL;
len = strlen (driverName);
if (len >= 31)
return NULL;
memcpy (ret, driverName, len+1);
Xfree(driverName);
return ret;
}
return NULL;
}
/*
* Exported function for obtaining a driver's option list (UTF-8 encoded XML).
*
* The returned char pointer points directly into the driver. Therefore
* it should be treated as a constant.
*
* If the driver was not found or does not support configuration NULL is
* returned.
*
* Note: The driver remains opened after this function returns.
*/
const char *glXGetDriverConfig (const char *driverName) {
__DRIdriver *driver = OpenDriver (driverName);
if (driver)
return dlsym (driver->handle, "__driConfigOptions");
else
return NULL;
}
#endif /* BUILT_IN_DRI_DRIVER */
/* This function isn't currently used.
*/
static void driDestroyDisplay(Display *dpy, void *private)
{
__DRIdisplayPrivate *pdpyp = (__DRIdisplayPrivate *)private;
if (pdpyp) {
const int numScreens = ScreenCount(dpy);
int i;
for (i = 0; i < numScreens; i++) {
if (pdpyp->libraryHandles[i])
dlclose(pdpyp->libraryHandles[i]);
}
Xfree(pdpyp->libraryHandles);
Xfree(pdpyp);
}
}
/*
* Allocate, initialize and return a __DRIdisplayPrivate object.
* This is called from __glXInitialize() when we are given a new
* display pointer.
*/
void *driCreateDisplay(Display *dpy, __DRIdisplay *pdisp)
{
const int numScreens = ScreenCount(dpy);
__DRIdisplayPrivate *pdpyp;
int eventBase, errorBase;
int major, minor, patch;
int scrn;
/* Initialize these fields to NULL in case we fail.
* If we don't do this we may later get segfaults trying to free random
* addresses when the display is closed.
*/
pdisp->private = NULL;
pdisp->destroyDisplay = NULL;
pdisp->createScreen = NULL;
if (!XF86DRIQueryExtension(dpy, &eventBase, &errorBase)) {
return NULL;
}
if (!XF86DRIQueryVersion(dpy, &major, &minor, &patch)) {
return NULL;
}
pdpyp = (__DRIdisplayPrivate *)Xmalloc(sizeof(__DRIdisplayPrivate));
if (!pdpyp) {
return NULL;
}
pdpyp->driMajor = major;
pdpyp->driMinor = minor;
pdpyp->driPatch = patch;
pdisp->destroyDisplay = driDestroyDisplay;
/* allocate array of pointers to createScreen funcs */
pdisp->createScreen = (CreateScreenFunc *) Xmalloc(numScreens * sizeof(void *));
if (!pdisp->createScreen) {
Xfree(pdpyp);
return NULL;
}
/* allocate array of pointers to createScreen funcs */
pdisp->createNewScreen = (CreateNewScreenFunc *) Xmalloc(numScreens * sizeof(void *));
if (!pdisp->createNewScreen) {
Xfree(pdisp->createScreen);
Xfree(pdpyp);
return NULL;
}
/* allocate array of library handles */
pdpyp->libraryHandles = (void **) Xmalloc(numScreens * sizeof(void*));
if (!pdpyp->libraryHandles) {
Xfree(pdisp->createNewScreen);
Xfree(pdisp->createScreen);
Xfree(pdpyp);
return NULL;
}
#ifdef BUILT_IN_DRI_DRIVER
/* we'll statically bind to the built-in __driCreateScreen function */
for (scrn = 0; scrn < numScreens; scrn++) {
pdisp->createScreen[scrn] = __driCreateScreen;
pdisp->createNewScreen[scrn] = NULL;
pdpyp->libraryHandles[scrn] = NULL;
}
#else
/* dynamically discover DRI drivers for all screens, saving each
* driver's "__driCreateScreen" function pointer. That's the bootstrap
* entrypoint for all DRI drivers.
*/
for (scrn = 0; scrn < numScreens; scrn++) {
__DRIdriver *driver = driGetDriver(dpy, scrn);
if (driver) {
pdisp->createScreen[scrn] = driver->createScreenFunc;
pdisp->createNewScreen[scrn] = driver->createNewScreenFunc;
pdpyp->libraryHandles[scrn] = driver->handle;
}
else {
pdisp->createScreen[scrn] = DummyCreateScreen;
pdisp->createNewScreen[scrn] = NULL;
pdpyp->libraryHandles[scrn] = NULL;
}
}
#endif
return (void *)pdpyp;
}
#endif /* GLX_DIRECT_RENDERING */
|
the_stack_data/111077509.c | /*=== Assignment 1 ===
Author: Srinivasa Maringanti
Server side
*/
#include <stdio.h>
#include <unistd.h>
#include <stdlib.h>
#include <string.h>
#include <netdb.h>
#include <sys/types.h>
#include <sys/socket.h>
#include <netinet/in.h>
#include <arpa/inet.h>
#include <time.h>
#include <sys/time.h>
void err(char *msg) // Method used to call errors
{
perror(msg);
exit(1);
}
int main(int argc, char *argv[])
{
int fd,nfd,comp;//fd and nfd will be used as a socket descriptor
struct sockaddr_in server, client;
int portnum=atoi(argv[1]);//Typecast
int bufsize=atoi(argv[2]);//Typecast
int sleeptime=atoi(argv[3]);//Typecast
char buf[bufsize];
socklen_t c_len;
if (argc < 2)
{
fprintf(stderr,"[USAGE]: ./spdtestd <PORT> <BUFFER SIZE> <SLEEP TIME>\n");
exit(0);
}
// Creating socket and assigning socket descriptor
fd = socket(AF_INET, SOCK_DGRAM, 0);
if (fd < 0) // Try opening the socket
{
err("[ERROR]: Opening socket");
}
//Assigning the PORT IP and FAMILY
server.sin_family = AF_INET;
server.sin_addr.s_addr = inet_addr("10.250.4.34");//IP
server.sin_port = htons(portnum);//Port
// Binding
if (bind(fd, (struct sockaddr *) &server, sizeof(server)) < 0)
{
err("[ERROR]: Binding");
}
while(1)
{
comp=recvfrom(fd, buf, bufsize, 0,(struct sockaddr *) &client, &c_len);//Recieving data
if (comp < 0)
{
error("[ERROR]: Receiving issue");
}
printf("Seq # %d recieved! \n",buf[0]-'0');
int i=buf[0]-'0';//Typecasting char from buf[0]
usleep(sleeptime);
comp = sendto(fd,buf,bufsize,0, (struct sockaddr *) &client, c_len);//Sending ack for recv data
if (comp < 0)
{
error("[ERROR]: Sending issue");
}
}//while
close(fd);
exit(1);
}//main
|
the_stack_data/87446.c | #include <stdio.h>
int main()
{
int n = 5, x = 5, y = 5;
for(int i = 1; i <= n; i++) {
for(int j = 1; j < n*2; j++) {
if(j == x || j == y || i == n)
printf("*");
else
printf(" ");
}
x--;
y++;
printf("\n");
}
return 0;
}
|
the_stack_data/277956.c | int search(int* nums, int numsSize, int target){
int lo = 0, hi = numsSize - 1, mid;
while (lo < hi){
mid = (lo + hi) / 2;
if (nums[mid] < nums[hi]) hi = mid;
else lo = mid + 1;
}
int start = lo, realMid;
lo = 0, hi = numsSize - 1;
while (lo <= hi){
mid = (lo + hi) / 2;
realMid = (mid + start) % numsSize;
if (nums[realMid] == target) return realMid;
if (nums[realMid] < target) lo = mid + 1;
else hi = mid - 1;
}
return -1;
}
|
the_stack_data/154828310.c | // RUN: %llvmgcc %s -O3 -S -o - -emit-llvm
// PR1174
void zzz (char *s1, char *s2, int len, int *q)
{
int z = 5;
unsigned int i, b;
struct { char a[z]; } x;
for (i = 0; i < len; i++)
s1[i] = s2[i];
b = z & 0x3;
len += (b == 0 ? 0 : 1) + z;
*q = len;
foo (x, x);
}
|
the_stack_data/99682.c | //---------------------------------------------------------------------
// program MG
//---------------------------------------------------------------------
#include <stdio.h>
#include <stdlib.h>
#include <math.h>
#include <time.h>
#include <sys/time.h>
#if !defined(CLASS_W) && !defined(CLASS_S) && !defined(CLASS_A) && !defined(CLASS_B) && !defined(CLASS_C) && !defined(CLASS_D) && !defined(CLASS_E)
# define CLASS_W
#endif
//----------
// Class S:
//----------
#ifdef CLASS_S
# define NX_DEFAULT 32
# define NY_DEFAULT 32
# define NZ_DEFAULT 32
# define NIT_DEFAULT 4
# define LM 5
# define LT_DEFAULT 5
# define DEBUG_DEFAULT 0
# define NDIM1 5
# define NDIM2 5
# define NDIM3 5
# define ONE 1
#endif
//----------
// Class W:
//----------
#ifdef CLASS_W
# define NX_DEFAULT 128
# define NY_DEFAULT 128
# define NZ_DEFAULT 128
# define NIT_DEFAULT 4
# define LM 7
# define LT_DEFAULT 7
# define DEBUG_DEFAULT 0
# define NDIM1 7
# define NDIM2 7
# define NDIM3 7
# define ONE 1
#endif
//----------
// Class A:
//----------
#ifdef CLASS_A
# define NX_DEFAULT 256
# define NY_DEFAULT 256
# define NZ_DEFAULT 256
# define NIT_DEFAULT 4
# define LM 8
# define LT_DEFAULT 8
# define DEBUG_DEFAULT 0
# define NDIM1 8
# define NDIM2 8
# define NDIM3 8
# define ONE 1
#endif
//----------
// Class B:
//----------
#ifdef CLASS_B
# define NX_DEFAULT 256
# define NY_DEFAULT 256
# define NZ_DEFAULT 256
# define NIT_DEFAULT 20
# define LM 8
# define LT_DEFAULT 8
# define DEBUG_DEFAULT 0
# define NDIM1 8
# define NDIM2 8
# define NDIM3 8
# define ONE 1
#endif
//----------
// Class C:
//----------
#ifdef CLASS_C
# define NX_DEFAULT 512
# define NY_DEFAULT 512
# define NZ_DEFAULT 512
# define NIT_DEFAULT 20
# define LM 9
# define LT_DEFAULT 9
# define DEBUG_DEFAULT 0
# define NDIM1 9
# define NDIM2 9
# define NDIM3 9
# define ONE 1
#endif
//----------
// Class D:
//----------
#ifdef CLASS_D
# define NX_DEFAULT 1024
# define NY_DEFAULT 1024
# define NZ_DEFAULT 1024
# define NIT_DEFAULT 50
# define LM 10
# define LT_DEFAULT 10
# define DEBUG_DEFAULT 0
# define NDIM1 10
# define NDIM2 10
# define NDIM3 10
# define ONE 1
#endif
//----------
// Class E:
//----------
#ifdef CLASS_E
# define NX_DEFAULT 2048
# define NY_DEFAULT 2048
# define NZ_DEFAULT 2048
# define NIT_DEFAULT 50
# define LM 11
# define LT_DEFAULT 11
# define DEBUG_DEFAULT 0
# define NDIM1 11
# define NDIM2 11
# define NDIM3 11
# define ONE 1
#endif
typedef struct
{
double real;
double imag;
} dcomplex;
#define min(x,y) ((x) < (y) ? (x) : (y))
#define max(x,y) ((x) > (y) ? (x) : (y))
// actual dimension including ghost cells for communications
#define NM (2+(1<<LM))
// size of rhs array
#define NV (ONE*(2+(1<<NDIM1))*(2+(1<<NDIM2))*(2+(1<<NDIM3)))
// size of residual array
#define NR (((NV+NM*NM+5*NM+7*LM+6)/7)*8)
// maximum number of levels
#define MAXLEVEL (LT_DEFAULT+1)
//---------------------------------------------------------------------
/* common /mg3/ */
int nx[MAXLEVEL + 1];
int ny[MAXLEVEL + 1];
int nz[MAXLEVEL + 1];
/* common /ClassType/ */
char Class;
/* common /my_debug/ */
int debug_vec[8];
/* common /fap/ */
int m1[MAXLEVEL + 1];
int m2[MAXLEVEL + 1];
int m3[MAXLEVEL + 1];
int ir[MAXLEVEL + 1];
int lt, lb;
//---------------------------------------------------------------------
// Set at m=1024, can handle cases up to 1024^3 case
//---------------------------------------------------------------------
#define M (NM+1)
/* common /timers/ */
#define T_init 0
#define T_bench 1
#define T_mg3P 2
#define T_psinv 3
#define T_resid 4
#define T_resid2 5
#define T_rprj3 6
#define T_interp 7
#define T_norm2 8
#define T_comm3 9
#define T_last 10
//-------------------------------------------------------------------------c
// These arrays are in common because they are quite large
// and probably shouldn't be allocated on the stack. They
// are always passed as subroutine args.
//-------------------------------------------------------------------------c
/* commcon /noautom/ */
double u[NR];
double v[NR];
double r[NR];
/* common /grid/ */
int is1, is2, is3, ie1, ie2, ie3;
void setup(int *n1, int *n2, int *n3);
void mg3P(double u[], double v[], double r[],
double a[4], double c[4], int n1, int n2, int n3);
void psinv(void * or , void *ou, int n1, int n2, int n3,
double c[4], int k);
void resid(void *ou, void *ov, void * or , int n1, int n2, int n3,
double a[4], int k);
void rprj3(void * or , int m1k, int m2k, int m3k,
void *os, int m1j, int m2j, int m3j, int k);
void interp(void *oz, int mm1, int mm2, int mm3,
void *ou, int n1, int n2, int n3, int k);
void norm2u3(void * or , int n1, int n2, int n3,
double *rnm2, double *rnmu,
int nx, int ny, int nz);
void rep_nrm(void *u, int n1, int n2, int n3, char *title, int kk);
void comm3(void *ou, int n1, int n2, int n3, int kk);
void zran3(void *oz, int n1, int n2, int n3, int nx, int ny, int k);
void showall(void *oz, int n1, int n2, int n3);
double power(double a, int n);
void bubble(double ten[][2], int j1[][2], int j2[][2], int j3[][2],
int m, int ind);
void zero3(void *oz, int n1, int n2, int n3);
double randlc( double *x, double a );
void vranlc( int n, double *x, double a, double y[] );
void print_results(char *name, char class, int n1, int n2, int n3, int niter,
double t, double mops, char *optype, int verified);
double start[64], elapsed[64];
double elapsed_time( void );
void timer_clear( int n );
void timer_start( int n );
void timer_stop( int n );
double timer_read( int n );
void wtime(double *t);
int main()
{
//-------------------------------------------------------------------------c
// k is the current level. It is passed down through subroutine args
// and is NOT global. it is the current iteration
//-------------------------------------------------------------------------c
int k, it;
double t, tinit, mflops;
double a[4], c[4];
double rnm2, rnmu, old2, oldu, epsilon;
int n1, n2, n3, nit;
double nn, verify_value, err;
int verified;
int i;
char *t_names[T_last];
double tmax;
for (i = T_init; i < T_last; i++)
{
timer_clear(i);
}
timer_start(T_init);
printf("\n\n NAS Parallel Benchmarks (NPB3.3-SER-C) - MG Benchmark\n\n");
printf(" No input file. Using compiled defaults \n");
lt = LT_DEFAULT;
nit = NIT_DEFAULT;
nx[lt] = NX_DEFAULT;
ny[lt] = NY_DEFAULT;
nz[lt] = NZ_DEFAULT;
for (i = 0; i <= 7; i++)
{
debug_vec[i] = DEBUG_DEFAULT;
}
if ( (nx[lt] != ny[lt]) || (nx[lt] != nz[lt]) )
{
Class = 'U';
}
else if ( nx[lt] == 32 && nit == 4 )
{
Class = 'S';
}
else if ( nx[lt] == 128 && nit == 4 )
{
Class = 'W';
}
else if ( nx[lt] == 256 && nit == 4 )
{
Class = 'A';
}
else if ( nx[lt] == 256 && nit == 20 )
{
Class = 'B';
}
else if ( nx[lt] == 512 && nit == 20 )
{
Class = 'C';
}
else if ( nx[lt] == 1024 && nit == 50 )
{
Class = 'D';
}
else if ( nx[lt] == 2048 && nit == 50 )
{
Class = 'E';
}
else
{
Class = 'U';
}
//---------------------------------------------------------------------
// Use these for debug info:
//---------------------------------------------------------------------
// debug_vec(0) = 1 !=> report all norms
// debug_vec(1) = 1 !=> some setup information
// debug_vec(1) = 2 !=> more setup information
// debug_vec(2) = k => at level k or below, show result of resid
// debug_vec(3) = k => at level k or below, show result of psinv
// debug_vec(4) = k => at level k or below, show result of rprj
// debug_vec(5) = k => at level k or below, show result of interp
// debug_vec(6) = 1 => (unused)
// debug_vec(7) = 1 => (unused)
//---------------------------------------------------------------------
a[0] = -8.0 / 3.0;
a[1] = 0.0;
a[2] = 1.0 / 6.0;
a[3] = 1.0 / 12.0;
if (Class == 'A' || Class == 'S' || Class == 'W')
{
//---------------------------------------------------------------------
// Coefficients for the S(a) smoother
//---------------------------------------------------------------------
c[0] = -3.0 / 8.0;
c[1] = +1.0 / 32.0;
c[2] = -1.0 / 64.0;
c[3] = 0.0;
}
else
{
//---------------------------------------------------------------------
// Coefficients for the S(b) smoother
//---------------------------------------------------------------------
c[0] = -3.0 / 17.0;
c[1] = +1.0 / 33.0;
c[2] = -1.0 / 61.0;
c[3] = 0.0;
}
lb = 1;
k = lt;
setup(&n1, &n2, &n3);
zero3(u, n1, n2, n3);
zran3(v, n1, n2, n3, nx[lt], ny[lt], k);
norm2u3(v, n1, n2, n3, &rnm2, &rnmu, nx[lt], ny[lt], nz[lt]);
printf(" Size: %4dx%4dx%4d (class %c)\n", nx[lt], ny[lt], nz[lt], Class);
printf(" Iterations: %3d\n", nit);
printf("\n");
resid(u, v, r, n1, n2, n3, a, k);
norm2u3(r, n1, n2, n3, &rnm2, &rnmu, nx[lt], ny[lt], nz[lt]);
old2 = rnm2;
oldu = rnmu;
//---------------------------------------------------------------------
// One iteration for startup
//---------------------------------------------------------------------
mg3P(u, v, r, a, c, n1, n2, n3);
resid(u, v, r, n1, n2, n3, a, k);
setup(&n1, &n2, &n3);
zero3(u, n1, n2, n3);
zran3(v, n1, n2, n3, nx[lt], ny[lt], k);
timer_stop(T_init);
tinit = timer_read(T_init);
printf(" Initialization time: %15.3f seconds\n\n", tinit);
for (i = T_bench; i < T_last; i++)
{
timer_clear(i);
}
timer_start(T_bench);
resid(u, v, r, n1, n2, n3, a, k);
norm2u3(r, n1, n2, n3, &rnm2, &rnmu, nx[lt], ny[lt], nz[lt]);
old2 = rnm2;
oldu = rnmu;
for (it = 1; it <= nit; it++)
{
if ((it == 1) || (it == nit) || ((it % 5) == 0))
{
printf(" iter %3d\n", it);
}
mg3P(u, v, r, a, c, n1, n2, n3);
resid(u, v, r, n1, n2, n3, a, k);
}
norm2u3(r, n1, n2, n3, &rnm2, &rnmu, nx[lt], ny[lt], nz[lt]);
timer_stop(T_bench);
t = timer_read(T_bench);
verified = 0;
verify_value = 0.0;
printf("\n Benchmark completed\n");
epsilon = 1.0e-8;
if (Class != 'U')
{
if (Class == 'S')
{
verify_value = 0.5307707005734e-04;
}
else if (Class == 'W')
{
verify_value = 0.6467329375339e-05;
}
else if (Class == 'A')
{
verify_value = 0.2433365309069e-05;
}
else if (Class == 'B')
{
verify_value = 0.1800564401355e-05;
}
else if (Class == 'C')
{
verify_value = 0.5706732285740e-06;
}
else if (Class == 'D')
{
verify_value = 0.1583275060440e-09;
}
else if (Class == 'E')
{
verify_value = 0.8157592357404e-10;
}
err = fabs( rnm2 - verify_value ) / verify_value;
// err = fabs( rnm2 - verify_value );
if (err <= epsilon)
{
verified = 1;
printf(" VERIFICATION SUCCESSFUL\n");
printf(" L2 Norm is %20.13E\n", rnm2);
printf(" Error is %20.13E\n", err);
}
else
{
verified = 0;
printf(" VERIFICATION FAILED\n");
printf(" L2 Norm is %20.13E\n", rnm2);
printf(" The correct L2 Norm is %20.13E\n", verify_value);
}
}
else
{
verified = 0;
printf(" Problem size unknown\n");
printf(" NO VERIFICATION PERFORMED\n");
printf(" L2 Norm is %20.13E\n", rnm2);
}
nn = 1.0 * nx[lt] * ny[lt] * nz[lt];
if (t != 0.0)
{
mflops = 58.0 * nit * nn * 1.0e-6 / t;
}
else
{
mflops = 0.0;
}
print_results("MG", Class, nx[lt], ny[lt], nz[lt],
nit, t,
mflops, " floating point",
verified);
int exitValue = verified ? 0 : 1;
return exitValue;
}
void setup(int *n1, int *n2, int *n3)
{
int k, j;
int ax, mi[MAXLEVEL + 1][3];
int ng[MAXLEVEL + 1][3];
ng[lt][0] = nx[lt];
ng[lt][1] = ny[lt];
ng[lt][2] = nz[lt];
for (k = lt - 1; k >= 1; k--)
{
for (ax = 0; ax < 3; ax++)
{
ng[k][ax] = ng[k + 1][ax] / 2;
}
}
#pragma omp parallel for default(shared) private(k) firstprivate(lt, ng)
for (k = lt; k >= 1; k--)
{
nx[k] = ng[k][0];
ny[k] = ng[k][1];
nz[k] = ng[k][2];
}
#pragma omp parallel for default(shared) private(k, ax) firstprivate(lt, ng)
for (k = lt; k >= 1; k--)
{
for (ax = 0; ax < 3; ax++)
{
mi[k][ax] = 2 + ng[k][ax];
}
m1[k] = mi[k][0];
m2[k] = mi[k][1];
m3[k] = mi[k][2];
}
k = lt;
is1 = 2 + ng[k][0] - ng[lt][0];
ie1 = 1 + ng[k][0];
*n1 = 3 + ie1 - is1;
is2 = 2 + ng[k][1] - ng[lt][1];
ie2 = 1 + ng[k][1];
*n2 = 3 + ie2 - is2;
is3 = 2 + ng[k][2] - ng[lt][2];
ie3 = 1 + ng[k][2];
*n3 = 3 + ie3 - is3;
ir[lt] = 0;
for (j = lt - 1; j >= 1; j--)
{
ir[j] = ir[j + 1] + ONE * m1[j + 1] * m2[j + 1] * m3[j + 1];
}
if (debug_vec[1] >= 1)
{
printf(" in setup, \n");
printf(" k lt nx ny nz n1 n2 n3 is1 is2 is3 ie1 ie2 ie3\n");
printf("%4d%4d%4d%4d%4d%4d%4d%4d%4d%4d%4d%4d%4d%4d\n",
k, lt, ng[k][0], ng[k][1], ng[k][2], *n1, *n2, *n3, is1, is2, is3, ie1, ie2, ie3);
}
}
//---------------------------------------------------------------------
// multigrid V-cycle routine
//---------------------------------------------------------------------
void mg3P(double u[], double v[], double r[],
double a[4], double c[4], int n1, int n2, int n3)
{
int j, k;
//---------------------------------------------------------------------
// down cycle.
// restrict the residual from the find grid to the coarse
//---------------------------------------------------------------------
for (k = lt; k >= lb + 1; k--)
{
j = k - 1;
rprj3(&r[ir[k]], m1[k], m2[k], m3[k],
&r[ir[j]], m1[j], m2[j], m3[j], k);
}
k = lb;
//---------------------------------------------------------------------
// compute an approximate solution on the coarsest grid
//---------------------------------------------------------------------
zero3(&u[ir[k]], m1[k], m2[k], m3[k]);
psinv(&r[ir[k]], &u[ir[k]], m1[k], m2[k], m3[k], c, k);
for (k = lb + 1; k <= lt - 1; k++)
{
j = k - 1;
//---------------------------------------------------------------------
// prolongate from level k-1 to k
//---------------------------------------------------------------------
zero3(&u[ir[k]], m1[k], m2[k], m3[k]);
interp(&u[ir[j]], m1[j], m2[j], m3[j], &u[ir[k]], m1[k], m2[k], m3[k], k);
//---------------------------------------------------------------------
// compute residual for level k
//---------------------------------------------------------------------
resid(&u[ir[k]], &r[ir[k]], &r[ir[k]], m1[k], m2[k], m3[k], a, k);
//---------------------------------------------------------------------
// apply smoother
//---------------------------------------------------------------------
psinv(&r[ir[k]], &u[ir[k]], m1[k], m2[k], m3[k], c, k);
}
j = lt - 1;
k = lt;
interp(&u[ir[j]], m1[j], m2[j], m3[j], u, n1, n2, n3, k);
resid(u, v, r, n1, n2, n3, a, k);
psinv(r, u, n1, n2, n3, c, k);
}
//---------------------------------------------------------------------
// psinv applies an approximate inverse as smoother: u = u + Cr
//
// This implementation costs 15A + 4M per result, where
// A and M denote the costs of Addition and Multiplication.
// Presuming coefficient c(3) is zero (the NPB assumes this,
// but it is thus not a general case), 2A + 1M may be eliminated,
// resulting in 13A + 3M.
// Note that this vectorizes, and is also fine for cache
// based machines.
//---------------------------------------------------------------------
void psinv(void * or , void *ou, int n1, int n2, int n3,
double c[4], int k)
{
double (*r)[n2][n1] = (double (*)[n2][n1]) or;
double (*u)[n2][n1] = (double (*)[n2][n1])ou;
int i3, i2, i1;
double r1[M], r2[M];
#pragma omp parallel for default(shared) private(i3, i2, i1) firstprivate(n3, n2, n1, r, c, r1, r2)
for (i3 = 1; i3 < n3 - 1; i3++)
{
for (i2 = 1; i2 < n2 - 1; i2++)
{
for (i1 = 0; i1 < n1; i1++)
{
r1[i1] = r[i3][i2 - 1][i1] + r[i3][i2 + 1][i1]
+ r[i3 - 1][i2][i1] + r[i3 + 1][i2][i1];
r2[i1] = r[i3 - 1][i2 - 1][i1] + r[i3 - 1][i2 + 1][i1]
+ r[i3 + 1][i2 - 1][i1] + r[i3 + 1][i2 + 1][i1];
}
for (i1 = 1; i1 < n1 - 1; i1++)
{
u[i3][i2][i1] = u[i3][i2][i1]
+ c[0] * r[i3][i2][i1]
+ c[1] * ( r[i3][i2][i1 - 1] + r[i3][i2][i1 + 1]
+ r1[i1] )
+ c[2] * ( r2[i1] + r1[i1 - 1] + r1[i1 + 1] );
//--------------------------------------------------------------------
// Assume c[3] = 0 (Enable line below if c[3] not= 0)
//--------------------------------------------------------------------
// + c[3] * ( r2[i1-1] + r2[i1+1] )
//--------------------------------------------------------------------
}
}
}
//---------------------------------------------------------------------
// exchange boundary points
//---------------------------------------------------------------------
comm3(u, n1, n2, n3, k);
if (debug_vec[0] >= 1)
{
rep_nrm(u, n1, n2, n3, " psinv", k);
}
if (debug_vec[3] >= k)
{
showall(u, n1, n2, n3);
}
}
//---------------------------------------------------------------------
// resid computes the residual: r = v - Au
//
// This implementation costs 15A + 4M per result, where
// A and M denote the costs of Addition (or Subtraction) and
// Multiplication, respectively.
// Presuming coefficient a(1) is zero (the NPB assumes this,
// but it is thus not a general case), 3A + 1M may be eliminated,
// resulting in 12A + 3M.
// Note that this vectorizes, and is also fine for cache
// based machines.
//---------------------------------------------------------------------
void resid(void *ou, void *ov, void * or , int n1, int n2, int n3,
double a[4], int k)
{
double (*u)[n2][n1] = (double (*)[n2][n1])ou;
double (*v)[n2][n1] = (double (*)[n2][n1])ov;
double (*r)[n2][n1] = (double (*)[n2][n1]) or;
int i3, i2, i1;
double u1[M], u2[M];
#pragma omp parallel for default(shared) private(i3, i2, i1) firstprivate(n3, n2, n1, u, a, v, u1, u2)
for (i3 = 1; i3 < n3 - 1; i3++)
{
for (i2 = 1; i2 < n2 - 1; i2++)
{
for (i1 = 0; i1 < n1; i1++)
{
u1[i1] = u[i3][i2 - 1][i1] + u[i3][i2 + 1][i1]
+ u[i3 - 1][i2][i1] + u[i3 + 1][i2][i1];
u2[i1] = u[i3 - 1][i2 - 1][i1] + u[i3 - 1][i2 + 1][i1]
+ u[i3 + 1][i2 - 1][i1] + u[i3 + 1][i2 + 1][i1];
}
for (i1 = 1; i1 < n1 - 1; i1++)
{
r[i3][i2][i1] = v[i3][i2][i1]
- a[0] * u[i3][i2][i1]
//-------------------------------------------------------------------
// Assume a[1] = 0 (Enable 2 lines below if a[1] not= 0)
//-------------------------------------------------------------------
// - a[1] * ( u[i3][i2][i1-1] + u[i3][i2][i1+1]
// + u1[i1] )
//-------------------------------------------------------------------
- a[2] * ( u2[i1] + u1[i1 - 1] + u1[i1 + 1] )
- a[3] * ( u2[i1 - 1] + u2[i1 + 1] );
}
}
}
//---------------------------------------------------------------------
// exchange boundary data
//---------------------------------------------------------------------
comm3(r, n1, n2, n3, k);
if (debug_vec[0] >= 1)
{
rep_nrm(r, n1, n2, n3, " resid", k);
}
if (debug_vec[2] >= k)
{
showall(r, n1, n2, n3);
}
}
//---------------------------------------------------------------------
// rprj3 projects onto the next coarser grid,
// using a trilinear Finite Element projection: s = r' = P r
//
// This implementation costs 20A + 4M per result, where
// A and M denote the costs of Addition and Multiplication.
// Note that this vectorizes, and is also fine for cache
// based machines.
//---------------------------------------------------------------------
void rprj3(void * or , int m1k, int m2k, int m3k,
void *os, int m1j, int m2j, int m3j, int k)
{
double (*r)[m2k][m1k] = (double (*)[m2k][m1k]) or;
double (*s)[m2j][m1j] = (double (*)[m2j][m1j])os;
int j3, j2, j1, i3, i2, i1, d1, d2, d3, j;
double x1[M], y1[M], x2, y2;
if (m1k == 3)
{
d1 = 2;
}
else
{
d1 = 1;
}
if (m2k == 3)
{
d2 = 2;
}
else
{
d2 = 1;
}
if (m3k == 3)
{
d3 = 2;
}
else
{
d3 = 1;
}
#pragma omp parallel for default(shared) private(j3, j2, j1, i3, i2, i1, y2, x2) firstprivate(m3j, d3, m2j, d2, m1j, d1, r, x1, y1)
for (j3 = 1; j3 < m3j - 1; j3++)
{
i3 = 2 * j3 - d3;
for (j2 = 1; j2 < m2j - 1; j2++)
{
i2 = 2 * j2 - d2;
for (j1 = 1; j1 < m1j; j1++)
{
i1 = 2 * j1 - d1;
x1[i1] = r[i3 + 1][i2 ][i1] + r[i3 + 1][i2 + 2][i1]
+ r[i3 ][i2 + 1][i1] + r[i3 + 2][i2 + 1][i1];
y1[i1] = r[i3 ][i2 ][i1] + r[i3 + 2][i2 ][i1]
+ r[i3 ][i2 + 2][i1] + r[i3 + 2][i2 + 2][i1];
}
for (j1 = 1; j1 < m1j - 1; j1++)
{
i1 = 2 * j1 - d1;
y2 = r[i3 ][i2 ][i1 + 1] + r[i3 + 2][i2 ][i1 + 1]
+ r[i3 ][i2 + 2][i1 + 1] + r[i3 + 2][i2 + 2][i1 + 1];
x2 = r[i3 + 1][i2 ][i1 + 1] + r[i3 + 1][i2 + 2][i1 + 1]
+ r[i3 ][i2 + 1][i1 + 1] + r[i3 + 2][i2 + 1][i1 + 1];
s[j3][j2][j1] =
0.5 * r[i3 + 1][i2 + 1][i1 + 1]
+ 0.25 * (r[i3 + 1][i2 + 1][i1] + r[i3 + 1][i2 + 1][i1 + 2] + x2)
+ 0.125 * (x1[i1] + x1[i1 + 2] + y2)
+ 0.0625 * (y1[i1] + y1[i1 + 2]);
}
}
}
j = k - 1;
comm3(s, m1j, m2j, m3j, j);
if (debug_vec[0] >= 1)
{
rep_nrm(s, m1j, m2j, m3j, " rprj3", k - 1);
}
if (debug_vec[4] >= k)
{
showall(s, m1j, m2j, m3j);
}
}
//---------------------------------------------------------------------
// interp adds the trilinear interpolation of the correction
// from the coarser grid to the current approximation: u = u + Qu'
//
// Observe that this implementation costs 16A + 4M, where
// A and M denote the costs of Addition and Multiplication.
// Note that this vectorizes, and is also fine for cache
// based machines. Vector machines may get slightly better
// performance however, with 8 separate "do i1" loops, rather than 4.
//---------------------------------------------------------------------
void interp(void *oz, int mm1, int mm2, int mm3,
void *ou, int n1, int n2, int n3, int k)
{
double (*z)[mm2][mm1] = (double (*)[mm2][mm1])oz;
double (*u)[n2][n1] = (double (*)[n2][n1])ou;
int i3, i2, i1, d1, d2, d3, t1, t2, t3;
// note that m = 1037 in globals.h but for this only need to be
// 535 to handle up to 1024^3
// integer m
// parameter( m=535 )
double z1[M], z2[M], z3[M];
if (n1 != 3 && n2 != 3 && n3 != 3)
{
#pragma omp parallel for default(shared) private(i3, i2, i1) firstprivate(mm3, mm2, mm1, z, z1, z2, z3)
for (i3 = 0; i3 < mm3 - 1; i3++)
{
for (i2 = 0; i2 < mm2 - 1; i2++)
{
for (i1 = 0; i1 < mm1; i1++)
{
z1[i1] = z[i3][i2 + 1][i1] + z[i3][i2][i1];
z2[i1] = z[i3 + 1][i2][i1] + z[i3][i2][i1];
z3[i1] = z[i3 + 1][i2 + 1][i1] + z[i3 + 1][i2][i1] + z1[i1];
}
for (i1 = 0; i1 < mm1 - 1; i1++)
{
u[2 * i3][2 * i2][2 * i1] = u[2 * i3][2 * i2][2 * i1]
+ z[i3][i2][i1];
u[2 * i3][2 * i2][2 * i1 + 1] = u[2 * i3][2 * i2][2 * i1 + 1]
+ 0.5 * (z[i3][i2][i1 + 1] + z[i3][i2][i1]);
}
for (i1 = 0; i1 < mm1 - 1; i1++)
{
u[2 * i3][2 * i2 + 1][2 * i1] = u[2 * i3][2 * i2 + 1][2 * i1]
+ 0.5 * z1[i1];
u[2 * i3][2 * i2 + 1][2 * i1 + 1] = u[2 * i3][2 * i2 + 1][2 * i1 + 1]
+ 0.25 * (z1[i1] + z1[i1 + 1]);
}
for (i1 = 0; i1 < mm1 - 1; i1++)
{
u[2 * i3 + 1][2 * i2][2 * i1] = u[2 * i3 + 1][2 * i2][2 * i1]
+ 0.5 * z2[i1];
u[2 * i3 + 1][2 * i2][2 * i1 + 1] = u[2 * i3 + 1][2 * i2][2 * i1 + 1]
+ 0.25 * (z2[i1] + z2[i1 + 1]);
}
for (i1 = 0; i1 < mm1 - 1; i1++)
{
u[2 * i3 + 1][2 * i2 + 1][2 * i1] = u[2 * i3 + 1][2 * i2 + 1][2 * i1]
+ 0.25 * z3[i1];
u[2 * i3 + 1][2 * i2 + 1][2 * i1 + 1] = u[2 * i3 + 1][2 * i2 + 1][2 * i1 + 1]
+ 0.125 * (z3[i1] + z3[i1 + 1]);
}
}
}
}
else
{
if (n1 == 3)
{
d1 = 2;
t1 = 1;
}
else
{
d1 = 1;
t1 = 0;
}
if (n2 == 3)
{
d2 = 2;
t2 = 1;
}
else
{
d2 = 1;
t2 = 0;
}
if (n3 == 3)
{
d3 = 2;
t3 = 1;
}
else
{
d3 = 1;
t3 = 0;
}
#pragma omp parallel for default(shared) private(i3, i2, i1) firstprivate(d3, mm3, d2, mm2, d1, mm1, t1, t2, z)
for (i3 = d3; i3 <= mm3 - 1; i3++)
{
for (i2 = d2; i2 <= mm2 - 1; i2++)
{
for (i1 = d1; i1 <= mm1 - 1; i1++)
{
u[2 * i3 - d3 - 1][2 * i2 - d2 - 1][2 * i1 - d1 - 1] =
u[2 * i3 - d3 - 1][2 * i2 - d2 - 1][2 * i1 - d1 - 1]
+ z[i3 - 1][i2 - 1][i1 - 1];
}
for (i1 = 1; i1 <= mm1 - 1; i1++)
{
u[2 * i3 - d3 - 1][2 * i2 - d2 - 1][2 * i1 - t1 - 1] =
u[2 * i3 - d3 - 1][2 * i2 - d2 - 1][2 * i1 - t1 - 1]
+ 0.5 * (z[i3 - 1][i2 - 1][i1] + z[i3 - 1][i2 - 1][i1 - 1]);
}
}
for (i2 = 1; i2 <= mm2 - 1; i2++)
{
for (i1 = d1; i1 <= mm1 - 1; i1++)
{
u[2 * i3 - d3 - 1][2 * i2 - t2 - 1][2 * i1 - d1 - 1] =
u[2 * i3 - d3 - 1][2 * i2 - t2 - 1][2 * i1 - d1 - 1]
+ 0.5 * (z[i3 - 1][i2][i1 - 1] + z[i3 - 1][i2 - 1][i1 - 1]);
}
for (i1 = 1; i1 <= mm1 - 1; i1++)
{
u[2 * i3 - d3 - 1][2 * i2 - t2 - 1][2 * i1 - t1 - 1] =
u[2 * i3 - d3 - 1][2 * i2 - t2 - 1][2 * i1 - t1 - 1]
+ 0.25 * (z[i3 - 1][i2][i1] + z[i3 - 1][i2 - 1][i1]
+ z[i3 - 1][i2][i1 - 1] + z[i3 - 1][i2 - 1][i1 - 1]);
}
}
}
#pragma omp parallel for default(shared) private(i3, i2, i1) firstprivate(mm3, d2, mm2, d1, mm1, t3, t1, t2, z)
for (i3 = 1; i3 <= mm3 - 1; i3++)
{
for (i2 = d2; i2 <= mm2 - 1; i2++)
{
for (i1 = d1; i1 <= mm1 - 1; i1++)
{
u[2 * i3 - t3 - 1][2 * i2 - d2 - 1][2 * i1 - d1 - 1] =
u[2 * i3 - t3 - 1][2 * i2 - d2 - 1][2 * i1 - d1 - 1]
+ 0.5 * (z[i3][i2 - 1][i1 - 1] + z[i3 - 1][i2 - 1][i1 - 1]);
}
for (i1 = 1; i1 <= mm1 - 1; i1++)
{
u[2 * i3 - t3 - 1][2 * i2 - d2 - 1][2 * i1 - t1 - 1] =
u[2 * i3 - t3 - 1][2 * i2 - d2 - 1][2 * i1 - t1 - 1]
+ 0.25 * (z[i3 ][i2 - 1][i1] + z[i3 ][i2 - 1][i1 - 1]
+ z[i3 - 1][i2 - 1][i1] + z[i3 - 1][i2 - 1][i1 - 1]);
}
}
for (i2 = 1; i2 <= mm2 - 1; i2++)
{
for (i1 = d1; i1 <= mm1 - 1; i1++)
{
u[2 * i3 - t3 - 1][2 * i2 - t2 - 1][2 * i1 - d1 - 1] =
u[2 * i3 - t3 - 1][2 * i2 - t2 - 1][2 * i1 - d1 - 1]
+ 0.25 * (z[i3 ][i2][i1 - 1] + z[i3 ][i2 - 1][i1 - 1]
+ z[i3 - 1][i2][i1 - 1] + z[i3 - 1][i2 - 1][i1 - 1]);
}
for (i1 = 1; i1 <= mm1 - 1; i1++)
{
u[2 * i3 - t3 - 1][2 * i2 - t2 - 1][2 * i1 - t1 - 1] =
u[2 * i3 - t3 - 1][2 * i2 - t2 - 1][2 * i1 - t1 - 1]
+ 0.125 * (z[i3 ][i2][i1 ] + z[i3 ][i2 - 1][i1 ]
+ z[i3 ][i2][i1 - 1] + z[i3 ][i2 - 1][i1 - 1]
+ z[i3 - 1][i2][i1 ] + z[i3 - 1][i2 - 1][i1 ]
+ z[i3 - 1][i2][i1 - 1] + z[i3 - 1][i2 - 1][i1 - 1]);
}
}
}
}
if (debug_vec[0] >= 1)
{
rep_nrm(z, mm1, mm2, mm3, "z: inter", k - 1);
rep_nrm(u, n1, n2, n3, "u: inter", k);
}
if (debug_vec[5] >= k)
{
showall(z, mm1, mm2, mm3);
showall(u, n1, n2, n3);
}
}
//---------------------------------------------------------------------
// norm2u3 evaluates approximations to the L2 norm and the
// uniform (or L-infinity or Chebyshev) norm, under the
// assumption that the boundaries are periodic or zero. Add the
// boundaries in with half weight (quarter weight on the edges
// and eighth weight at the corners) for inhomogeneous boundaries.
//---------------------------------------------------------------------
void norm2u3(void * or , int n1, int n2, int n3,
double *rnm2, double *rnmu,
int nx, int ny, int nz)
{
double (*r)[n2][n1] = (double (*)[n2][n1]) or;
double s, a;
int i3, i2, i1;
double dn;
dn = 1.0 * nx * ny * nz;
s = 0.0;
*rnmu = 0.0;
for (i3 = 1; i3 < n3 - 1; i3++)
{
for (i2 = 1; i2 < n2 - 1; i2++)
{
for (i1 = 1; i1 < n1 - 1; i1++)
{
s = s + pow(r[i3][i2][i1], 2.0);
a = fabs(r[i3][i2][i1]);
if (a > *rnmu) *rnmu = a;
}
}
}
*rnm2 = sqrt(s / dn);
}
//---------------------------------------------------------------------
// report on norm
//---------------------------------------------------------------------
void rep_nrm(void *u, int n1, int n2, int n3, char *title, int kk)
{
double rnm2, rnmu;
norm2u3(u, n1, n2, n3, &rnm2, &rnmu, nx[kk], ny[kk], nz[kk]);
printf(" Level%2d in %8s: norms =%21.14E%21.14E\n", kk, title, rnm2, rnmu);
}
//---------------------------------------------------------------------
// comm3 organizes the communication on all borders
//---------------------------------------------------------------------
void comm3(void *ou, int n1, int n2, int n3, int kk)
{
double (*u)[n2][n1] = (double (*)[n2][n1])ou;
int i1, i2, i3;
#pragma omp parallel for default(shared) private(i3, i2) firstprivate(n3, n2, n1)
for (i3 = 1; i3 < n3 - 1; i3++)
{
for (i2 = 1; i2 < n2 - 1; i2++)
{
u[i3][i2][ 0] = u[i3][i2][n1 - 2];
u[i3][i2][n1 - 1] = u[i3][i2][ 1];
}
}
#pragma omp parallel for default(shared) private(i3, i1) firstprivate(n3, n1, n2)
for (i3 = 1; i3 < n3 - 1; i3++)
{
for (i1 = 0; i1 < n1; i1++)
{
u[i3][ 0][i1] = u[i3][n2 - 2][i1];
u[i3][n2 - 1][i1] = u[i3][ 1][i1];
}
}
#pragma omp parallel for default(shared) private(i2, i1) firstprivate(n2, n1, n3)
for (i2 = 0; i2 < n2; i2++)
{
for (i1 = 0; i1 < n1; i1++)
{
u[ 0][i2][i1] = u[n3 - 2][i2][i1];
u[n3 - 1][i2][i1] = u[ 1][i2][i1];
}
}
}
//---------------------------------------------------------------------
// zran3 loads +1 at ten randomly chosen points,
// loads -1 at a different ten random points,
// and zero elsewhere.
//---------------------------------------------------------------------
void zran3(void *oz, int n1, int n2, int n3, int nx, int ny, int k)
{
double (*z)[n2][n1] = (double (*)[n2][n1])oz;
int i0, m0, m1;
int i1, i2, i3, d1, e1, e2, e3;
double xx, x0, x1, a1, a2, ai;
const int mm = 10;
const double a = pow(5.0, 13.0);
const double x = 314159265.0;
double ten[mm][2], best;
int i, j1[mm][2], j2[mm][2], j3[mm][2];
int jg[4][mm][2];
double rdummy;
a1 = power(a, nx);
a2 = power(a, nx * ny);
zero3(z, n1, n2, n3);
i = is1 - 2 + nx * (is2 - 2 + ny * (is3 - 2));
ai = power(a, i);
d1 = ie1 - is1 + 1;
e1 = ie1 - is1 + 2;
e2 = ie2 - is2 + 2;
e3 = ie3 - is3 + 2;
x0 = x;
rdummy = randlc(&x0, ai);
for (i3 = 1; i3 < e3; i3++)
{
x1 = x0;
for (i2 = 1; i2 < e2; i2++)
{
xx = x1;
vranlc(d1, &xx, a, &(z[i3][i2][1]));
rdummy = randlc(&x1, a1);
}
rdummy = randlc(&x0, a2);
}
//---------------------------------------------------------------------
// comm3(z,n1,n2,n3);
// showall(z,n1,n2,n3);
//---------------------------------------------------------------------
//---------------------------------------------------------------------
// each processor looks for twenty candidates
//---------------------------------------------------------------------
#pragma omp parallel for default(shared) private(i) firstprivate(mm)
for (i = 0; i < mm; i++)
{
ten[i][1] = 0.0;
j1[i][1] = 0;
j2[i][1] = 0;
j3[i][1] = 0;
ten[i][0] = 1.0;
j1[i][0] = 0;
j2[i][0] = 0;
j3[i][0] = 0;
}
for (i3 = 1; i3 < n3 - 1; i3++)
{
for (i2 = 1; i2 < n2 - 1; i2++)
{
for (i1 = 1; i1 < n1 - 1; i1++)
{
if (z[i3][i2][i1] > ten[0][1])
{
ten[0][1] = z[i3][i2][i1];
j1[0][1] = i1;
j2[0][1] = i2;
j3[0][1] = i3;
bubble(ten, j1, j2, j3, mm, 1);
}
if (z[i3][i2][i1] < ten[0][0])
{
ten[0][0] = z[i3][i2][i1];
j1[0][0] = i1;
j2[0][0] = i2;
j3[0][0] = i3;
bubble(ten, j1, j2, j3, mm, 0);
}
}
}
}
//---------------------------------------------------------------------
// Now which of these are globally best?
//---------------------------------------------------------------------
i1 = mm - 1;
i0 = mm - 1;
for (i = mm - 1; i >= 0; i--)
{
best = 0.0;
if (best < ten[i1][1])
{
jg[0][i][1] = 0;
jg[1][i][1] = is1 - 2 + j1[i1][1];
jg[2][i][1] = is2 - 2 + j2[i1][1];
jg[3][i][1] = is3 - 2 + j3[i1][1];
i1 = i1 - 1;
}
else
{
jg[0][i][1] = 0;
jg[1][i][1] = 0;
jg[2][i][1] = 0;
jg[3][i][1] = 0;
}
best = 1.0;
if (best > ten[i0][0])
{
jg[0][i][0] = 0;
jg[1][i][0] = is1 - 2 + j1[i0][0];
jg[2][i][0] = is2 - 2 + j2[i0][0];
jg[3][i][0] = is3 - 2 + j3[i0][0];
i0 = i0 - 1;
}
else
{
jg[0][i][0] = 0;
jg[1][i][0] = 0;
jg[2][i][0] = 0;
jg[3][i][0] = 0;
}
}
// m1 = i1+1;
// m0 = i0+1;
m1 = 0;
m0 = 0;
/*
int cnt = 0;
printf(" \n");
printf(" negative charges at\n");
for (i = 0; i < mm; i++) {
printf(" (%3d,%3d,%3d)", jg[1][i][0], jg[2][i][0], jg[3][i][0]);
if (++cnt % 5 == 0) printf("\n");
}
cnt = 0;
printf(" positive charges at\n");
for (i = 0; i < mm; i++) {
printf(" (%3d,%3d,%3d)", jg[1][i][1], jg[2][i][1], jg[3][i][1]);
if (++cnt % 5 == 0) printf("\n");
}
cnt = 0;
printf(" small random numbers were\n");
for (i = mm-1; i >= 0; i--) {
printf(" %15.8E", ten[i][0]);
if (++cnt % 5 == 0) printf("\n");
}
cnt = 0;
printf(" and they were found on processor number\n");
for (i = mm-1; i >= 0; i--) {
printf(" %4d", jg[0][i][0]);
if (++cnt % 10 == 0) printf("\n");
}
cnt = 0;
printf(" large random numbers were\n");
for (i = mm-1; i >= 0; i--) {
printf(" %15.8E", ten[i][1]);
if (++cnt % 5 == 0) printf("\n");
}
cnt = 0;
printf(" and they were found on processor number\n");
for (i = mm-1; i >= 0; i--) {
printf(" %4d", jg[0][i][1]);
if (++cnt % 10 == 0) printf("\n");
}
*/
#pragma omp parallel for default(shared) private(i3, i2, i1) firstprivate(n3, n2, n1)
for (i3 = 0; i3 < n3; i3++)
{
for (i2 = 0; i2 < n2; i2++)
{
for (i1 = 0; i1 < n1; i1++)
{
z[i3][i2][i1] = 0.0;
}
}
}
for (i = mm - 1; i >= m0; i--)
{
z[jg[3][i][0]][jg[2][i][0]][jg[1][i][0]] = -1.0;
}
for (i = mm - 1; i >= m1; i--)
{
z[jg[3][i][1]][jg[2][i][1]][jg[1][i][1]] = +1.0;
}
comm3(z, n1, n2, n3, k);
//---------------------------------------------------------------------
// showall(z,n1,n2,n3);
//---------------------------------------------------------------------
}
void showall(void *oz, int n1, int n2, int n3)
{
double (*z)[n2][n1] = (double (*)[n2][n1])oz;
int i1, i2, i3;
int m1, m2, m3;
m1 = min(n1, 18);
m2 = min(n2, 14);
m3 = min(n3, 18);
printf(" \n");
for (i3 = 0; i3 < m3; i3++)
{
for (i1 = 0; i1 < m1; i1++)
{
for (i2 = 0; i2 < m2; i2++)
{
printf("%6.3f", z[i3][i2][i1]);
}
printf("\n");
}
printf(" - - - - - - - \n");
}
printf(" \n");
}
//---------------------------------------------------------------------
// power raises an integer, disguised as a double
// precision real, to an integer power
//---------------------------------------------------------------------
double power(double a, int n)
{
double aj;
int nj;
double rdummy;
double power;
power = 1.0;
nj = n;
aj = a;
while (nj != 0)
{
if ((nj % 2) == 1) rdummy = randlc(&power, aj);
rdummy = randlc(&aj, aj);
nj = nj / 2;
}
return power;
}
//---------------------------------------------------------------------
// bubble does a bubble sort in direction dir
//---------------------------------------------------------------------
void bubble(double ten[][2], int j1[][2], int j2[][2], int j3[][2],
int m, int ind)
{
double temp;
int i, j_temp;
if (ind == 1)
{
for (i = 0; i < m - 1; i++)
{
if (ten[i][ind] > ten[i + 1][ind])
{
temp = ten[i + 1][ind];
ten[i + 1][ind] = ten[i][ind];
ten[i][ind] = temp;
j_temp = j1[i + 1][ind];
j1[i + 1][ind] = j1[i][ind];
j1[i][ind] = j_temp;
j_temp = j2[i + 1][ind];
j2[i + 1][ind] = j2[i][ind];
j2[i][ind] = j_temp;
j_temp = j3[i + 1][ind];
j3[i + 1][ind] = j3[i][ind];
j3[i][ind] = j_temp;
}
else
{
return;
}
}
}
else
{
for (i = 0; i < m - 1; i++)
{
if (ten[i][ind] < ten[i + 1][ind])
{
temp = ten[i + 1][ind];
ten[i + 1][ind] = ten[i][ind];
ten[i][ind] = temp;
j_temp = j1[i + 1][ind];
j1[i + 1][ind] = j1[i][ind];
j1[i][ind] = j_temp;
j_temp = j2[i + 1][ind];
j2[i + 1][ind] = j2[i][ind];
j2[i][ind] = j_temp;
j_temp = j3[i + 1][ind];
j3[i + 1][ind] = j3[i][ind];
j3[i][ind] = j_temp;
}
else
{
return;
}
}
}
}
void zero3(void *oz, int n1, int n2, int n3)
{
double (*z)[n2][n1] = (double (*)[n2][n1])oz;
int i1, i2, i3;
#pragma omp parallel for default(shared) private(i3, i2, i1) firstprivate(n3, n2, n1)
for (i3 = 0; i3 < n3; i3++)
{
for (i2 = 0; i2 < n2; i2++)
{
for (i1 = 0; i1 < n1; i1++)
{
z[i3][i2][i1] = 0.0;
}
}
}
}
double randlc( double *x, double a )
{
//--------------------------------------------------------------------
//
// This routine returns a uniform pseudorandom double precision number in the
// range (0, 1) by using the linear congruential generator
//
// x_{k+1} = a x_k (mod 2^46)
//
// where 0 < x_k < 2^46 and 0 < a < 2^46. This scheme generates 2^44 numbers
// before repeating. The argument A is the same as 'a' in the above formula,
// and X is the same as x_0. A and X must be odd double precision integers
// in the range (1, 2^46). The returned value RANDLC is normalized to be
// between 0 and 1, i.e. RANDLC = 2^(-46) * x_1. X is updated to contain
// the new seed x_1, so that subsequent calls to RANDLC using the same
// arguments will generate a continuous sequence.
//
// This routine should produce the same results on any computer with at least
// 48 mantissa bits in double precision floating point data. On 64 bit
// systems, double precision should be disabled.
//
// David H. Bailey October 26, 1990
//
//--------------------------------------------------------------------
// r23 = pow(0.5, 23.0);
//// pow(0.5, 23.0) = 1.1920928955078125e-07
// r46 = r23 * r23;
// t23 = pow(2.0, 23.0);
//// pow(2.0, 23.0) = 8.388608e+06
// t46 = t23 * t23;
const double r23 = 1.1920928955078125e-07;
const double r46 = r23 * r23;
const double t23 = 8.388608e+06;
const double t46 = t23 * t23;
double t1, t2, t3, t4, a1, a2, x1, x2, z;
double r;
//--------------------------------------------------------------------
// Break A into two parts such that A = 2^23 * A1 + A2.
//--------------------------------------------------------------------
t1 = r23 * a;
a1 = (int) t1;
a2 = a - t23 * a1;
//--------------------------------------------------------------------
// Break X into two parts such that X = 2^23 * X1 + X2, compute
// Z = A1 * X2 + A2 * X1 (mod 2^23), and then
// X = 2^23 * Z + A2 * X2 (mod 2^46).
//--------------------------------------------------------------------
t1 = r23 * (*x);
x1 = (int) t1;
x2 = *x - t23 * x1;
t1 = a1 * x2 + a2 * x1;
t2 = (int) (r23 * t1);
z = t1 - t23 * t2;
t3 = t23 * z + a2 * x2;
t4 = (int) (r46 * t3);
*x = t3 - t46 * t4;
r = r46 * (*x);
return r;
}
void vranlc( int n, double *x, double a, double y[] )
{
//--------------------------------------------------------------------
//
// This routine generates N uniform pseudorandom double precision numbers in
// the range (0, 1) by using the linear congruential generator
//
// x_{k+1} = a x_k (mod 2^46)
//
// where 0 < x_k < 2^46 and 0 < a < 2^46. This scheme generates 2^44 numbers
// before repeating. The argument A is the same as 'a' in the above formula,
// and X is the same as x_0. A and X must be odd double precision integers
// in the range (1, 2^46). The N results are placed in Y and are normalized
// to be between 0 and 1. X is updated to contain the new seed, so that
// subsequent calls to VRANLC using the same arguments will generate a
// continuous sequence. If N is zero, only initialization is performed, and
// the variables X, A and Y are ignored.
//
// This routine is the standard version designed for scalar or RISC systems.
// However, it should produce the same results on any single processor
// computer with at least 48 mantissa bits in double precision floating point
// data. On 64 bit systems, double precision should be disabled.
//
//--------------------------------------------------------------------
// r23 = pow(0.5, 23.0);
//// pow(0.5, 23.0) = 1.1920928955078125e-07
// r46 = r23 * r23;
// t23 = pow(2.0, 23.0);
//// pow(2.0, 23.0) = 8.388608e+06
// t46 = t23 * t23;
const double r23 = 1.1920928955078125e-07;
const double r46 = r23 * r23;
const double t23 = 8.388608e+06;
const double t46 = t23 * t23;
double t1, t2, t3, t4, a1, a2, x1, x2, z;
int i;
//--------------------------------------------------------------------
// Break A into two parts such that A = 2^23 * A1 + A2.
//--------------------------------------------------------------------
t1 = r23 * a;
a1 = (int) t1;
a2 = a - t23 * a1;
//--------------------------------------------------------------------
// Generate N results. This loop is not vectorizable.
//--------------------------------------------------------------------
for ( i = 0; i < n; i++ )
{
//--------------------------------------------------------------------
// Break X into two parts such that X = 2^23 * X1 + X2, compute
// Z = A1 * X2 + A2 * X1 (mod 2^23), and then
// X = 2^23 * Z + A2 * X2 (mod 2^46).
//--------------------------------------------------------------------
t1 = r23 * (*x);
x1 = (int) t1;
x2 = *x - t23 * x1;
t1 = a1 * x2 + a2 * x1;
t2 = (int) (r23 * t1);
z = t1 - t23 * t2;
t3 = t23 * z + a2 * x2;
t4 = (int) (r46 * t3) ;
*x = t3 - t46 * t4;
y[i] = r46 * (*x);
}
return;
}
void print_results(char *name, char class, int n1, int n2, int n3, int niter,
double t, double mops, char *optype, int verified)
{
char size[16];
int j;
printf( "\n\n %s Benchmark Completed.\n", name );
printf( " Class = %12c\n", class );
// If this is not a grid-based problem (EP, FT, CG), then
// we only print n1, which contains some measure of the
// problem size. In that case, n2 and n3 are both zero.
// Otherwise, we print the grid size n1xn2xn3
if ( ( n2 == 0 ) && ( n3 == 0 ) )
{
if ( ( name[0] == 'E' ) && ( name[1] == 'P' ) )
{
sprintf( size, "%15.0lf", pow(2.0, n1) );
j = 14;
if ( size[j] == '.' )
{
size[j] = ' ';
j--;
}
size[j + 1] = '\0';
printf( " Size = %15s\n", size );
}
else
{
printf( " Size = %12d\n", n1 );
}
}
else
{
printf( " Size = %4dx%4dx%4d\n", n1, n2, n3 );
}
printf( " Iterations = %12d\n", niter );
printf( " Time in seconds = %12.2lf\n", t );
printf( " Mop/s total = %15.2lf\n", mops );
printf( " Operation type = %24s\n", optype );
if ( verified )
printf( " Verification = %12s\n", "SUCCESSFUL" );
else
printf( " Verification = %12s\n", "UNSUCCESSFUL" );
}
void wtime(double *t)
{
static int sec = -1;
struct timeval tv;
gettimeofday(&tv, (void *)0);
if (sec < 0) sec = tv.tv_sec;
*t = (tv.tv_sec - sec) + 1.0e-6 * tv.tv_usec;
}
/*****************************************************************/
/****** E L A P S E D _ T I M E ******/
/*****************************************************************/
double elapsed_time( void )
{
double t;
wtime( &t );
return ( t );
}
/*****************************************************************/
/****** T I M E R _ C L E A R ******/
/*****************************************************************/
void timer_clear( int n )
{
elapsed[n] = 0.0;
}
/*****************************************************************/
/****** T I M E R _ S T A R T ******/
/*****************************************************************/
void timer_start( int n )
{
start[n] = elapsed_time();
}
/*****************************************************************/
/****** T I M E R _ S T O P ******/
/*****************************************************************/
void timer_stop( int n )
{
double t, now;
now = elapsed_time();
t = now - start[n];
elapsed[n] += t;
}
/*****************************************************************/
/****** T I M E R _ R E A D ******/
/*****************************************************************/
double timer_read( int n )
{
return ( elapsed[n] );
}
|
the_stack_data/11986.c |
void poldiv(float u[], int n, float v[], int nv, float q[], float r[])
{
int k,j;
for (j=0;j<=n;j++) {
r[j]=u[j];
q[j]=0.0;
}
for (k=n-nv;k>=0;k--) {
q[k]=r[nv+k]/v[nv];
for (j=nv+k-1;j>=k;j--) r[j] -= q[k]*v[j-k];
}
for (j=nv;j<=n;j++) r[j]=0.0;
}
|
the_stack_data/62638071.c | // Stack ADT implementation
#include <stdio.h>
#include <stdlib.h>
#include <string.h>
#include <stdbool.h>
#define ERR -1
typedef char Data;
typedef int Top;
typedef struct _stack
{
Data* stk;
size_t stkSize;
Top t;
} Stack;
// Maintenance
bool initStack(Stack*, const size_t);
void process(Stack*, const int);
// Core
bool push(Stack*, const Data);
Data pop(Stack*);
void peek(Stack*);
bool duplicate(Stack*);
bool print(Stack*);
bool upRotate(Stack*, const int);
bool downRotate(Stack*, const int);
int main(void)
{
Stack stack;
int n, command_count;
scanf("%d", &n);
initStack(&stack, n);
scanf("%d", &command_count);
getchar();
process(&stack, command_count);
free(stack.stk);
return 0;
}
void process(Stack* stack, const int cmd_count)
{
char cmdInput[41];
char* finder = 0;
for (int i = 0; i < cmd_count; i++)
{
scanf("%[^\n]", cmdInput);
getchar();
finder = strchr(cmdInput, ' ');
if (finder) *finder = '\0';
if (!strcmp(cmdInput, "PUSH"))
push(stack, cmdInput[5]);
else if (!strcmp(cmdInput, "POP"))
pop(stack);
else if (!strcmp(cmdInput, "PEEK"))
peek(stack);
else if (!strcmp(cmdInput, "DUP"))
duplicate(stack);
else if (!strcmp(cmdInput, "UpR"))
upRotate(stack, atoi(cmdInput + 4));
else if (!strcmp(cmdInput, "DownR"))
downRotate(stack, atoi(cmdInput + 6));
else if (!strcmp(cmdInput, "PRINT"))
print(stack);
}
}
bool initStack(Stack* target, const size_t n)
{
target->stk = (Data*)malloc(sizeof(Data) * n);
if (!target->stk) return false;
target->stkSize = n;
target->t = ERR;
return true;
}
bool push(Stack* target, const Data d)
{
if (target->t == target->stkSize - 1)
{
puts("Stack FULL");
return false;
}
target->t++;
target->stk[target->t] = d;
return true;
}
Data pop(Stack* target)
{
if (target->t == ERR)
{
puts("Stack Empty");
return ERR;
}
target->t--;
return target->stk[target->t + 1];
}
void peek(Stack* target)
{
if (target->t == ERR)
puts("Stack empty");
printf("%c\n", target->stk[target->t]);
}
bool duplicate(Stack* target)
{
Data temp = pop(target);
if (temp != ERR)
{
push(target, temp);
push(target, temp);
}
return true;
}
bool print(Stack* target)
{
if (target->t == -1)
return false;
for (int i = target->t; i >= 0; i--)
printf("%c", target->stk[i]);
putchar('\n');
return true;
}
bool upRotate(Stack* target, const int n)
{
if (n > target->t + 1) return false;
Data temp = pop(target);
Stack* tempStack = (Stack*)malloc(sizeof(Stack));
initStack(tempStack, n - 1);
for (int i = 0; i < n - 1; i++)
push(tempStack, pop(target));
push(target, temp);
for (int i = 0; i < n - 1; i++)
push(target, pop(tempStack));
free(tempStack->stk);
free(tempStack);
return true;
}
bool downRotate(Stack* target, const int n)
{
if (n > target->t + 1) return false;
Data temp;
Stack* tempStack = (Stack*)malloc(sizeof(Stack));
initStack(tempStack, (size_t)(n - 1));
for (int i = 0; i < n - 1; i++)
push(tempStack, pop(target));
temp = pop(target);
for (int i = 0; i < n - 1; i++)
push(target, pop(tempStack));
push(target, temp);
free(tempStack->stk);
free(tempStack);
return true;
} |
the_stack_data/154829098.c | #include <stdlib.h>
#include <stdio.h>
typedef struct S {
char* name;
int age;
} S;
S* newS(char* name, int age) {
S* ret = malloc(sizeof(S));
ret->name = name;
ret->age = age;
return ret;
}
void showS(S* s) {
printf("s->name : %s\n", s->name);
printf("s->age : %d\n", s->age);
}
|
the_stack_data/659638.c | // RUN: env CINDEXTEST_EDITING=1 CINDEXTEST_PREAMBLE_FILE=%t-preamble.pch \
// RUN: not c-index-test -test-load-source-reparse 1 local \
// RUN: -remap-file="%s,%S/Inputs/crash-recovery-reparse-remap.c" \
// RUN: %s 2> %t.err
// RUN: FileCheck < %t.err -check-prefix=CHECK-REPARSE-SOURCE-CRASH %s
// RUN: test ! -e $t-preamble.pch
// CHECK-REPARSE-SOURCE-CRASH: Unable to reparse translation unit
//
// REQUIRES: crash-recovery
// UNSUPPORTED: libstdcxx-safe-mode
#warning parsing original file
|
the_stack_data/242330969.c | /* { dg-options "-Os -mthumb" } */
/* { dg-require-effective-target arm_thumb1_ok } */
/* { dg-final { scan-assembler-not "sub\[\\t \]*sp,\[\\t \]*sp" } } */
/* { dg-final { scan-assembler-not "add\[\\t \]*sp,\[\\t \]*sp" } } */
/* Here, we test that if there's a pop of r[4567] in the epilogue,
add sp,sp,#12 is removed and replaced by three additional pops
of lower-numbered regs. */
extern void bar(int*);
int t1, t2, t3, t4, t5;
int foo()
{
int i,j,k,x = 0;
for (i = 0; i < t1; i++)
for (j = 0; j < t2; j++)
bar(&x);
return x;
}
|
the_stack_data/3262095.c | #include <stdio.h>
#include <stdlib.h>
#define SUCESSO 0
#define FALHA -1
typedef struct {
int x;
int y;
} Ponto;
void preencherPonto(Ponto *ponto, int x, int y) {
ponto->x = x;
ponto->y = y;
}
int main() {
Ponto *ponto = malloc(sizeof(Ponto));
if (ponto == NULL) return FALHA;
preencherPonto(ponto, 0, 1);
printf("O endereco de memoria é: %p\n", (void *)ponto);
printf("Coordenada X: %d\n", ponto->x);
printf("Coordenada Y: %d\n", ponto->y);
free(ponto);
return SUCESSO;
}
//https://pt.stackoverflow.com/q/307590/101
|
the_stack_data/6585.c | /**
* Note: The returned array must be malloced, assume caller calls free().
*/
int* countBits(int num, int* returnSize){
*returnSize = num + 1;
int *r = malloc(sizeof(int) * (*returnSize));
r[0] = 0;
for(int i=1; i<=num; i++)
{
r[i] = r[i >> 1] + (i & 1);
}
return r;
}
|
the_stack_data/72013982.c | #include<stdio.h>
#include<string.h>
int main()
{
char str[100]="NIAWS TIHSRAD", strrev[100],temp[100];;
printf("\nEnter the string to be reverse");
int i,j;
j=strlen(str);
//while(str[i]!='\0')
//{
// j++;
//}
//printf("%d",j);
i=0;
j=j-1;
for(i=0;i<j;i++)
{
strrev[i]=str[j];
j--;
}
}
|
the_stack_data/34393.c | /* { dg-do compile } */
/* { dg-require-effective-target lp64 } */
/* { dg-require-effective-target fpic } */
/* { dg-options "-O2 -mcx16 -fpic -mcmodel=large -fno-split-wide-types" } */
__int128 i;
void test ()
{
__sync_val_compare_and_swap (&i, i, i);
}
|
the_stack_data/159515338.c | // divide error in squashfs_readpage
// https://syzkaller.appspot.com/bug?id=e8f781243ce16ac2f962
// status:3
// autogenerated by syzkaller (https://github.com/google/syzkaller)
#define _GNU_SOURCE
#include <endian.h>
#include <errno.h>
#include <fcntl.h>
#include <stddef.h>
#include <stdint.h>
#include <stdio.h>
#include <stdlib.h>
#include <string.h>
#include <sys/ioctl.h>
#include <sys/mount.h>
#include <sys/stat.h>
#include <sys/syscall.h>
#include <sys/types.h>
#include <unistd.h>
#include <linux/loop.h>
static unsigned long long procid;
struct fs_image_segment {
void* data;
uintptr_t size;
uintptr_t offset;
};
#define IMAGE_MAX_SEGMENTS 4096
#define IMAGE_MAX_SIZE (129 << 20)
#define sys_memfd_create 319
static unsigned long fs_image_segment_check(unsigned long size,
unsigned long nsegs,
struct fs_image_segment* segs)
{
if (nsegs > IMAGE_MAX_SEGMENTS)
nsegs = IMAGE_MAX_SEGMENTS;
for (size_t i = 0; i < nsegs; i++) {
if (segs[i].size > IMAGE_MAX_SIZE)
segs[i].size = IMAGE_MAX_SIZE;
segs[i].offset %= IMAGE_MAX_SIZE;
if (segs[i].offset > IMAGE_MAX_SIZE - segs[i].size)
segs[i].offset = IMAGE_MAX_SIZE - segs[i].size;
if (size < segs[i].offset + segs[i].offset)
size = segs[i].offset + segs[i].offset;
}
if (size > IMAGE_MAX_SIZE)
size = IMAGE_MAX_SIZE;
return size;
}
static int setup_loop_device(long unsigned size, long unsigned nsegs,
struct fs_image_segment* segs,
const char* loopname, int* memfd_p, int* loopfd_p)
{
int err = 0, loopfd = -1;
size = fs_image_segment_check(size, nsegs, segs);
int memfd = syscall(sys_memfd_create, "syzkaller", 0);
if (memfd == -1) {
err = errno;
goto error;
}
if (ftruncate(memfd, size)) {
err = errno;
goto error_close_memfd;
}
for (size_t i = 0; i < nsegs; i++) {
if (pwrite(memfd, segs[i].data, segs[i].size, segs[i].offset) < 0) {
}
}
loopfd = open(loopname, O_RDWR);
if (loopfd == -1) {
err = errno;
goto error_close_memfd;
}
if (ioctl(loopfd, LOOP_SET_FD, memfd)) {
if (errno != EBUSY) {
err = errno;
goto error_close_loop;
}
ioctl(loopfd, LOOP_CLR_FD, 0);
usleep(1000);
if (ioctl(loopfd, LOOP_SET_FD, memfd)) {
err = errno;
goto error_close_loop;
}
}
*memfd_p = memfd;
*loopfd_p = loopfd;
return 0;
error_close_loop:
close(loopfd);
error_close_memfd:
close(memfd);
error:
errno = err;
return -1;
}
static long syz_mount_image(volatile long fsarg, volatile long dir,
volatile unsigned long size,
volatile unsigned long nsegs,
volatile long segments, volatile long flags,
volatile long optsarg)
{
struct fs_image_segment* segs = (struct fs_image_segment*)segments;
int res = -1, err = 0, loopfd = -1, memfd = -1, need_loop_device = !!segs;
char* mount_opts = (char*)optsarg;
char* target = (char*)dir;
char* fs = (char*)fsarg;
char* source = NULL;
char loopname[64];
if (need_loop_device) {
memset(loopname, 0, sizeof(loopname));
snprintf(loopname, sizeof(loopname), "/dev/loop%llu", procid);
if (setup_loop_device(size, nsegs, segs, loopname, &memfd, &loopfd) == -1)
return -1;
source = loopname;
}
mkdir(target, 0777);
char opts[256];
memset(opts, 0, sizeof(opts));
if (strlen(mount_opts) > (sizeof(opts) - 32)) {
}
strncpy(opts, mount_opts, sizeof(opts) - 32);
if (strcmp(fs, "iso9660") == 0) {
flags |= MS_RDONLY;
} else if (strncmp(fs, "ext", 3) == 0) {
if (strstr(opts, "errors=panic") || strstr(opts, "errors=remount-ro") == 0)
strcat(opts, ",errors=continue");
} else if (strcmp(fs, "xfs") == 0) {
strcat(opts, ",nouuid");
}
res = mount(source, target, fs, flags, opts);
if (res == -1) {
err = errno;
goto error_clear_loop;
}
res = open(target, O_RDONLY | O_DIRECTORY);
if (res == -1) {
err = errno;
}
error_clear_loop:
if (need_loop_device) {
ioctl(loopfd, LOOP_CLR_FD, 0);
close(loopfd);
close(memfd);
}
errno = err;
return res;
}
#ifndef __NR_execveat
#define __NR_execveat 322
#endif
uint64_t r[1] = {0xffffffffffffffff};
int main(void)
{
syscall(__NR_mmap, 0x1ffff000ul, 0x1000ul, 0ul, 0x32ul, -1, 0ul);
syscall(__NR_mmap, 0x20000000ul, 0x1000000ul, 7ul, 0x32ul, -1, 0ul);
syscall(__NR_mmap, 0x21000000ul, 0x1000ul, 0ul, 0x32ul, -1, 0ul);
intptr_t res = 0;
memcpy((void*)0x20000000, "squashfs\000", 9);
memcpy((void*)0x20000100, "./file0\000", 8);
*(uint64_t*)0x20000200 = 0x20010000;
memcpy(
(void*)0x20010000,
"\x68\x73\x71\x73\x07\x00\x00\x00\x91\x1d\x67\x5f\x00\x10\x00\x00\x00\x00"
"\x00\x00\x01\x00\x0c\x00\xd1\x01\x02\x00\x04\x00\x00\x00\x26\x01\x00\x00"
"\x00\x00\x00\x00\x02\x03\x00\x00\x00\x00\x00\x00\xa6\x02\x00\x00\x00\x00"
"\x00\x00\xea\x02\x00\x00\x00\x00\x00\x00\x99\x00\x00\x00\x00\x00\x00\x00"
"\xe1\x01\x00\x00\x00\x00\x00\x00\x5a\x02\x00\x00\x00\x00\x00\x00\x94\x02"
"\x00\x00\x00\x00\x00\x00\x78\xda\x2b\xae\xac\xca\x4e\xcc\xc9\x49\x2d\x2a"
"\xa6\x1d\x03\x00\x85\x49\x2b\x1f\x78\xda\x2b\xae\xac\xca\x4e\xcc\xc9\x49"
"\x2d\x2a\x1e\x65\x8c\x32\x46\x19\xa3\x0c\x18\x03\x00\x55\x65\xc4\xa2\x73"
"\x79\x7a\x6b\x61\x6c\x6c\x65\x72\x73\x46\x81\x02\x00\xed\x01\x00\x00\x01"
"\x00\x91\x1d\x67\x5f\x01\x00\x00\x00\x60\x00\x00\x00\xff\xff\xff\xff\x00"
"\x00\x00\x00\x64\x00\x00\x00\x14\x00\x00\x00\x02\x00\xed\x01\x00\x00\x01"
"\x00\x91\x1d\x67\x5f\x03\x00\x00\x00\x74\x00\x00\x00\xff\xff\xff\xff\x00"
"\x00\x00\x00\x1a\x04\x00\x00\x1b\x00\x00\x00\x03\x00\xff\x01\x00\x00\x01"
"\x00\x91\x1d\x67\x5f\x04\x00\x00\x00\x01\x00\x00\x00\x26\x00\x00\x00\x2f"
"\x74\x6d\x70\x2f\x73\x79\x7a\x2d\x69\x6d\x61\x67\x65\x67\x65\x6e\x34\x31"
"\x39\x37\x37\x36\x33\x39\x32\x2f\x66\x69\x6c\x65\x30\x2f\x66\x69\x6c\x65"
"\x30\x01\x00\xed\x01\x00\x00\x01\x00\x91\x1d\x67\x5f\x02\x00\x00\x00\x00"
"\x00\x00\x00\x02\x00\x00\x00\x29\x00\x00\x00\x07\x00\x00\x00\x09\x00\xed"
"\x01\x00\x00\x01\x00\x91\x1d\x67\x5f\x05\x00\x00\x00\x8f\x00\x00\x00\x00"
"\x00\x00\x00\x0a\x00\xf1\xff\xff\xff\x00\x00\x00\x00\x00\x00\x00\x00\x00"
"\x00\x01\x00\x00\x00\xff\xff\xff\xff\x00\x00\x00\x00\x00\x00\x00\x00\x0a"
"\x00\x00\x01\x09\x00\xed\x01\x00\x00\x01\x00\x91\x1d\x67\x5f\x06\x00\x00"
"\x00\x99\x00\x00\x00\x00\x00\x00\x00\x28\x23\x00\x00\x00\x00\x00\x00\x00"
"\x00\x00\x00\x00\x00\x00\x00\x02\x00\x00\x00\xff\xff\xff\xff\x00\x00\x00"
"\x00\xff\xff\xff\xff\x00\x00\x00\x00\x00\x00\x00\x00\x00\x00\x00\x00\x01"
"\x00\xc0\x01\x00\x00\x01\x00\x91\x1d\x67\x5f\x07\x00\x00\x00\x00\x00\x00"
"\x00\x03\x00\x00\x00\x54\x00\x26\x00\x08\x00\x00\x00\x77\x80\x01\x00\x00"
"\x00\x00\x00\x00\x00\x03\x00\x00\x00\x24\x00\x00\x00\x02\x00\x04\x00\x66"
"\x69\x6c\x65\x30\x48\x00\x01\x00\x03\x00\x04\x00\x66\x69\x6c\x65\x31\x04"
"\x00\x00\x00\x00\x00\x00\x00\x01\x00\x00\x00\x00\x00\x00\x00\x02\x00\x08"
"\x00\x66\x69\x6c\x65\x2e\x63\x6f\x6c\x64\x86\x00\x01\x00\x01\x00\x04\x00"
"\x66\x69\x6c\x65\x30\xa6\x00\x04\x00\x02\x00\x04\x00\x66\x69\x6c\x65\x31"
"\xe2\x00\x05\x00\x02\x00\x04\x00\x66\x69\x6c\x65\x32\xe2\x00\x05\x00\x02"
"\x00\x04\x00\x66\x69\x6c\x65\x33\x38\x80\x00\x00\x00\x00\x00\x00\x00\x00"
"\x86\x00\x00\x00\x00\x00\x00\x00\x24\x00\x00\x00\x00\x00\x00\x00\x48\x00"
"\x00\x00\x00\x00\x00\x00\xa6\x00\x00\x00\x00\x00\x00\x00\xe2\x00\x00\x00"
"\x00\x00\x00\x00\x26\x01\x00\x00\x00\x00\x00\x00\x5a\x02\x00\x00\x00\x00"
"\x00\x00\x08\x80\x5c\xf9\x01\x00\x53\x5f\x01\x00\x9c\x02\x00\x00\x00\x00"
"\x00\x00\x28\x80\x00\x00\x06\x00\x78\x61\x74\x74\x72\x31\x06\x00\x00\x00"
"\x78\x61\x74\x74\x72\x31\x00\x00\x06\x00\x78\x61\x74\x74\x72\x32\x06\x00"
"\x00\x00\x78\x61\x74\x74\x72\x32\x10\x80\x00\x00\x00\x00\x00\x00\x00\x00"
"\x02\x00\x00\x00\x24\x00\x00\x00\xae\x02\x00\x00\x00\x00\x00\x00\x01\x00"
"\x00\x00\x00\x00\x00\x00\xd8\x02",
764);
*(uint64_t*)0x20000208 = 0x2fc;
*(uint64_t*)0x20000210 = 0;
res = -1;
res = syz_mount_image(0x20000000, 0x20000100, 0x1000, 1, 0x20000200, 0,
0x20000140);
if (res != -1)
r[0] = res;
memcpy((void*)0x20000040, "./file1\000", 8);
syscall(__NR_execveat, r[0], 0x20000040ul, 0ul, 0ul, 0ul);
return 0;
}
|
the_stack_data/753896.c | #include <pthread.h>
#include <stdio.h>
#include <string.h>
#include <unistd.h>
int value = 42;
void *callback(void *arg) {
printf("\t\t\t|child thread: %ld\n", pthread_self());
value++;
pthread_exit((void *)&value); // return (void *)&value;
}
int main() {
pthread_t tid;
int ret = pthread_create(&tid, NULL, callback, NULL);
if (ret != 0) {
char *errstr = strerror(ret);
printf("error : %s\n", errstr);
}
printf("|main thread: %ld\n", pthread_self());
int *thread_retval;
ret = pthread_join(tid, (void **)&thread_retval);
if (ret != 0) {
char *errstr = strerror(ret);
printf("error : %s\n", errstr);
}
printf("|main thread: %ld, get %d from child thread\n", pthread_self(),
*thread_retval);
pthread_exit(NULL);
return 0;
}
|
the_stack_data/6386586.c | main(n, a, i) {
scanf("%d", &n);
for (i = a = 1; i < n; i++) a += 4 * i;
printf("%d", a);
} |
the_stack_data/140766219.c | static inline void f(void)
{
__builtin_constant_p(0);
}
void foo(void)
{
0 ? 0 : f();
}
void bar(void)
{
1 ? f() : 0;
}
/*
* check-name: cond-err-expand.c
* check-command: test-linearize -Wno-decl $file
*
* check-error-start
cond-err-expand.c:8:11: error: incompatible types in conditional expression (different base types)
cond-err-expand.c:13:11: error: incompatible types in conditional expression (different base types)
* check-error-end
*
* check-output-ignore
* check-excludes: call.* __builtin_constant_p
*/
|
the_stack_data/828576.c | #include <stdio.h>
int main (){
int v1,v2,v3,pri, seg, ter, tot;
printf("Informe Um Valor: ");
scanf("%d",&v1);
printf("Informe Um Valor: ");
scanf("%d",&v2);
printf("Informe Um Valor: ");
scanf("%d",&v3);
if (v1>v2){
if (v1>v3){
printf("%d\n",v1);
pri=v1;
if(v2>v3){
seg=v2;
ter=v3;
}
else {
seg=v3;
ter=v2;
}
} else {
printf("%d\n",v3);
pri=v3;
seg=v1;
ter=v2;
}
} else if ( v2 > v3 ){
printf("%d\n",v2);
pri=v2;
if(v3 > v1){
seg=v3;
ter=v1;
}else {
seg=v1;
ter=v2;
}
} else {
printf("%d\n",v3);
pri=v3;
seg=v2;
ter=v1;
}
tot = pri+seg;
printf("Primeiro : %d \n",ter);
printf("Segundo : %d \n",seg);
printf("Terceiro : %d \n",pri);
return 0;
} |
the_stack_data/104028.c | #include <stdio.h>
#include <stdlib.h>
#include <stdint.h>
void
print_stuff() {
printf("Hello world\n");
}
void proxy(void (*a)(), int val){
if (val == 123123) {
a();
}
printf("Hup\n");
}
int
parse1(const uint8_t *data, size_t size) {
proxy(print_stuff, size);
return 1;
}
int LLVMFuzzerTestOneInput(const uint8_t *data, size_t size) {
return parse1(data, size);
}
|
the_stack_data/90764270.c | // REQUIRES: lto
// XFAIL: msvc
// RUN: %clang_pgogen=%t.profraw -flto %s -o %t
// RUN: %run %t
// RUN: llvm-profdata merge %t.profraw -o %t.profdata
// RUN: llvm-profdata show %t.profdata | FileCheck %s
// Testing a bug that happens when trying to generate IR
// profile with BFD linker + LTO plugin
// CHECK: Instrumentation level: IR
int main() { return 0; }
|
the_stack_data/48574173.c | /*
1.7.3 Faça um programa que imprima um nome, escolhido pelo
usuário, na tela. Você deverá permitir que o usuário digite (função
scanf()) este nome, definindo uma variável para guardar este
nome na memória.
*/
#include <stdio.h>
int main(){
char nome[30];
printf("Entre com o nome do usuario: ");
scanf("%s",nome);
printf("O nome digitado foi: %s ",nome);
} |
the_stack_data/1215510.c | void recibe();
void escribe();
int simpleconv_main(){
char buff[50];
newMsgQueue("simpleconv", 1, sizeof(buff));
newProcess("recibe", &recibe, 0, 0, 0);
newProcess("escribe", &escribe, 0, 0, 0);
}
void recibe(){
int j = 0;
char buff[50];
while(j<6){
printLn("----- Espero mensaje -----");
getMsgQueue(buff, "simpleconv");
print("Recibi: ");
printLn(buff);
printLn("---------------------------");
j++;
}
deleteMsgQueue("simpleconv");
printLn("");
print("$ ");
}
void escribe(){
int i = 0;
while(i<6){
char * textos[] = {"Hola", "Don", "Pepito", "Hola", "Don", "Jose"};
printLn("****** Escribo mensaje ******");
print("Envio ");
printLn(textos[i]);
putMsgQueue(textos[i], "simpleconv");
printLn("***************************");
i++;
}
}
|
the_stack_data/117327849.c | /* Code generated from eC source file: ast.ec */
#if defined(_WIN32)
#define __runtimePlatform 1
#elif defined(__APPLE__)
#define __runtimePlatform 3
#else
#define __runtimePlatform 2
#endif
#if defined(__GNUC__) || defined(__clang__)
#if defined(__clang__) && defined(__WIN32__)
#define int64 long long
#define uint64 unsigned long long
#if defined(_WIN64)
#define ssize_t long long
#else
#define ssize_t long
#endif
#else
typedef long long int64;
typedef unsigned long long uint64;
#endif
#ifndef _WIN32
#define __declspec(x)
#endif
#elif defined(__TINYC__)
#include <stdarg.h>
#define __builtin_va_list va_list
#define __builtin_va_start va_start
#define __builtin_va_end va_end
#ifdef _WIN32
#define strcasecmp stricmp
#define strncasecmp strnicmp
#define __declspec(x) __attribute__((x))
#else
#define __declspec(x)
#endif
typedef long long int64;
typedef unsigned long long uint64;
#else
typedef __int64 int64;
typedef unsigned __int64 uint64;
#endif
#ifdef __BIG_ENDIAN__
#define __ENDIAN_PAD(x) (8 - (x))
#else
#define __ENDIAN_PAD(x) 0
#endif
#if defined(_WIN32)
# if defined(__clang__) && defined(__WIN32__)
# define ecere_stdcall __stdcall
# define ecere_gcc_struct
# elif defined(__GNUC__) || defined(__TINYC__)
# define ecere_stdcall __attribute__((__stdcall__))
# define ecere_gcc_struct __attribute__((gcc_struct))
# else
# define ecere_stdcall __stdcall
# define ecere_gcc_struct
# endif
#else
# define ecere_stdcall
# define ecere_gcc_struct
#endif
#include <stdint.h>
#include <sys/types.h>
extern int yydebug;
enum yytokentype
{
IDENTIFIER = 258, CONSTANT = 259, STRING_LITERAL = 260, SIZEOF = 261, PTR_OP = 262, INC_OP = 263, DEC_OP = 264, LEFT_OP = 265, RIGHT_OP = 266, LE_OP = 267, GE_OP = 268, EQ_OP = 269, NE_OP = 270, AND_OP = 271, OR_OP = 272, MUL_ASSIGN = 273, DIV_ASSIGN = 274, MOD_ASSIGN = 275, ADD_ASSIGN = 276, SUB_ASSIGN = 277, LEFT_ASSIGN = 278, RIGHT_ASSIGN = 279, AND_ASSIGN = 280, XOR_ASSIGN = 281, OR_ASSIGN = 282, TYPE_NAME = 283, TYPEDEF = 284, EXTERN = 285, STATIC = 286, AUTO = 287, REGISTER = 288, CHAR = 289, SHORT = 290, INT = 291, UINT = 292, INT64 = 293, INT128 = 294, FLOAT128 = 295, LONG = 296, SIGNED = 297, UNSIGNED = 298, FLOAT = 299, DOUBLE = 300, CONST = 301, VOLATILE = 302, VOID = 303, VALIST = 304, STRUCT = 305, UNION = 306, ENUM = 307, ELLIPSIS = 308, CASE = 309, DEFAULT = 310, IF = 311, SWITCH = 312, WHILE = 313, DO = 314, FOR = 315, GOTO = 316, CONTINUE = 317, BREAK = 318, RETURN = 319, IFX = 320, ELSE = 321, CLASS = 322, THISCLASS = 323, PROPERTY = 324, SETPROP = 325, GETPROP = 326, NEWOP = 327, RENEW = 328, DELETE = 329, EXT_DECL = 330, EXT_STORAGE = 331, IMPORT = 332, DEFINE = 333, VIRTUAL = 334, ATTRIB = 335, PUBLIC = 336, PRIVATE = 337, TYPED_OBJECT = 338, ANY_OBJECT = 339, _INCREF = 340, EXTENSION = 341, ASM = 342, TYPEOF = 343, WATCH = 344, STOPWATCHING = 345, FIREWATCHERS = 346, WATCHABLE = 347, CLASS_DESIGNER = 348, CLASS_NO_EXPANSION = 349, CLASS_FIXED = 350, ISPROPSET = 351, CLASS_DEFAULT_PROPERTY = 352, PROPERTY_CATEGORY = 353, CLASS_DATA = 354, CLASS_PROPERTY = 355, SUBCLASS = 356, NAMESPACE = 357, NEW0OP = 358, RENEW0 = 359, VAARG = 360, DBTABLE = 361, DBFIELD = 362, DBINDEX = 363, DATABASE_OPEN = 364, ALIGNOF = 365, ATTRIB_DEP = 366, __ATTRIB = 367, BOOL = 368, _BOOL = 369, _COMPLEX = 370, _IMAGINARY = 371, RESTRICT = 372, THREAD = 373, WIDE_STRING_LITERAL = 374, BUILTIN_OFFSETOF = 375, PRAGMA = 376, STATIC_ASSERT = 377
};
int yyparse(void);
extern char * yytext;
const char * defaultNameSpace;
int defaultNameSpaceLen;
unsigned int strictNameSpaces;
int declMode = 2;
int structDeclMode = 2;
int defaultDeclMode = 2;
const char * currentNameSpace;
int currentNameSpaceLen;
struct ContextStringPair
{
char * string, * context;
} ecere_gcc_struct;
struct __ecereNameSpace__ecere__com__Instance * intlStrings;
extern unsigned int inCompiler;
extern const char * i18nModuleName;
extern struct __ecereNameSpace__ecere__com__Property * __ecereProp___ecereNameSpace__ecere__com__Iterator_data;
extern unsigned int buildingECERECOMModule;
extern struct __ecereNameSpace__ecere__com__Property * __ecereProp___ecereNameSpace__ecere__sys__BinaryTree_first;
extern struct __ecereNameSpace__ecere__com__Property * __ecereProp___ecereNameSpace__ecere__sys__BTNode_next;
extern unsigned int inIDE;
extern int targetBits;
extern int targetPlatform;
extern struct __ecereNameSpace__ecere__com__Property * __ecereProp___ecereNameSpace__ecere__com__MapIterator_map;
extern struct __ecereNameSpace__ecere__com__Property * __ecereProp___ecereNameSpace__ecere__com__MapIterator_key;
extern int yyparse();
extern int yylex();
struct __ecereNameSpace__ecere__sys__OldList
{
void * first;
void * last;
int count;
unsigned int offset;
unsigned int circ;
} ecere_gcc_struct;
struct __ecereNameSpace__ecere__com__DataValue
{
union
{
char c;
unsigned char uc;
short s;
unsigned short us;
int i;
unsigned int ui;
void * p;
float f;
double d;
long long i64;
uint64 ui64;
} ecere_gcc_struct __anon1;
} ecere_gcc_struct;
struct __ecereNameSpace__ecere__com__SerialBuffer
{
unsigned char * _buffer;
size_t count;
size_t _size;
size_t pos;
} ecere_gcc_struct;
extern void * __ecereNameSpace__ecere__com__eSystem_New(unsigned int size);
extern void * __ecereNameSpace__ecere__com__eSystem_New0(unsigned int size);
extern void * __ecereNameSpace__ecere__com__eSystem_Renew(void * memory, unsigned int size);
extern void * __ecereNameSpace__ecere__com__eSystem_Renew0(void * memory, unsigned int size);
extern void __ecereNameSpace__ecere__com__eSystem_Delete(void * memory);
struct CodePosition
{
int line;
int charPos;
int pos;
int included;
} ecere_gcc_struct;
extern size_t strlen(const char * );
extern void * memcpy(void * , const void * , size_t size);
extern int strcmp(const char * , const char * );
extern char * __ecereNameSpace__ecere__sys__CopyString(const char * string);
struct ClassImport;
extern char * QMkString(const char * source);
extern char * strstr(const char * , const char * );
extern char * __ecereNameSpace__ecere__sys__RSearchString(const char * buffer, const char * subStr, int maxLen, unsigned int matchCase, unsigned int matchWord);
struct __ecereNameSpace__ecere__com__DefinedExpression;
extern void Compiler_Warning(const char * format, ...);
extern const char * __ecereNameSpace__ecere__GetTranslatedString(const char * name, const char * string, const char * stringAndContext);
extern int sprintf(char * , const char * , ...);
extern void Compiler_Error(const char * format, ...);
struct __ecereNameSpace__ecere__com__LinkList
{
void * first;
void * last;
int count;
} ecere_gcc_struct;
extern char * strncpy(char * , const char * , size_t n);
extern void ImportModule(const char * name, int importType, int importAccess, unsigned int loadDllOnly);
extern char * strcpy(char * , const char * );
extern char * strcat(char * , const char * );
extern int strncmp(const char * , const char * , size_t n);
extern char * strchr(const char * , int);
extern long long strtoll(const char * nptr, char * * endptr, int base);
extern unsigned long strtoul(const char * nptr, char * * endptr, int base);
extern void FullClassNameCat(char * output, const char * className, unsigned int includeTemplateParams);
struct __ecereNameSpace__ecere__com__CustomAVLTree
{
struct __ecereNameSpace__ecere__com__AVLNode * root;
int count;
} ecere_gcc_struct;
extern const char * GetSourceFile(void);
extern const char * GetOutputFile(void);
extern char * __ecereNameSpace__ecere__sys__ChangeExtension(const char * string, const char * ext, char * output);
extern char * __ecereNameSpace__ecere__sys__GetSlashPathBuffer(char * d, const char * p);
struct __ecereNameSpace__ecere__com__IteratorPointer;
struct __ecereNameSpace__ecere__com__GlobalFunction;
void ParseEc()
{
yyparse();
}
const char * GetYYText()
{
return yytext;
}
void SetStrictNameSpaces(unsigned int b)
{
strictNameSpaces = b;
}
void SetDeclMode(int accessMode)
{
structDeclMode = declMode = accessMode;
}
void SetDefaultDeclMode(int accessMode)
{
defaultDeclMode = accessMode;
}
int LexEc()
{
return yylex();
}
extern struct __ecereNameSpace__ecere__sys__OldList * excludedSymbols;
extern void FreeList(struct __ecereNameSpace__ecere__sys__OldList * list, void (* FreeFunction)(void * ));
extern struct __ecereNameSpace__ecere__sys__OldList * imports;
extern struct __ecereNameSpace__ecere__sys__OldList * ast;
void __ecereMethod___ecereNameSpace__ecere__sys__OldList_Add(struct __ecereNameSpace__ecere__sys__OldList * this, void * item);
unsigned int __ecereMethod___ecereNameSpace__ecere__sys__OldList_Insert(struct __ecereNameSpace__ecere__sys__OldList * this, void * prevItem, void * item);
void __ecereMethod___ecereNameSpace__ecere__sys__OldList_Remove(struct __ecereNameSpace__ecere__sys__OldList * this, void * item);
void __ecereMethod___ecereNameSpace__ecere__sys__OldList_Clear(struct __ecereNameSpace__ecere__sys__OldList * this);
struct __ecereNameSpace__ecere__sys__OldList * MkList()
{
return __ecereNameSpace__ecere__com__eSystem_New0(sizeof(struct __ecereNameSpace__ecere__sys__OldList) * (1));
}
struct Location
{
struct CodePosition start;
struct CodePosition end;
} ecere_gcc_struct;
void SetDefaultNameSpace(const char * s)
{
defaultNameSpace = s;
defaultNameSpaceLen = s ? strlen(s) : 0;
}
void SetCurrentNameSpace(const char * s)
{
currentNameSpace = s;
currentNameSpaceLen = s ? strlen(s) : 0;
}
void SetAST(struct __ecereNameSpace__ecere__sys__OldList * list)
{
ast = list;
}
struct __ecereNameSpace__ecere__sys__OldList * GetAST()
{
return ast;
}
struct __ecereNameSpace__ecere__sys__OldList * MkListOne(void * item)
{
struct __ecereNameSpace__ecere__sys__OldList * list = __ecereNameSpace__ecere__com__eSystem_New0(sizeof(struct __ecereNameSpace__ecere__sys__OldList) * (1));
__ecereMethod___ecereNameSpace__ecere__sys__OldList_Add((&*list), item);
return list;
}
void ListAdd(struct __ecereNameSpace__ecere__sys__OldList * list, void * item)
{
if(item)
__ecereMethod___ecereNameSpace__ecere__sys__OldList_Add(list, item);
}
void ListAddFront(struct __ecereNameSpace__ecere__sys__OldList * list, void * item)
{
if(item)
__ecereMethod___ecereNameSpace__ecere__sys__OldList_Insert(list, (((void *)0)), item);
}
extern struct Location yylloc;
struct Context;
extern struct Context * curContext;
extern struct Context * globalContext;
extern void FreeContext(struct Context * context);
struct __ecereNameSpace__ecere__com__Class;
struct __ecereNameSpace__ecere__com__Instance
{
void * * _vTbl;
struct __ecereNameSpace__ecere__com__Class * _class;
int _refCount;
} ecere_gcc_struct;
extern long long __ecereNameSpace__ecere__com__eClass_GetProperty(struct __ecereNameSpace__ecere__com__Class * _class, const char * name);
extern void __ecereNameSpace__ecere__com__eClass_SetProperty(struct __ecereNameSpace__ecere__com__Class * _class, const char * name, long long value);
extern struct __ecereNameSpace__ecere__com__Class * thisClass;
extern void * __ecereNameSpace__ecere__com__eInstance_New(struct __ecereNameSpace__ecere__com__Class * _class);
extern void __ecereNameSpace__ecere__com__eInstance_SetMethod(struct __ecereNameSpace__ecere__com__Instance * instance, const char * name, void * function);
extern void __ecereNameSpace__ecere__com__eInstance_IncRef(struct __ecereNameSpace__ecere__com__Instance * instance);
extern struct __ecereNameSpace__ecere__com__Instance * __ecereNameSpace__ecere__sys__FileOpen(const char * fileName, int mode);
struct __ecereNameSpace__ecere__com__MapIterator
{
struct __ecereNameSpace__ecere__com__Instance * container;
struct __ecereNameSpace__ecere__com__IteratorPointer * pointer;
} ecere_gcc_struct;
struct __ecereNameSpace__ecere__com__Iterator
{
struct __ecereNameSpace__ecere__com__Instance * container;
struct __ecereNameSpace__ecere__com__IteratorPointer * pointer;
} ecere_gcc_struct;
extern int __ecereVMethodID___ecereNameSpace__ecere__com__Container_Add;
int __ecereMethod___ecereNameSpace__ecere__sys__File_Printf(struct __ecereNameSpace__ecere__com__Instance * this, const char * format, ...);
extern void __ecereNameSpace__ecere__com__eInstance_DecRef(struct __ecereNameSpace__ecere__com__Instance * instance);
extern int __ecereVMethodID___ecereNameSpace__ecere__com__Container_Free;
struct __ecereNameSpace__ecere__com__Instance * __ecereProp___ecereNameSpace__ecere__com__MapIterator_Get_map(struct __ecereNameSpace__ecere__com__MapIterator * this);
void __ecereProp___ecereNameSpace__ecere__com__MapIterator_Set_map(struct __ecereNameSpace__ecere__com__MapIterator * this, struct __ecereNameSpace__ecere__com__Instance * value);
const uint64 __ecereProp___ecereNameSpace__ecere__com__MapIterator_Get_key(struct __ecereNameSpace__ecere__com__MapIterator * this);
unsigned int __ecereMethod___ecereNameSpace__ecere__com__Iterator_Index(struct __ecereNameSpace__ecere__com__Iterator * this, const uint64 index, unsigned int create);
uint64 __ecereProp___ecereNameSpace__ecere__com__Iterator_Get_data(struct __ecereNameSpace__ecere__com__Iterator * this);
void __ecereProp___ecereNameSpace__ecere__com__Iterator_Set_data(struct __ecereNameSpace__ecere__com__Iterator * this, uint64 value);
unsigned int __ecereMethod___ecereNameSpace__ecere__com__Iterator_Next(struct __ecereNameSpace__ecere__com__Iterator * this);
void __ecereDestroyModuleInstances_ast()
{
(__ecereNameSpace__ecere__com__eInstance_DecRef(intlStrings), intlStrings = 0);
}
struct ModuleImport;
extern struct ModuleImport * mainModule;
struct ModuleImport
{
struct ModuleImport * prev;
struct ModuleImport * next;
char * name;
struct __ecereNameSpace__ecere__sys__OldList classes;
struct __ecereNameSpace__ecere__sys__OldList functions;
int importType;
int importAccess;
} ecere_gcc_struct;
struct Expression;
extern struct Expression * QMkExpId(const char * id);
extern void PrintExpression(struct Expression * exp, char * string);
extern void FreeExpression(struct Expression * exp);
extern struct Expression * CopyExpression(struct Expression * exp);
extern void ProcessExpressionType(struct Expression * exp);
extern void ComputeExpression(struct Expression * exp);
struct External;
extern void FreeExternal(struct External * external);
extern struct External * curExternal;
struct __ecereNameSpace__ecere__sys__BTNode;
struct __ecereNameSpace__ecere__sys__BTNode
{
uintptr_t key;
struct __ecereNameSpace__ecere__sys__BTNode * parent;
struct __ecereNameSpace__ecere__sys__BTNode * left;
struct __ecereNameSpace__ecere__sys__BTNode * right;
int depth;
} ecere_gcc_struct;
struct __ecereNameSpace__ecere__sys__BTNode * __ecereProp___ecereNameSpace__ecere__sys__BTNode_Get_next(struct __ecereNameSpace__ecere__sys__BTNode * this);
struct DBIndexItem;
struct Symbol;
extern void FreeSymbol(struct Symbol * symbol);
extern struct Symbol * FindSymbol(const char * name, struct Context * startContext, struct Context * endContext, unsigned int isStruct, unsigned int globalNameSpace);
extern void DeclareClass(struct External * neededFor, struct Symbol * classSym, const char * className);
struct DBTableDef
{
char * name;
struct Symbol * symbol;
struct __ecereNameSpace__ecere__sys__OldList * definitions;
int declMode;
} ecere_gcc_struct;
struct Type;
extern void FreeType(struct Type * type);
extern void PrintTypeNoConst(struct Type * type, char * string, unsigned int printName, unsigned int fullName);
struct Declarator;
extern void FreeDeclarator(struct Declarator * decl);
extern struct Declarator * GetFuncDecl(struct Declarator * decl);
extern char * StringFromSpecDecl(struct __ecereNameSpace__ecere__sys__OldList * specs, struct Declarator * decl);
struct TemplateDatatype
{
struct __ecereNameSpace__ecere__sys__OldList * specifiers;
struct Declarator * decl;
} ecere_gcc_struct;
extern struct Declarator * SpecDeclFromString(const char * string, struct __ecereNameSpace__ecere__sys__OldList * specs, struct Declarator * baseDecl);
struct Specifier;
extern void FreeSpecifier(struct Specifier * spec);
extern struct Specifier * CopySpecifier(struct Specifier * spec);
struct __ecereNameSpace__ecere__sys__OldList * MkSpecsClass(struct Specifier * _class)
{
struct __ecereNameSpace__ecere__sys__OldList * list = MkList();
ListAdd(list, _class);
return list;
}
struct Specifier * _MkSpecifierName(const char * name, struct Symbol * symbol, struct __ecereNameSpace__ecere__sys__OldList * templateArgs);
struct Specifier * MkSpecifierName(const char * name)
{
return _MkSpecifierName(name, (((void *)0)), (((void *)0)));
}
struct Specifier * MkSpecifierNameArgs(const char * name, struct __ecereNameSpace__ecere__sys__OldList * templateArgs)
{
return _MkSpecifierName(name, (((void *)0)), templateArgs);
}
struct TemplateArgument;
extern void FreeTemplateArgument(struct TemplateArgument * arg);
struct ClassFunction;
extern void FreeClassFunction(struct ClassFunction * func);
struct __ecereNameSpace__ecere__sys__NamedLink64;
struct __ecereNameSpace__ecere__sys__NamedLink64
{
struct __ecereNameSpace__ecere__sys__NamedLink64 * prev;
struct __ecereNameSpace__ecere__sys__NamedLink64 * next;
char * name;
long long data;
} ecere_gcc_struct;
struct __ecereNameSpace__ecere__sys__OldLink;
struct __ecereNameSpace__ecere__sys__OldLink
{
struct __ecereNameSpace__ecere__sys__OldLink * prev;
struct __ecereNameSpace__ecere__sys__OldLink * next;
void * data;
} ecere_gcc_struct;
int CheckType(const char * text);
int check_type()
{
return CheckType(yytext);
}
struct DBTableEntry;
struct MemberInit;
struct Attrib;
struct ExtDecl
{
struct Location loc;
int type;
union
{
char * s;
struct Attrib * attr;
struct __ecereNameSpace__ecere__sys__OldList * multiAttr;
} ecere_gcc_struct __anon1;
} ecere_gcc_struct;
struct Attrib
{
struct Attrib * prev;
struct Attrib * next;
struct Location loc;
int type;
struct __ecereNameSpace__ecere__sys__OldList * attribs;
} ecere_gcc_struct;
struct Pointer;
struct Pointer
{
struct Pointer * prev;
struct Pointer * next;
struct Location loc;
struct __ecereNameSpace__ecere__sys__OldList * qualifiers;
struct Pointer * pointer;
} ecere_gcc_struct;
struct PropertyWatch;
struct Symbol * FindType(struct Context * ctx, const char * name);
struct __ecereNameSpace__ecere__com__DataMember;
extern struct __ecereNameSpace__ecere__com__DataMember * __ecereNameSpace__ecere__com__eClass_AddDataMember(struct __ecereNameSpace__ecere__com__Class * _class, const char * name, const char * type, unsigned int size, unsigned int alignment, int declMode);
struct __ecereNameSpace__ecere__com__Method;
struct __ecereNameSpace__ecere__com__Method
{
const char * name;
struct __ecereNameSpace__ecere__com__Method * parent;
struct __ecereNameSpace__ecere__com__Method * left;
struct __ecereNameSpace__ecere__com__Method * right;
int depth;
int (* function)();
int vid;
int type;
struct __ecereNameSpace__ecere__com__Class * _class;
void * symbol;
const char * dataTypeString;
struct Type * dataType;
int memberAccess;
} ecere_gcc_struct;
extern struct __ecereNameSpace__ecere__com__Method * __ecereNameSpace__ecere__com__eClass_AddMethod(struct __ecereNameSpace__ecere__com__Class * _class, const char * name, const char * type, void * function, int declMode);
struct __ecereNameSpace__ecere__com__Property;
struct __ecereNameSpace__ecere__com__ClassTemplateArgument
{
union
{
struct
{
const char * dataTypeString;
struct __ecereNameSpace__ecere__com__Class * dataTypeClass;
} ecere_gcc_struct __anon1;
struct __ecereNameSpace__ecere__com__DataValue expression;
struct
{
const char * memberString;
union
{
struct __ecereNameSpace__ecere__com__DataMember * member;
struct __ecereNameSpace__ecere__com__Property * prop;
struct __ecereNameSpace__ecere__com__Method * method;
} ecere_gcc_struct __anon1;
} ecere_gcc_struct __anon2;
} ecere_gcc_struct __anon1;
} ecere_gcc_struct;
struct __ecereNameSpace__ecere__com__Property
{
struct __ecereNameSpace__ecere__com__Property * prev;
struct __ecereNameSpace__ecere__com__Property * next;
const char * name;
unsigned int isProperty;
int memberAccess;
int id;
struct __ecereNameSpace__ecere__com__Class * _class;
const char * dataTypeString;
struct __ecereNameSpace__ecere__com__Class * dataTypeClass;
struct Type * dataType;
void (* Set)(void * , int);
int (* Get)(void * );
unsigned int (* IsSet)(void * );
void * data;
void * symbol;
int vid;
unsigned int conversion;
unsigned int watcherOffset;
const char * category;
unsigned int compiled;
unsigned int selfWatchable;
unsigned int isWatchable;
} ecere_gcc_struct;
extern void __ecereNameSpace__ecere__com__eInstance_FireSelfWatchers(struct __ecereNameSpace__ecere__com__Instance * instance, struct __ecereNameSpace__ecere__com__Property * _property);
extern void __ecereNameSpace__ecere__com__eInstance_StopWatching(struct __ecereNameSpace__ecere__com__Instance * instance, struct __ecereNameSpace__ecere__com__Property * _property, struct __ecereNameSpace__ecere__com__Instance * object);
extern void __ecereNameSpace__ecere__com__eInstance_Watch(struct __ecereNameSpace__ecere__com__Instance * instance, struct __ecereNameSpace__ecere__com__Property * _property, void * object, void (* callback)(void * , void * ));
extern void __ecereNameSpace__ecere__com__eInstance_FireWatchers(struct __ecereNameSpace__ecere__com__Instance * instance, struct __ecereNameSpace__ecere__com__Property * _property);
struct Symbol
{
char * string;
struct Symbol * parent;
struct Symbol * left;
struct Symbol * right;
int depth;
struct Type * type;
union
{
struct __ecereNameSpace__ecere__com__Method * method;
struct __ecereNameSpace__ecere__com__Property * _property;
struct __ecereNameSpace__ecere__com__Class * registered;
} ecere_gcc_struct __anon1;
unsigned int notYetDeclared;
union
{
struct
{
struct External * pointerExternal;
struct External * structExternal;
} ecere_gcc_struct __anon1;
struct
{
struct External * externalGet;
struct External * externalSet;
struct External * externalPtr;
struct External * externalIsSet;
} ecere_gcc_struct __anon2;
struct
{
struct External * methodExternal;
struct External * methodCodeExternal;
} ecere_gcc_struct __anon3;
} ecere_gcc_struct __anon2;
unsigned int imported;
unsigned int declaredStructSym;
struct __ecereNameSpace__ecere__com__Class * _class;
unsigned int declaredStruct;
unsigned int needConstructor;
unsigned int needDestructor;
char * constructorName;
char * structName;
char * className;
char * destructorName;
struct ModuleImport * module;
struct ClassImport * _import;
struct Location nameLoc;
unsigned int isParam;
unsigned int isRemote;
unsigned int isStruct;
unsigned int fireWatchersDone;
int declaring;
unsigned int classData;
unsigned int isStatic;
char * shortName;
struct __ecereNameSpace__ecere__sys__OldList * templateParams;
struct __ecereNameSpace__ecere__sys__OldList templatedClasses;
struct Context * ctx;
int isIterator;
struct Expression * propCategory;
unsigned int mustRegister;
} ecere_gcc_struct;
struct __ecereNameSpace__ecere__com__Module;
extern struct __ecereNameSpace__ecere__com__DefinedExpression * __ecereNameSpace__ecere__com__eSystem_FindDefine(struct __ecereNameSpace__ecere__com__Instance * module, const char * name);
extern struct __ecereNameSpace__ecere__com__Instance * privateModule;
extern struct __ecereNameSpace__ecere__com__DefinedExpression * __ecereNameSpace__ecere__com__eSystem_RegisterDefine(const char * name, const char * value, struct __ecereNameSpace__ecere__com__Instance * module, int declMode);
extern struct __ecereNameSpace__ecere__com__Class * __ecereNameSpace__ecere__com__eSystem_FindClass(struct __ecereNameSpace__ecere__com__Instance * module, const char * name);
extern struct __ecereNameSpace__ecere__com__GlobalFunction * __ecereNameSpace__ecere__com__eSystem_RegisterFunction(const char * name, const char * type, void * func, struct __ecereNameSpace__ecere__com__Instance * module, int declMode);
extern struct __ecereNameSpace__ecere__com__Class * __ecereNameSpace__ecere__com__eSystem_RegisterClass(int type, const char * name, const char * baseName, int size, int sizeClass, unsigned int (* Constructor)(void * ), void (* Destructor)(void * ), struct __ecereNameSpace__ecere__com__Instance * module, int declMode, int inheritanceAccess);
extern struct __ecereNameSpace__ecere__com__Instance * __thisModule;
struct Enumerator;
struct Initializer;
struct MemberInit
{
struct MemberInit * prev;
struct MemberInit * next;
struct Location loc;
struct Location realLoc;
struct __ecereNameSpace__ecere__sys__OldList * identifiers;
struct Initializer * initializer;
unsigned int used;
unsigned int variable;
unsigned int takeOutExp;
} ecere_gcc_struct;
struct Attribute;
struct Attribute
{
struct Attribute * prev;
struct Attribute * next;
struct Location loc;
char * attr;
struct Expression * exp;
} ecere_gcc_struct;
struct AsmField;
struct __ecereNameSpace__ecere__sys__BinaryTree;
struct __ecereNameSpace__ecere__sys__BinaryTree
{
struct __ecereNameSpace__ecere__sys__BTNode * root;
int count;
int (* CompareKey)(struct __ecereNameSpace__ecere__sys__BinaryTree * tree, uintptr_t a, uintptr_t b);
void (* FreeKey)(void * key);
} ecere_gcc_struct;
struct __ecereNameSpace__ecere__com__DataMember
{
struct __ecereNameSpace__ecere__com__DataMember * prev;
struct __ecereNameSpace__ecere__com__DataMember * next;
const char * name;
unsigned int isProperty;
int memberAccess;
int id;
struct __ecereNameSpace__ecere__com__Class * _class;
const char * dataTypeString;
struct __ecereNameSpace__ecere__com__Class * dataTypeClass;
struct Type * dataType;
int type;
int offset;
int memberID;
struct __ecereNameSpace__ecere__sys__OldList members;
struct __ecereNameSpace__ecere__sys__BinaryTree membersAlpha;
int memberOffset;
short structAlignment;
short pointerAlignment;
} ecere_gcc_struct;
unsigned int __ecereMethod___ecereNameSpace__ecere__sys__BinaryTree_Add(struct __ecereNameSpace__ecere__sys__BinaryTree * this, struct __ecereNameSpace__ecere__sys__BTNode * node);
struct __ecereNameSpace__ecere__sys__BTNode * __ecereMethod___ecereNameSpace__ecere__sys__BinaryTree_FindString(struct __ecereNameSpace__ecere__sys__BinaryTree * this, const char * key);
struct __ecereNameSpace__ecere__sys__BTNode * __ecereProp___ecereNameSpace__ecere__sys__BinaryTree_Get_first(struct __ecereNameSpace__ecere__sys__BinaryTree * this);
struct TemplateParameter;
struct TemplatedType
{
uintptr_t key;
struct __ecereNameSpace__ecere__sys__BTNode * parent;
struct __ecereNameSpace__ecere__sys__BTNode * left;
struct __ecereNameSpace__ecere__sys__BTNode * right;
int depth;
struct TemplateParameter * param;
} ecere_gcc_struct;
struct Type
{
struct Type * prev;
struct Type * next;
int refCount;
union
{
struct Symbol * _class;
struct
{
struct __ecereNameSpace__ecere__sys__OldList members;
char * enumName;
} ecere_gcc_struct __anon1;
struct
{
struct Type * returnType;
struct __ecereNameSpace__ecere__sys__OldList params;
struct Symbol * thisClass;
unsigned int staticMethod;
struct TemplateParameter * thisClassTemplate;
} ecere_gcc_struct __anon2;
struct
{
struct __ecereNameSpace__ecere__com__Method * method;
struct __ecereNameSpace__ecere__com__Class * methodClass;
struct __ecereNameSpace__ecere__com__Class * usedClass;
} ecere_gcc_struct __anon3;
struct
{
struct Type * arrayType;
int arraySize;
struct Expression * arraySizeExp;
unsigned int freeExp;
struct Symbol * enumClass;
} ecere_gcc_struct __anon4;
struct Type * type;
struct TemplateParameter * templateParameter;
} ecere_gcc_struct __anon1;
int kind;
unsigned int size;
char * name;
char * typeName;
struct __ecereNameSpace__ecere__com__Class * thisClassFrom;
int promotedFrom;
int classObjectType;
int alignment;
unsigned int offset;
int bitFieldCount;
int count;
int bitMemberSize;
unsigned int isSigned : 1;
unsigned int constant : 1;
unsigned int truth : 1;
unsigned int byReference : 1;
unsigned int extraParam : 1;
unsigned int directClassAccess : 1;
unsigned int computing : 1;
unsigned int keepCast : 1;
unsigned int passAsTemplate : 1;
unsigned int dllExport : 1;
unsigned int attrStdcall : 1;
unsigned int declaredWithStruct : 1;
unsigned int typedByReference : 1;
unsigned int casted : 1;
unsigned int pointerAlignment : 1;
unsigned int isLong : 1;
unsigned int signedBeforePromotion : 1;
unsigned int isVector : 1;
} ecere_gcc_struct;
struct TemplatedType * FindTemplateTypeParameter(struct Context * ctx, const char * name);
void CopyTypeInto(struct Type * type, struct Type * src)
{
*type = *src;
type->name = __ecereNameSpace__ecere__sys__CopyString(src->name);
type->typeName = __ecereNameSpace__ecere__sys__CopyString(src->typeName);
type->refCount = 1;
if(src->kind == 15)
{
struct __ecereNameSpace__ecere__sys__NamedLink64 * member;
__ecereMethod___ecereNameSpace__ecere__sys__OldList_Clear(&type->__anon1.__anon1.members);
for(member = src->__anon1.__anon1.members.first; member; member = member->next)
{
__ecereMethod___ecereNameSpace__ecere__sys__OldList_Add(&type->__anon1.__anon1.members, __extension__ ({
struct __ecereNameSpace__ecere__sys__NamedLink64 * __ecereInstance1 = __ecereNameSpace__ecere__com__eSystem_New0(sizeof(struct __ecereNameSpace__ecere__sys__NamedLink64));
__ecereInstance1->name = __ecereNameSpace__ecere__sys__CopyString(member->name), __ecereInstance1->data = member->data, __ecereInstance1;
}));
}
type->__anon1.__anon1.enumName = __ecereNameSpace__ecere__sys__CopyString(src->__anon1.__anon1.enumName);
}
else if(src->kind == 9 || src->kind == 10)
{
struct Type * member;
for(member = type->__anon1.__anon1.members.first; member; member = member->next)
member->refCount++;
type->__anon1.__anon1.enumName = __ecereNameSpace__ecere__sys__CopyString(src->__anon1.__anon1.enumName);
}
else if(src->kind == 11)
{
struct Type * param;
type->__anon1.__anon2.returnType->refCount++;
for(param = type->__anon1.__anon2.params.first; param; param = param->next)
param->refCount++;
}
else if(src->kind == 13 || src->kind == 12)
{
type->__anon1.type->refCount++;
if(src->kind == 12)
{
if(type->__anon1.__anon4.arraySizeExp)
type->__anon1.__anon4.arraySizeExp = CopyExpression(type->__anon1.__anon4.arraySizeExp);
}
}
}
struct Identifier;
struct Identifier
{
struct Identifier * prev;
struct Identifier * next;
struct Location loc;
struct Symbol * classSym;
struct Specifier * _class;
char * string;
struct Identifier * badID;
} ecere_gcc_struct;
struct Enumerator
{
struct Enumerator * prev;
struct Enumerator * next;
struct Location loc;
struct Identifier * id;
struct Expression * exp;
struct __ecereNameSpace__ecere__sys__OldList * attribs;
} ecere_gcc_struct;
struct Specifier
{
struct Specifier * prev;
struct Specifier * next;
struct Location loc;
int type;
union
{
int specifier;
struct
{
struct ExtDecl * extDecl;
char * name;
struct Symbol * symbol;
struct __ecereNameSpace__ecere__sys__OldList * templateArgs;
struct Specifier * nsSpec;
} ecere_gcc_struct __anon1;
struct
{
struct Identifier * id;
struct __ecereNameSpace__ecere__sys__OldList * list;
struct __ecereNameSpace__ecere__sys__OldList * baseSpecs;
struct __ecereNameSpace__ecere__sys__OldList * definitions;
unsigned int addNameSpace;
struct Context * ctx;
struct ExtDecl * extDeclStruct;
} ecere_gcc_struct __anon2;
struct Expression * expression;
struct Specifier * _class;
struct TemplateParameter * templateParameter;
} ecere_gcc_struct __anon1;
} ecere_gcc_struct;
struct Declarator
{
struct Declarator * prev;
struct Declarator * next;
struct Location loc;
int type;
struct Symbol * symbol;
struct Declarator * declarator;
union
{
struct Identifier * identifier;
struct
{
struct Expression * exp;
struct Expression * posExp;
struct Attrib * attrib;
} ecere_gcc_struct structDecl;
struct
{
struct Expression * exp;
struct Specifier * enumClass;
} ecere_gcc_struct array;
struct
{
struct __ecereNameSpace__ecere__sys__OldList * parameters;
} ecere_gcc_struct function;
struct
{
struct Pointer * pointer;
} ecere_gcc_struct pointer;
struct
{
struct ExtDecl * extended;
} ecere_gcc_struct extended;
} ecere_gcc_struct __anon1;
} ecere_gcc_struct;
struct Initializer
{
struct Initializer * prev;
struct Initializer * next;
struct Location loc;
int type;
union
{
struct Expression * exp;
struct __ecereNameSpace__ecere__sys__OldList * list;
} ecere_gcc_struct __anon1;
unsigned int isConstant;
struct Identifier * id;
} ecere_gcc_struct;
struct TemplateArgument
{
struct TemplateArgument * prev;
struct TemplateArgument * next;
struct Location loc;
struct Identifier * name;
int type;
union
{
struct Expression * expression;
struct Identifier * identifier;
struct TemplateDatatype * templateDatatype;
} ecere_gcc_struct __anon1;
} ecere_gcc_struct;
struct TemplateParameter
{
struct TemplateParameter * prev;
struct TemplateParameter * next;
struct Location loc;
int type;
struct Identifier * identifier;
union
{
struct TemplateDatatype * dataType;
int memberType;
} ecere_gcc_struct __anon1;
struct TemplateArgument * defaultArgument;
const char * dataTypeString;
struct Type * baseType;
} ecere_gcc_struct;
struct AsmField
{
struct AsmField * prev;
struct AsmField * next;
struct Location loc;
char * command;
struct Expression * expression;
struct Identifier * symbolic;
} ecere_gcc_struct;
struct DBIndexItem
{
struct DBIndexItem * prev;
struct DBIndexItem * next;
struct Identifier * id;
int order;
} ecere_gcc_struct;
struct Identifier * GetDeclId(struct Declarator * decl)
{
while(decl && decl->type != 1)
decl = decl->declarator;
return decl ? decl->__anon1.identifier : (((void *)0));
}
struct TypeName;
struct TypeName
{
struct TypeName * prev;
struct TypeName * next;
struct Location loc;
struct __ecereNameSpace__ecere__sys__OldList * qualifiers;
struct Declarator * declarator;
int classObjectType;
struct Expression * bitCount;
} ecere_gcc_struct;
struct DBTableEntry
{
struct DBTableEntry * prev;
struct DBTableEntry * next;
int type;
struct Identifier * id;
union
{
struct
{
struct TypeName * dataType;
char * name;
} ecere_gcc_struct __anon1;
struct __ecereNameSpace__ecere__sys__OldList * items;
} ecere_gcc_struct __anon1;
} ecere_gcc_struct;
struct FunctionDefinition;
struct FunctionDefinition * _MkFunction(struct __ecereNameSpace__ecere__sys__OldList * specifiers, struct Declarator * declarator, struct __ecereNameSpace__ecere__sys__OldList * declarationList, unsigned int errorOnOmit);
struct FunctionDefinition * MkFunction(struct __ecereNameSpace__ecere__sys__OldList * specifiers, struct Declarator * declarator, struct __ecereNameSpace__ecere__sys__OldList * declarationList)
{
return _MkFunction(specifiers, declarator, declarationList, 1);
}
static struct Type * ProcessTypeDecls(struct __ecereNameSpace__ecere__sys__OldList * specs, struct Declarator * decl, struct Type * parentType);
struct Type * ProcessType(struct __ecereNameSpace__ecere__sys__OldList * specs, struct Declarator * decl)
{
return ProcessTypeDecls(specs, decl, (((void *)0)));
}
struct Type * ProcessTypeString(const char * string, unsigned int staticMethod)
{
struct __ecereNameSpace__ecere__sys__OldList * specs = MkList();
struct Declarator * decl = SpecDeclFromString(string, specs, (((void *)0)));
struct Type * type = ProcessType(specs, decl);
if(type && !type->__anon1.__anon2.thisClass && staticMethod)
type->__anon1.__anon2.staticMethod = 1;
FreeList(specs, (void *)(FreeSpecifier));
if(decl)
FreeDeclarator(decl);
return type;
}
struct Instantiation;
struct Instantiation
{
struct Instantiation * prev;
struct Instantiation * next;
struct Location loc;
struct Specifier * _class;
struct Expression * exp;
struct __ecereNameSpace__ecere__sys__OldList * members;
struct Symbol * symbol;
unsigned int fullSet;
unsigned int isConstant;
unsigned char * data;
struct Location nameLoc;
struct Location insideLoc;
unsigned int built;
} ecere_gcc_struct;
struct Symbol * _DeclClass(struct Specifier * _class, const char * name);
struct Symbol * DeclClassAddNameSpace(struct Specifier * _class, const char * className)
{
char name[1024];
int len = 0, stringLen;
name[0] = '\0';
if(className[0] != ':' && (currentNameSpace || defaultNameSpace) && declMode != 0 && defaultDeclMode != 0 && (!_class || _class->__anon1.__anon1.name))
{
if(defaultNameSpace)
{
memcpy(name, defaultNameSpace, defaultNameSpaceLen);
len += defaultNameSpaceLen;
name[len++] = ':';
name[len++] = ':';
}
if(currentNameSpace)
{
memcpy(name + len, currentNameSpace, currentNameSpaceLen);
len += currentNameSpaceLen;
name[len++] = ':';
name[len++] = ':';
}
}
stringLen = strlen(className);
memcpy(name + len, className, stringLen);
len += stringLen;
name[len] = 0;
return _DeclClass(_class, name);
}
struct Symbol * DeclClass(struct Specifier * _class, const char * name)
{
if(_class || strchr(name, ':'))
return _DeclClass(_class, name);
else
return DeclClassAddNameSpace(_class, name);
}
struct ClassDefinition;
struct Context
{
struct Context * parent;
struct __ecereNameSpace__ecere__sys__BinaryTree types;
struct __ecereNameSpace__ecere__sys__BinaryTree classes;
struct __ecereNameSpace__ecere__sys__BinaryTree symbols;
struct __ecereNameSpace__ecere__sys__BinaryTree structSymbols;
int nextID;
int simpleID;
struct __ecereNameSpace__ecere__sys__BinaryTree templateTypes;
struct ClassDefinition * classDef;
unsigned int templateTypesOnly;
unsigned int hasNameSpace;
} ecere_gcc_struct;
struct ClassDefinition
{
struct ClassDefinition * prev;
struct ClassDefinition * next;
struct Location loc;
struct Specifier * _class;
struct __ecereNameSpace__ecere__sys__OldList * baseSpecs;
struct __ecereNameSpace__ecere__sys__OldList * definitions;
struct Symbol * symbol;
struct Location blockStart;
struct Location nameLoc;
int declMode;
unsigned int deleteWatchable;
} ecere_gcc_struct;
void PopContext(struct Context * ctx)
{
curContext = ctx->parent;
}
struct Symbol * FindType(struct Context * ctx, const char * name)
{
struct Symbol * type = (((void *)0));
if(ctx)
{
type = (struct Symbol *)__ecereMethod___ecereNameSpace__ecere__sys__BinaryTree_FindString(&ctx->types, name);
if(!type && ctx->parent)
type = FindType(ctx->parent, name);
}
return type;
}
struct Symbol * FindStruct(struct Context * ctx, const char * name)
{
struct Symbol * type = (((void *)0));
if(ctx)
{
type = (struct Symbol *)__ecereMethod___ecereNameSpace__ecere__sys__BinaryTree_FindString(&ctx->structSymbols, name);
if(!type && ctx->parent)
type = FindStruct(ctx->parent, name);
}
return type;
}
struct TemplatedType * FindTemplateTypeParameter(struct Context * ctx, const char * name)
{
struct TemplatedType * templatedType = (((void *)0));
if(curContext)
{
templatedType = (struct TemplatedType *)__ecereMethod___ecereNameSpace__ecere__sys__BinaryTree_FindString(&ctx->templateTypes, name);
if(!templatedType && ctx->parent)
templatedType = FindTemplateTypeParameter(ctx->parent, name);
}
return templatedType;
}
struct Statement;
struct Expression
{
struct Expression * prev;
struct Expression * next;
struct Location loc;
int type;
union
{
struct
{
char * constant;
struct Identifier * identifier;
} ecere_gcc_struct __anon1;
struct Statement * compound;
struct Instantiation * instance;
struct
{
char * string;
unsigned int intlString;
unsigned int wideString;
} ecere_gcc_struct __anon2;
struct __ecereNameSpace__ecere__sys__OldList * list;
struct
{
struct __ecereNameSpace__ecere__sys__OldList * specifiers;
struct Declarator * decl;
} ecere_gcc_struct _classExp;
struct
{
struct Identifier * id;
} ecere_gcc_struct classData;
struct
{
struct Expression * exp;
struct __ecereNameSpace__ecere__sys__OldList * arguments;
struct Location argLoc;
} ecere_gcc_struct call;
struct
{
struct Expression * exp;
struct __ecereNameSpace__ecere__sys__OldList * index;
} ecere_gcc_struct index;
struct
{
struct Expression * exp;
struct Identifier * member;
int memberType;
unsigned int thisPtr;
} ecere_gcc_struct member;
struct
{
int op;
struct Expression * exp1;
struct Expression * exp2;
} ecere_gcc_struct op;
struct TypeName * typeName;
struct Specifier * _class;
struct
{
struct TypeName * typeName;
struct Expression * exp;
} ecere_gcc_struct cast;
struct
{
struct Expression * cond;
struct __ecereNameSpace__ecere__sys__OldList * exp;
struct Expression * elseExp;
} ecere_gcc_struct cond;
struct
{
struct TypeName * typeName;
struct Expression * size;
} ecere_gcc_struct _new;
struct
{
struct TypeName * typeName;
struct Expression * size;
struct Expression * exp;
} ecere_gcc_struct _renew;
struct
{
char * table;
struct Identifier * id;
} ecere_gcc_struct db;
struct
{
struct Expression * ds;
struct Expression * name;
} ecere_gcc_struct dbopen;
struct
{
struct TypeName * typeName;
struct Initializer * initializer;
} ecere_gcc_struct initializer;
struct
{
struct Expression * exp;
struct TypeName * typeName;
} ecere_gcc_struct vaArg;
struct
{
struct TypeName * typeName;
struct Identifier * id;
} ecere_gcc_struct offset;
} ecere_gcc_struct __anon1;
unsigned int debugValue;
struct __ecereNameSpace__ecere__com__DataValue val;
uint64 address;
unsigned int hasAddress;
struct Type * expType;
struct Type * destType;
unsigned int usage;
int tempCount;
unsigned int byReference;
unsigned int isConstant;
unsigned int addedThis;
unsigned int needCast;
unsigned int thisPtr;
unsigned int opDestType;
unsigned int usedInComparison;
unsigned int ambiguousUnits;
unsigned int parentOpDestType;
unsigned int needTemplateCast;
} ecere_gcc_struct;
struct FunctionDefinition
{
struct FunctionDefinition * prev;
struct FunctionDefinition * next;
struct Location loc;
struct __ecereNameSpace__ecere__sys__OldList * specifiers;
struct Declarator * declarator;
struct __ecereNameSpace__ecere__sys__OldList * declarations;
struct Statement * body;
struct __ecereNameSpace__ecere__com__Class * _class;
struct __ecereNameSpace__ecere__sys__OldList attached;
int declMode;
struct Type * type;
struct Symbol * propSet;
int tempCount;
unsigned int propertyNoThis;
} ecere_gcc_struct;
struct ClassFunction
{
struct ClassFunction * prev;
struct ClassFunction * next;
struct Location loc;
struct __ecereNameSpace__ecere__sys__OldList * specifiers;
struct Declarator * declarator;
struct __ecereNameSpace__ecere__sys__OldList * declarations;
struct Statement * body;
struct __ecereNameSpace__ecere__com__Class * _class;
struct __ecereNameSpace__ecere__sys__OldList attached;
int declMode;
struct Type * type;
struct Symbol * propSet;
unsigned int isVirtual;
unsigned int isConstructor;
unsigned int isDestructor;
unsigned int dontMangle;
int id;
int idCode;
} ecere_gcc_struct;
struct PropertyWatch
{
struct PropertyWatch * prev;
struct PropertyWatch * next;
struct Location loc;
struct Statement * compound;
struct __ecereNameSpace__ecere__sys__OldList * properties;
unsigned int deleteWatch;
} ecere_gcc_struct;
struct MembersInit;
struct MembersInit
{
struct MembersInit * prev;
struct MembersInit * next;
struct Location loc;
int type;
union
{
struct __ecereNameSpace__ecere__sys__OldList * dataMembers;
struct ClassFunction * function;
} ecere_gcc_struct __anon1;
} ecere_gcc_struct;
struct __ecereNameSpace__ecere__com__ClassTemplateParameter;
struct __ecereNameSpace__ecere__com__ClassTemplateParameter
{
struct __ecereNameSpace__ecere__com__ClassTemplateParameter * prev;
struct __ecereNameSpace__ecere__com__ClassTemplateParameter * next;
const char * name;
int type;
union
{
const char * dataTypeString;
int memberType;
} ecere_gcc_struct __anon1;
struct __ecereNameSpace__ecere__com__ClassTemplateArgument defaultArg;
void * param;
} ecere_gcc_struct;
struct __ecereNameSpace__ecere__com__SubModule;
struct __ecereNameSpace__ecere__com__SubModule
{
struct __ecereNameSpace__ecere__com__SubModule * prev;
struct __ecereNameSpace__ecere__com__SubModule * next;
struct __ecereNameSpace__ecere__com__Instance * module;
int importMode;
} ecere_gcc_struct;
struct InitDeclarator;
struct InitDeclarator
{
struct InitDeclarator * prev;
struct InitDeclarator * next;
struct Location loc;
struct Declarator * declarator;
struct Initializer * initializer;
} ecere_gcc_struct;
struct __ecereNameSpace__ecere__com__NameSpace;
struct __ecereNameSpace__ecere__com__NameSpace
{
const char * name;
struct __ecereNameSpace__ecere__com__NameSpace * btParent;
struct __ecereNameSpace__ecere__com__NameSpace * left;
struct __ecereNameSpace__ecere__com__NameSpace * right;
int depth;
struct __ecereNameSpace__ecere__com__NameSpace * parent;
struct __ecereNameSpace__ecere__sys__BinaryTree nameSpaces;
struct __ecereNameSpace__ecere__sys__BinaryTree classes;
struct __ecereNameSpace__ecere__sys__BinaryTree defines;
struct __ecereNameSpace__ecere__sys__BinaryTree functions;
} ecere_gcc_struct;
struct __ecereNameSpace__ecere__com__Class
{
struct __ecereNameSpace__ecere__com__Class * prev;
struct __ecereNameSpace__ecere__com__Class * next;
const char * name;
int offset;
int structSize;
void * * _vTbl;
int vTblSize;
unsigned int (* Constructor)(void * );
void (* Destructor)(void * );
int offsetClass;
int sizeClass;
struct __ecereNameSpace__ecere__com__Class * base;
struct __ecereNameSpace__ecere__sys__BinaryTree methods;
struct __ecereNameSpace__ecere__sys__BinaryTree members;
struct __ecereNameSpace__ecere__sys__BinaryTree prop;
struct __ecereNameSpace__ecere__sys__OldList membersAndProperties;
struct __ecereNameSpace__ecere__sys__BinaryTree classProperties;
struct __ecereNameSpace__ecere__sys__OldList derivatives;
int memberID;
int startMemberID;
int type;
struct __ecereNameSpace__ecere__com__Instance * module;
struct __ecereNameSpace__ecere__com__NameSpace * nameSpace;
const char * dataTypeString;
struct Type * dataType;
int typeSize;
int defaultAlignment;
void (* Initialize)();
int memberOffset;
struct __ecereNameSpace__ecere__sys__OldList selfWatchers;
const char * designerClass;
unsigned int noExpansion;
const char * defaultProperty;
unsigned int comRedefinition;
int count;
int isRemote;
unsigned int internalDecl;
void * data;
unsigned int computeSize;
short structAlignment;
short pointerAlignment;
int destructionWatchOffset;
unsigned int fixed;
struct __ecereNameSpace__ecere__sys__OldList delayedCPValues;
int inheritanceAccess;
const char * fullName;
void * symbol;
struct __ecereNameSpace__ecere__sys__OldList conversions;
struct __ecereNameSpace__ecere__sys__OldList templateParams;
struct __ecereNameSpace__ecere__com__ClassTemplateArgument * templateArgs;
struct __ecereNameSpace__ecere__com__Class * templateClass;
struct __ecereNameSpace__ecere__sys__OldList templatized;
int numParams;
unsigned int isInstanceClass;
unsigned int byValueSystemClass;
void * bindingsClass;
} ecere_gcc_struct;
struct __ecereNameSpace__ecere__com__Application
{
int argc;
const char * * argv;
int exitCode;
unsigned int isGUIApp;
struct __ecereNameSpace__ecere__sys__OldList allModules;
char * parsedCommand;
struct __ecereNameSpace__ecere__com__NameSpace systemNameSpace;
} ecere_gcc_struct;
static struct __ecereNameSpace__ecere__com__Class * __ecereClass_ContextStringPair;
void __ecereMethod_ContextStringPair_OnFree(struct __ecereNameSpace__ecere__com__Class * class, struct ContextStringPair * this)
{
(__ecereNameSpace__ecere__com__eSystem_Delete(this->string), this->string = 0);
(__ecereNameSpace__ecere__com__eSystem_Delete(this->context), this->context = 0);
}
int __ecereMethod_ContextStringPair_OnCompare(struct __ecereNameSpace__ecere__com__Class * class, struct ContextStringPair * this, struct ContextStringPair * b)
{
int result;
result = (this->string && b->string) ? strcmp(this->string, b->string) : (!this->string && b->string) ? 1 : (this->string && !b->string) ? -1 : 0;
if(result)
return result;
result = (this->context && b->context) ? strcmp(this->context, b->context) : (!this->context && b->context) ? 1 : (this->context && !b->context) ? -1 : 0;
return result;
}
extern void __ecereNameSpace__ecere__com__PrintLn(struct __ecereNameSpace__ecere__com__Class * class, const void * object, ...);
extern struct __ecereNameSpace__ecere__com__Class * __ecereClass_Identifier;
extern struct __ecereNameSpace__ecere__com__Class * __ecereClass_Specifier;
extern struct __ecereNameSpace__ecere__com__Class * __ecereClass_TemplateParameter;
extern struct __ecereNameSpace__ecere__com__Class * __ecereClass_TemplatedType;
extern struct __ecereNameSpace__ecere__com__Class * __ecereClass_TemplateDatatype;
extern struct __ecereNameSpace__ecere__com__Class * __ecereClass_TemplateArgument;
extern struct __ecereNameSpace__ecere__com__Class * __ecereClass_Expression;
extern struct __ecereNameSpace__ecere__com__Class * __ecereClass___ecereNameSpace__ecere__com__List_TPL_Location_;
extern struct __ecereNameSpace__ecere__com__Class * __ecereClass_Symbol;
extern struct __ecereNameSpace__ecere__com__Class * __ecereClass_Attribute;
extern struct __ecereNameSpace__ecere__com__Class * __ecereClass_Attrib;
extern struct __ecereNameSpace__ecere__com__Class * __ecereClass_ExtDecl;
extern struct __ecereNameSpace__ecere__com__Class * __ecereClass_Declarator;
extern struct __ecereNameSpace__ecere__com__Class * __ecereClass_Enumerator;
extern struct __ecereNameSpace__ecere__com__Class * __ecereClass_Pointer;
extern struct __ecereNameSpace__ecere__com__Class * __ecereClass_Initializer;
extern struct __ecereNameSpace__ecere__com__Class * __ecereClass_InitDeclarator;
extern struct __ecereNameSpace__ecere__com__Class * __ecereClass_TypeName;
extern struct __ecereNameSpace__ecere__com__Class * __ecereClass_Declaration;
extern struct __ecereNameSpace__ecere__com__Class * __ecereClass_Statement;
extern struct __ecereNameSpace__ecere__com__Class * __ecereClass_FunctionDefinition;
extern struct __ecereNameSpace__ecere__com__Class * __ecereClass_Type;
extern struct __ecereNameSpace__ecere__com__Class * __ecereClass_External;
extern struct __ecereNameSpace__ecere__com__Class * __ecereClass_ClassFunction;
extern struct __ecereNameSpace__ecere__com__Class * __ecereClass_MemberInit;
extern struct __ecereNameSpace__ecere__com__Class * __ecereClass_MembersInit;
extern struct __ecereNameSpace__ecere__com__Class * __ecereClass_Instantiation;
extern struct __ecereNameSpace__ecere__com__Class * __ecereClass_ClassDef;
extern struct __ecereNameSpace__ecere__com__Class * __ecereClass_ClassDefinition;
extern struct __ecereNameSpace__ecere__com__Class * __ecereClass_PropertyDef;
extern struct __ecereNameSpace__ecere__com__Class * __ecereClass_Context;
extern struct __ecereNameSpace__ecere__com__Class * __ecereClass_ModuleImport;
extern struct __ecereNameSpace__ecere__com__Class * __ecereClass___ecereNameSpace__ecere__sys__NamedLink64;
extern struct __ecereNameSpace__ecere__com__Class * __ecereClass_AsmField;
extern struct __ecereNameSpace__ecere__com__Class * __ecereClass_PropertyWatch;
extern struct __ecereNameSpace__ecere__com__Class * __ecereClass_DBTableDef;
extern struct __ecereNameSpace__ecere__com__Class * __ecereClass_DBTableEntry;
extern struct __ecereNameSpace__ecere__com__Class * __ecereClass_DBIndexItem;
extern struct __ecereNameSpace__ecere__com__Class * __ecereClass___ecereNameSpace__ecere__com__Map_TPL_ContextStringPair__ecere__com__List_TPL_Location___;
extern struct __ecereNameSpace__ecere__com__Class * __ecereClass___ecereNameSpace__ecere__sys__BTNode;
extern struct __ecereNameSpace__ecere__com__Class * __ecereClass___ecereNameSpace__ecere__com__List;
extern struct __ecereNameSpace__ecere__com__Class * __ecereClass___ecereNameSpace__ecere__com__Module;
extern struct __ecereNameSpace__ecere__com__Class * __ecereClass_char__PTR_;
extern struct __ecereNameSpace__ecere__com__Class * __ecereClass_DeclaratorType;
extern struct __ecereNameSpace__ecere__com__Class * __ecereClass___ecereNameSpace__ecere__com__CustomAVLTree;
extern struct __ecereNameSpace__ecere__com__Class * __ecereClass___ecereNameSpace__ecere__com__Map;
struct __ecereNameSpace__ecere__com__Module
{
struct __ecereNameSpace__ecere__com__Instance * application;
struct __ecereNameSpace__ecere__sys__OldList classes;
struct __ecereNameSpace__ecere__sys__OldList defines;
struct __ecereNameSpace__ecere__sys__OldList functions;
struct __ecereNameSpace__ecere__sys__OldList modules;
struct __ecereNameSpace__ecere__com__Instance * prev;
struct __ecereNameSpace__ecere__com__Instance * next;
const char * name;
void * library;
void * Unload;
int importType;
int origImportType;
struct __ecereNameSpace__ecere__com__NameSpace privateNameSpace;
struct __ecereNameSpace__ecere__com__NameSpace publicNameSpace;
} ecere_gcc_struct;
struct Specifier * MkSpecifier(int specifier)
{
if(specifier == _BOOL && (declMode != 0 && defaultDeclMode != 0))
return MkSpecifierName("bool");
else if(specifier == _BOOL || specifier == BOOL)
return __extension__ ({
struct Specifier * __ecereInstance1 = __ecereNameSpace__ecere__com__eInstance_New(__ecereClass_Specifier);
__ecereInstance1->type = 0, __ecereInstance1->__anon1.specifier = specifier, __ecereInstance1;
});
else
return __extension__ ({
struct Specifier * __ecereInstance1 = __ecereNameSpace__ecere__com__eInstance_New(__ecereClass_Specifier);
__ecereInstance1->type = 0, __ecereInstance1->__anon1.specifier = specifier, __ecereInstance1;
});
}
struct Specifier * MkSpecifierTypeOf(struct Expression * expression)
{
return __extension__ ({
struct Specifier * __ecereInstance1 = __ecereNameSpace__ecere__com__eInstance_New(__ecereClass_Specifier);
__ecereInstance1->type = 6, __ecereInstance1->__anon1.expression = expression, __ecereInstance1;
});
}
struct Specifier * MkSpecifierSubClass(struct Specifier * _class)
{
return __extension__ ({
struct Specifier * __ecereInstance1 = __ecereNameSpace__ecere__com__eInstance_New(__ecereClass_Specifier);
__ecereInstance1->type = 7, __ecereInstance1->__anon1._class = _class, __ecereInstance1;
});
}
struct Specifier * MkSpecifierExtended(struct ExtDecl * extDecl)
{
return __extension__ ({
struct Specifier * __ecereInstance1 = __ecereNameSpace__ecere__com__eInstance_New(__ecereClass_Specifier);
__ecereInstance1->type = 5, __ecereInstance1->__anon1.__anon1.extDecl = extDecl, __ecereInstance1;
});
}
struct TemplateParameter * MkIdentifierTemplateParameter(struct Identifier * identifier, int memberType, struct TemplateArgument * defaultArgument)
{
if(identifier->string)
{
struct TemplateParameter * param = (param = __ecereNameSpace__ecere__com__eInstance_New(__ecereClass_TemplateParameter), param->type = 1, param->identifier = identifier, param->__anon1.memberType = memberType, param->defaultArgument = defaultArgument, param);
return param;
}
return (((void *)0));
}
struct TemplateParameter * MkExpressionTemplateParameter(struct Identifier * identifier, struct TemplateDatatype * dataType, struct TemplateArgument * defaultArgument)
{
if(identifier->string)
{
struct TemplateParameter * param = (param = __ecereNameSpace__ecere__com__eInstance_New(__ecereClass_TemplateParameter), param->type = 2, param->identifier = identifier, param->__anon1.dataType = dataType, param->defaultArgument = defaultArgument, param);
return param;
}
return (((void *)0));
}
struct TemplateDatatype * MkTemplateDatatype(struct __ecereNameSpace__ecere__sys__OldList * specifiers, struct Declarator * decl)
{
struct TemplateDatatype * datatype = (datatype = __ecereNameSpace__ecere__com__eInstance_New(__ecereClass_TemplateDatatype), datatype->specifiers = specifiers, datatype->decl = decl, datatype);
return datatype;
}
struct TemplateArgument * MkTemplateTypeArgument(struct TemplateDatatype * tplDatatype)
{
struct TemplateArgument * argument = (argument = __ecereNameSpace__ecere__com__eInstance_New(__ecereClass_TemplateArgument), argument->type = 0, argument->__anon1.templateDatatype = tplDatatype, argument);
return argument;
}
struct TemplateArgument * MkTemplateExpressionArgument(struct Expression * expr)
{
struct TemplateArgument * argument = (argument = __ecereNameSpace__ecere__com__eInstance_New(__ecereClass_TemplateArgument), argument->type = 2, argument->__anon1.expression = expr, argument);
return argument;
}
struct TemplateArgument * MkTemplateIdentifierArgument(struct Identifier * ident)
{
struct TemplateArgument * argument = (argument = __ecereNameSpace__ecere__com__eInstance_New(__ecereClass_TemplateArgument), argument->type = 1, argument->__anon1.identifier = ident, argument);
return argument;
}
struct Expression * MkExpExtensionCompound(struct Statement * compound)
{
return __extension__ ({
struct Expression * __ecereInstance1 = __ecereNameSpace__ecere__com__eInstance_New(__ecereClass_Expression);
__ecereInstance1->type = 23, __ecereInstance1->__anon1.compound = compound, __ecereInstance1;
});
}
struct Expression * MkExpExtensionExpression(struct __ecereNameSpace__ecere__sys__OldList * expressions)
{
return __extension__ ({
struct Expression * __ecereInstance1 = __ecereNameSpace__ecere__com__eInstance_New(__ecereClass_Expression);
__ecereInstance1->type = 32, __ecereInstance1->__anon1.list = expressions, __ecereInstance1->loc = yylloc, __ecereInstance1;
});
}
struct Expression * MkExpExtensionInitializer(struct TypeName * typeName, struct Initializer * initializer)
{
return __extension__ ({
struct Expression * __ecereInstance1 = __ecereNameSpace__ecere__com__eInstance_New(__ecereClass_Expression);
__ecereInstance1->type = 33, __ecereInstance1->__anon1.initializer.typeName = typeName, __ecereInstance1->__anon1.initializer.initializer = initializer, __ecereInstance1->loc = yylloc, __ecereInstance1;
});
}
struct Expression * MkExpIdentifier(struct Identifier * id)
{
return __extension__ ({
struct Expression * __ecereInstance1 = __ecereNameSpace__ecere__com__eInstance_New(__ecereClass_Expression);
__ecereInstance1->type = 0, __ecereInstance1->__anon1.__anon1.identifier = id, __ecereInstance1->loc = yylloc, __ecereInstance1;
});
}
struct Expression * MkExpDummy()
{
struct Expression * exp = (exp = __ecereNameSpace__ecere__com__eInstance_New(__ecereClass_Expression), exp->type = 16, exp);
return exp;
}
struct Expression * MkExpConstant(const char * string)
{
return __extension__ ({
struct Expression * __ecereInstance1 = __ecereNameSpace__ecere__com__eInstance_New(__ecereClass_Expression);
__ecereInstance1->type = 2, __ecereInstance1->__anon1.__anon1.constant = __ecereNameSpace__ecere__sys__CopyString(string), __ecereInstance1->loc = yylloc, __ecereInstance1;
});
}
struct Expression * MkExpString(const char * string)
{
return __extension__ ({
struct Expression * __ecereInstance1 = __ecereNameSpace__ecere__com__eInstance_New(__ecereClass_Expression);
__ecereInstance1->type = 3, __ecereInstance1->__anon1.__anon2.string = __ecereNameSpace__ecere__sys__CopyString(string), __ecereInstance1->loc = yylloc, __ecereInstance1;
});
}
struct Expression * MkExpWideString(const char * string)
{
return __extension__ ({
struct Expression * __ecereInstance1 = __ecereNameSpace__ecere__com__eInstance_New(__ecereClass_Expression);
__ecereInstance1->type = 3, __ecereInstance1->__anon1.__anon2.string = __ecereNameSpace__ecere__sys__CopyString(string), __ecereInstance1->loc = yylloc, __ecereInstance1->__anon1.__anon2.wideString = 1, __ecereInstance1;
});
}
struct Expression * MkExpOp(struct Expression * exp1, int op, struct Expression * exp2)
{
struct Expression * exp = (exp = __ecereNameSpace__ecere__com__eInstance_New(__ecereClass_Expression), exp->type = 4, exp->__anon1.op.op = op, exp->__anon1.op.exp1 = exp1, exp->__anon1.op.exp2 = exp2, exp);
if(exp1 || exp2)
{
exp->loc.start = exp1 ? exp1->loc.start : exp2->loc.start;
exp->loc.end = exp2 ? exp2->loc.end : exp1->loc.end;
}
return exp;
}
struct Expression * MkExpBrackets(struct __ecereNameSpace__ecere__sys__OldList * expressions)
{
struct Expression * exp = (exp = __ecereNameSpace__ecere__com__eInstance_New(__ecereClass_Expression), exp->type = 5, exp->__anon1.list = expressions, exp);
if(expressions && expressions->first)
{
exp->loc.start = ((struct Expression *)expressions->first)->loc.start;
exp->loc.end = ((struct Expression *)expressions->last)->loc.end;
}
return exp;
}
struct Expression * MkExpIndex(struct Expression * expression, struct __ecereNameSpace__ecere__sys__OldList * index)
{
return __extension__ ({
struct Expression * __ecereInstance1 = __ecereNameSpace__ecere__com__eInstance_New(__ecereClass_Expression);
__ecereInstance1->type = 6, __ecereInstance1->__anon1.index.exp = expression, __ecereInstance1->__anon1.index.index = index, __ecereInstance1;
});
}
struct Expression * MkExpCall(struct Expression * expression, struct __ecereNameSpace__ecere__sys__OldList * arguments)
{
return __extension__ ({
struct Expression * __ecereInstance1 = __ecereNameSpace__ecere__com__eInstance_New(__ecereClass_Expression);
__ecereInstance1->type = 7, __ecereInstance1->__anon1.call.exp = expression, __ecereInstance1->__anon1.call.arguments = arguments, __ecereInstance1->loc = yylloc, __ecereInstance1;
});
}
struct Expression * MkExpMember(struct Expression * expression, struct Identifier * member)
{
return __extension__ ({
struct Expression * __ecereInstance1 = __ecereNameSpace__ecere__com__eInstance_New(__ecereClass_Expression);
__ecereInstance1->type = 8, __ecereInstance1->__anon1.member.exp = expression, __ecereInstance1->__anon1.member.member = member, __ecereInstance1->loc = yylloc, __ecereInstance1;
});
}
struct Expression * MkExpPointer(struct Expression * expression, struct Identifier * member)
{
return __extension__ ({
struct Expression * __ecereInstance1 = __ecereNameSpace__ecere__com__eInstance_New(__ecereClass_Expression);
__ecereInstance1->type = 9, __ecereInstance1->__anon1.member.exp = expression, __ecereInstance1->__anon1.member.member = member, __ecereInstance1->loc = yylloc, __ecereInstance1;
});
}
struct Expression * MkExpTypeSize(struct TypeName * typeName)
{
return __extension__ ({
struct Expression * __ecereInstance1 = __ecereNameSpace__ecere__com__eInstance_New(__ecereClass_Expression);
__ecereInstance1->type = 10, __ecereInstance1->__anon1.typeName = typeName, __ecereInstance1->loc = yylloc, __ecereInstance1;
});
}
struct Expression * MkExpTypeAlign(struct TypeName * typeName)
{
return __extension__ ({
struct Expression * __ecereInstance1 = __ecereNameSpace__ecere__com__eInstance_New(__ecereClass_Expression);
__ecereInstance1->type = 36, __ecereInstance1->__anon1.typeName = typeName, __ecereInstance1->loc = yylloc, __ecereInstance1;
});
}
struct Expression * MkExpOffsetOf(struct TypeName * typeName, struct Identifier * id)
{
return __extension__ ({
struct Expression * __ecereInstance1 = __ecereNameSpace__ecere__com__eInstance_New(__ecereClass_Expression);
__ecereInstance1->type = 40, __ecereInstance1->__anon1.offset.typeName = typeName, __ecereInstance1->__anon1.offset.id = id, __ecereInstance1->loc = yylloc, __ecereInstance1;
});
}
struct Expression * MkExpClassSize(struct Specifier * _class)
{
return __extension__ ({
struct Expression * __ecereInstance1 = __ecereNameSpace__ecere__com__eInstance_New(__ecereClass_Expression);
__ecereInstance1->type = 15, __ecereInstance1->__anon1._class = _class, __ecereInstance1->loc = yylloc, __ecereInstance1;
});
}
struct Expression * MkExpCast(struct TypeName * typeName, struct Expression * expression)
{
return __extension__ ({
struct Expression * __ecereInstance1 = __ecereNameSpace__ecere__com__eInstance_New(__ecereClass_Expression);
__ecereInstance1->type = 11, __ecereInstance1->__anon1.cast.typeName = typeName, __ecereInstance1->__anon1.cast.exp = expression, __ecereInstance1->loc = yylloc, __ecereInstance1;
});
}
struct Expression * MkExpCondition(struct Expression * cond, struct __ecereNameSpace__ecere__sys__OldList * expressions, struct Expression * elseExp)
{
return __extension__ ({
struct Expression * __ecereInstance1 = __ecereNameSpace__ecere__com__eInstance_New(__ecereClass_Expression);
__ecereInstance1->type = 12, __ecereInstance1->__anon1.cond.cond = cond, __ecereInstance1->__anon1.cond.exp = expressions, __ecereInstance1->__anon1.cond.elseExp = elseExp, __ecereInstance1->loc = yylloc, __ecereInstance1;
});
}
struct Expression * MkExpRenew(struct Expression * memExp, struct TypeName * type, struct Expression * size)
{
return __extension__ ({
struct Expression * __ecereInstance1 = __ecereNameSpace__ecere__com__eInstance_New(__ecereClass_Expression);
__ecereInstance1->type = 14, __ecereInstance1->__anon1._renew.exp = memExp, __ecereInstance1->__anon1._renew.typeName = type, __ecereInstance1->__anon1._renew.size = size, __ecereInstance1->loc = yylloc, __ecereInstance1;
});
}
struct Expression * MkExpRenew0(struct Expression * memExp, struct TypeName * type, struct Expression * size)
{
return __extension__ ({
struct Expression * __ecereInstance1 = __ecereNameSpace__ecere__com__eInstance_New(__ecereClass_Expression);
__ecereInstance1->type = 27, __ecereInstance1->__anon1._renew.exp = memExp, __ecereInstance1->__anon1._renew.typeName = type, __ecereInstance1->__anon1._renew.size = size, __ecereInstance1->loc = yylloc, __ecereInstance1;
});
}
struct Expression * MkExpNew(struct TypeName * type, struct Expression * size)
{
return __extension__ ({
struct Expression * __ecereInstance1 = __ecereNameSpace__ecere__com__eInstance_New(__ecereClass_Expression);
__ecereInstance1->type = 13, __ecereInstance1->__anon1._new.typeName = type, __ecereInstance1->__anon1._new.size = size, __ecereInstance1->loc = yylloc, __ecereInstance1;
});
}
struct Expression * MkExpNew0(struct TypeName * type, struct Expression * size)
{
return __extension__ ({
struct Expression * __ecereInstance1 = __ecereNameSpace__ecere__com__eInstance_New(__ecereClass_Expression);
__ecereInstance1->type = 26, __ecereInstance1->__anon1._new.typeName = type, __ecereInstance1->__anon1._new.size = size, __ecereInstance1->loc = yylloc, __ecereInstance1;
});
}
struct Expression * MkExpVaArg(struct Expression * exp, struct TypeName * type)
{
return __extension__ ({
struct Expression * __ecereInstance1 = __ecereNameSpace__ecere__com__eInstance_New(__ecereClass_Expression);
__ecereInstance1->type = 34, __ecereInstance1->__anon1.vaArg.exp = exp, __ecereInstance1->__anon1.vaArg.typeName = type, __ecereInstance1->loc = yylloc, __ecereInstance1;
});
}
struct Expression * MkExpInstance(struct Instantiation * inst)
{
return __extension__ ({
struct Expression * __ecereInstance1 = __ecereNameSpace__ecere__com__eInstance_New(__ecereClass_Expression);
__ecereInstance1->type = 1, __ecereInstance1->__anon1.instance = inst, __ecereInstance1;
});
}
struct Expression * MkExpClass(struct __ecereNameSpace__ecere__sys__OldList * specifiers, struct Declarator * decl)
{
return __extension__ ({
struct Expression * __ecereInstance1 = __ecereNameSpace__ecere__com__eInstance_New(__ecereClass_Expression);
__ecereInstance1->type = 24, __ecereInstance1->__anon1._classExp.specifiers = specifiers, __ecereInstance1->__anon1._classExp.decl = decl, __ecereInstance1;
});
}
struct Expression * MkExpClassData(struct Identifier * id)
{
return __extension__ ({
struct Expression * __ecereInstance1 = __ecereNameSpace__ecere__com__eInstance_New(__ecereClass_Expression);
__ecereInstance1->type = 25, __ecereInstance1->__anon1.classData.id = id, __ecereInstance1;
});
}
struct Expression * MkExpDBOpen(struct Expression * ds, struct Expression * dbName)
{
return __extension__ ({
struct Expression * __ecereInstance1 = __ecereNameSpace__ecere__com__eInstance_New(__ecereClass_Expression);
__ecereInstance1->type = 28, __ecereInstance1->__anon1.dbopen.ds = ds, __ecereInstance1->__anon1.dbopen.name = dbName, __ecereInstance1;
});
}
struct Expression * MkExpDBField(char * table, struct Identifier * id)
{
return __extension__ ({
struct Expression * __ecereInstance1 = __ecereNameSpace__ecere__com__eInstance_New(__ecereClass_Expression);
__ecereInstance1->type = 29, __ecereInstance1->__anon1.db.table = table, __ecereInstance1->__anon1.db.id = id, __ecereInstance1;
});
}
struct Expression * MkExpDBIndex(char * table, struct Identifier * id)
{
return __extension__ ({
struct Expression * __ecereInstance1 = __ecereNameSpace__ecere__com__eInstance_New(__ecereClass_Expression);
__ecereInstance1->type = 31, __ecereInstance1->__anon1.db.table = table, __ecereInstance1->__anon1.db.id = id, __ecereInstance1;
});
}
struct Expression * MkExpDBTable(char * table)
{
return __extension__ ({
struct Expression * __ecereInstance1 = __ecereNameSpace__ecere__com__eInstance_New(__ecereClass_Expression);
__ecereInstance1->type = 30, __ecereInstance1->__anon1.db.table = table, __ecereInstance1;
});
}
struct Expression * MkExpArray(struct __ecereNameSpace__ecere__sys__OldList * expressions)
{
return __extension__ ({
struct Expression * __ecereInstance1 = __ecereNameSpace__ecere__com__eInstance_New(__ecereClass_Expression);
__ecereInstance1->type = 35, __ecereInstance1->__anon1.list = expressions, __ecereInstance1;
});
}
struct Specifier * MkEnum(struct Identifier * id, struct __ecereNameSpace__ecere__sys__OldList * list)
{
struct Specifier * spec = (spec = __ecereNameSpace__ecere__com__eInstance_New(__ecereClass_Specifier), spec->type = 2, spec->__anon1.__anon2.id = id, spec->__anon1.__anon2.list = list, spec);
if(list && (!declMode || !id))
{
struct Type * type;
struct Enumerator * e;
struct __ecereNameSpace__ecere__sys__OldList specs =
{
0, 0, 0, 0, 0
};
__ecereMethod___ecereNameSpace__ecere__sys__OldList_Add(&specs, spec);
type = ProcessType(&specs, (((void *)0)));
if(id)
{
struct Symbol * symbol = (symbol = __ecereNameSpace__ecere__com__eInstance_New(__ecereClass_Symbol), symbol->string = __ecereNameSpace__ecere__sys__CopyString(id->string), symbol->isStruct = 1, symbol->type = type, symbol);
type->refCount++;
if(strstr(symbol->string, "::"))
curContext->hasNameSpace = 1;
if(!__ecereMethod___ecereNameSpace__ecere__sys__BinaryTree_Add(&curContext->structSymbols, (struct __ecereNameSpace__ecere__sys__BTNode *)symbol))
FreeSymbol(symbol);
}
for(e = list->first; e; e = e->next)
{
struct Symbol * symbol = (symbol = __ecereNameSpace__ecere__com__eInstance_New(__ecereClass_Symbol), symbol->string = __ecereNameSpace__ecere__sys__CopyString(e->id->string), symbol->type = type, symbol);
type->refCount++;
if(strstr(symbol->string, "::"))
curContext->hasNameSpace = 1;
if(!__ecereMethod___ecereNameSpace__ecere__sys__BinaryTree_Add(&(curContext->templateTypesOnly ? curContext->parent : curContext)->symbols, (struct __ecereNameSpace__ecere__sys__BTNode *)symbol))
FreeSymbol(symbol);
}
FreeType(type);
}
return spec;
}
struct Specifier * MkStructOrUnion(int type, struct Identifier * id, struct __ecereNameSpace__ecere__sys__OldList * definitions)
{
struct Specifier * spec = (spec = __ecereNameSpace__ecere__com__eInstance_New(__ecereClass_Specifier), spec->type = type, spec->__anon1.__anon2.id = id, spec);
if(id && FindType(curContext, id->string))
structDeclMode = 0;
spec->__anon1.__anon2.definitions = definitions;
if(definitions && id && structDeclMode == 0)
{
struct __ecereNameSpace__ecere__sys__OldList specs =
{
0, 0, 0, 0, 0
};
struct Symbol * symbol;
__ecereMethod___ecereNameSpace__ecere__sys__OldList_Add(&specs, spec);
symbol = __extension__ ({
struct Symbol * __ecereInstance1 = __ecereNameSpace__ecere__com__eInstance_New(__ecereClass_Symbol);
__ecereInstance1->string = __ecereNameSpace__ecere__sys__CopyString(id->string), __ecereInstance1->type = ProcessType(&specs, (((void *)0))), __ecereInstance1->isStruct = 1, __ecereInstance1;
});
if(!__ecereMethod___ecereNameSpace__ecere__sys__BinaryTree_Add(&curContext->structSymbols, (struct __ecereNameSpace__ecere__sys__BTNode *)symbol))
FreeSymbol(symbol);
}
return spec;
}
void AddStructDefinitions(struct Specifier * spec, struct __ecereNameSpace__ecere__sys__OldList * definitions)
{
spec->__anon1.__anon2.definitions = definitions;
if(definitions && spec->__anon1.__anon2.id && !declMode)
{
struct Symbol * symbol;
struct __ecereNameSpace__ecere__sys__OldList specs =
{
0, 0, 0, 0, 0
};
__ecereMethod___ecereNameSpace__ecere__sys__OldList_Add(&specs, spec);
symbol = __extension__ ({
struct Symbol * __ecereInstance1 = __ecereNameSpace__ecere__com__eInstance_New(__ecereClass_Symbol);
__ecereInstance1->string = __ecereNameSpace__ecere__sys__CopyString(spec->__anon1.__anon2.id->string), __ecereInstance1->type = ProcessType(&specs, (((void *)0))), __ecereInstance1->isStruct = 1, __ecereInstance1;
});
if(!__ecereMethod___ecereNameSpace__ecere__sys__BinaryTree_Add(&curContext->parent->structSymbols, (struct __ecereNameSpace__ecere__sys__BTNode *)symbol))
FreeSymbol(symbol);
}
}
struct Attribute * MkAttribute(char * attr, struct Expression * exp)
{
return __extension__ ({
struct Attribute * __ecereInstance1 = __ecereNameSpace__ecere__com__eInstance_New(__ecereClass_Attribute);
__ecereInstance1->attr = attr, __ecereInstance1->exp = exp, __ecereInstance1;
});
}
struct Attrib * MkAttrib(int type, struct __ecereNameSpace__ecere__sys__OldList * attribs)
{
return __extension__ ({
struct Attrib * __ecereInstance1 = __ecereNameSpace__ecere__com__eInstance_New(__ecereClass_Attrib);
__ecereInstance1->type = type, __ecereInstance1->attribs = attribs, __ecereInstance1;
});
}
struct ExtDecl * MkExtDeclString(char * s)
{
return __extension__ ({
struct ExtDecl * __ecereInstance1 = __ecereNameSpace__ecere__com__eInstance_New(__ecereClass_ExtDecl);
__ecereInstance1->type = 0, __ecereInstance1->__anon1.s = s, __ecereInstance1;
});
}
struct ExtDecl * MkExtDeclAttrib(struct Attrib * attr)
{
return __extension__ ({
struct ExtDecl * __ecereInstance1 = __ecereNameSpace__ecere__com__eInstance_New(__ecereClass_ExtDecl);
__ecereInstance1->type = 1, __ecereInstance1->__anon1.attr = attr, __ecereInstance1;
});
}
struct ExtDecl * MkExtDeclMultiAttrib(struct __ecereNameSpace__ecere__sys__OldList * attribs)
{
return __extension__ ({
struct ExtDecl * __ecereInstance1 = __ecereNameSpace__ecere__com__eInstance_New(__ecereClass_ExtDecl);
__ecereInstance1->type = 2, __ecereInstance1->__anon1.multiAttr = attribs, __ecereInstance1;
});
}
struct Declarator * MkDeclaratorIdentifier(struct Identifier * id)
{
return __extension__ ({
struct Declarator * __ecereInstance1 = __ecereNameSpace__ecere__com__eInstance_New(__ecereClass_Declarator);
__ecereInstance1->type = 1, __ecereInstance1->__anon1.identifier = id, __ecereInstance1;
});
}
struct Declarator * MkDeclaratorFunction(struct Declarator * declarator, struct __ecereNameSpace__ecere__sys__OldList * parameters)
{
return __extension__ ({
struct Declarator * __ecereInstance1 = __ecereNameSpace__ecere__com__eInstance_New(__ecereClass_Declarator);
__ecereInstance1->type = 4, __ecereInstance1->declarator = declarator, __ecereInstance1->__anon1.function.parameters = parameters, __ecereInstance1;
});
}
struct Declarator * MkDeclaratorExtended(struct ExtDecl * extended, struct Declarator * declarator)
{
return __extension__ ({
struct Declarator * __ecereInstance1 = __ecereNameSpace__ecere__com__eInstance_New(__ecereClass_Declarator);
__ecereInstance1->type = 6, __ecereInstance1->declarator = declarator, __ecereInstance1->__anon1.extended.extended = extended, __ecereInstance1;
});
}
struct Declarator * MkDeclaratorExtendedEnd(struct ExtDecl * extended, struct Declarator * declarator)
{
return __extension__ ({
struct Declarator * __ecereInstance1 = __ecereNameSpace__ecere__com__eInstance_New(__ecereClass_Declarator);
__ecereInstance1->type = 7, __ecereInstance1->declarator = declarator, __ecereInstance1->__anon1.extended.extended = extended, __ecereInstance1;
});
}
struct Declarator * MkStructDeclarator(struct Declarator * declarator, struct Expression * exp)
{
return __extension__ ({
struct Declarator * __ecereInstance1 = __ecereNameSpace__ecere__com__eInstance_New(__ecereClass_Declarator);
__ecereInstance1->type = 0, __ecereInstance1->declarator = declarator, __ecereInstance1->__anon1.structDecl.exp = exp, __ecereInstance1;
});
}
struct Declarator * MkDeclaratorBrackets(struct Declarator * declarator)
{
return __extension__ ({
struct Declarator * __ecereInstance1 = __ecereNameSpace__ecere__com__eInstance_New(__ecereClass_Declarator);
__ecereInstance1->type = 2, __ecereInstance1->declarator = declarator, __ecereInstance1;
});
}
struct Declarator * MkDeclaratorArray(struct Declarator * declarator, struct Expression * exp)
{
return __extension__ ({
struct Declarator * __ecereInstance1 = __ecereNameSpace__ecere__com__eInstance_New(__ecereClass_Declarator);
__ecereInstance1->type = 3, __ecereInstance1->declarator = declarator, __ecereInstance1->__anon1.array.exp = exp, __ecereInstance1;
});
}
struct Declarator * MkDeclaratorEnumArray(struct Declarator * declarator, struct Specifier * _class)
{
return __extension__ ({
struct Declarator * __ecereInstance1 = __ecereNameSpace__ecere__com__eInstance_New(__ecereClass_Declarator);
__ecereInstance1->type = 3, __ecereInstance1->declarator = declarator, __ecereInstance1->__anon1.array.enumClass = _class, __ecereInstance1;
});
}
struct Declarator * MkDeclaratorPointer(struct Pointer * pointer, struct Declarator * declarator)
{
return __extension__ ({
struct Declarator * __ecereInstance1 = __ecereNameSpace__ecere__com__eInstance_New(__ecereClass_Declarator);
__ecereInstance1->type = 5, __ecereInstance1->declarator = declarator, __ecereInstance1->__anon1.pointer.pointer = pointer, __ecereInstance1;
});
}
struct Enumerator * MkEnumerator(struct Identifier * id, struct Expression * exp, struct __ecereNameSpace__ecere__sys__OldList * attribs)
{
return __extension__ ({
struct Enumerator * __ecereInstance1 = __ecereNameSpace__ecere__com__eInstance_New(__ecereClass_Enumerator);
__ecereInstance1->id = id, __ecereInstance1->exp = exp, __ecereInstance1->attribs = attribs, __ecereInstance1;
});
}
struct Pointer * MkPointer(struct __ecereNameSpace__ecere__sys__OldList * qualifiers, struct Pointer * pointer)
{
return __extension__ ({
struct Pointer * __ecereInstance1 = __ecereNameSpace__ecere__com__eInstance_New(__ecereClass_Pointer);
__ecereInstance1->qualifiers = qualifiers, __ecereInstance1->pointer = pointer, __ecereInstance1;
});
}
struct Initializer * MkInitializerAssignment(struct Expression * exp)
{
return __extension__ ({
struct Initializer * __ecereInstance1 = __ecereNameSpace__ecere__com__eInstance_New(__ecereClass_Initializer);
__ecereInstance1->type = 0, __ecereInstance1->__anon1.exp = exp, __ecereInstance1->loc = yylloc, __ecereInstance1;
});
}
struct Initializer * MkInitializerList(struct __ecereNameSpace__ecere__sys__OldList * list)
{
return __extension__ ({
struct Initializer * __ecereInstance1 = __ecereNameSpace__ecere__com__eInstance_New(__ecereClass_Initializer);
__ecereInstance1->type = 1, __ecereInstance1->__anon1.list = list, __ecereInstance1->loc = yylloc, __ecereInstance1;
});
}
struct InitDeclarator * MkInitDeclarator(struct Declarator * declarator, struct Initializer * initializer)
{
return __extension__ ({
struct InitDeclarator * __ecereInstance1 = __ecereNameSpace__ecere__com__eInstance_New(__ecereClass_InitDeclarator);
__ecereInstance1->declarator = declarator, __ecereInstance1->initializer = initializer, __ecereInstance1;
});
}
struct TypeName * MkTypeName(struct __ecereNameSpace__ecere__sys__OldList * qualifiers, struct Declarator * declarator)
{
if(qualifiers != (((void *)0)))
{
struct Declarator * parentDecl = declarator;
struct Declarator * decl = declarator;
while(decl && decl->type == 3)
decl = decl->declarator;
if(decl && decl->type == 1 && decl->__anon1.identifier->string && CheckType(decl->__anon1.identifier->string) == TYPE_NAME)
{
struct Specifier * spec;
for(spec = qualifiers->first; spec; spec = spec->next)
{
if(spec->type == 0)
{
if(spec->__anon1.specifier == CONST || spec->__anon1.specifier == VOLATILE || spec->__anon1.specifier == EXTERN || spec->__anon1.specifier == STATIC || spec->__anon1.specifier == AUTO || spec->__anon1.specifier == REGISTER)
continue;
break;
}
else if(spec->type != 5)
break;
}
if(!spec)
{
ListAdd(qualifiers, MkSpecifierName(decl->__anon1.identifier->string));
FreeDeclarator(decl);
parentDecl->declarator = (((void *)0));
}
}
}
return __extension__ ({
struct TypeName * __ecereInstance1 = __ecereNameSpace__ecere__com__eInstance_New(__ecereClass_TypeName);
__ecereInstance1->qualifiers = qualifiers, __ecereInstance1->declarator = declarator, __ecereInstance1;
});
}
struct FunctionDefinition * _MkFunction(struct __ecereNameSpace__ecere__sys__OldList * specifiers, struct Declarator * declarator, struct __ecereNameSpace__ecere__sys__OldList * declarationList, unsigned int errorOnOmit)
{
if(errorOnOmit)
{
struct Declarator * funcDecl = GetFuncDecl(declarator);
if(funcDecl && funcDecl->__anon1.function.parameters)
{
struct TypeName * tn;
for(tn = (*funcDecl->__anon1.function.parameters).first; tn; tn = tn->next)
{
if(tn->qualifiers || tn->declarator)
{
struct Identifier * declID = tn->declarator ? GetDeclId(tn->declarator) : (((void *)0));
if(!declID)
{
struct Specifier * spec = tn->qualifiers ? (*tn->qualifiers).first : (((void *)0));
if(!tn->declarator && !tn->prev && !tn->next && spec && !spec->next && spec->type == 0 && spec->__anon1.specifier == VOID)
;
else
Compiler_Error(__ecereNameSpace__ecere__GetTranslatedString("ec", "parameter name omitted\n", (((void *)0))));
break;
}
}
}
}
}
return __extension__ ({
struct FunctionDefinition * __ecereInstance1 = __ecereNameSpace__ecere__com__eInstance_New(__ecereClass_FunctionDefinition);
__ecereInstance1->specifiers = specifiers, __ecereInstance1->declarator = declarator, __ecereInstance1->declarations = declarationList, __ecereInstance1;
});
}
struct Type * MkClassTypeSymbol(struct Symbol * symbol)
{
if(symbol)
{
struct Type * type = (type = __ecereNameSpace__ecere__com__eInstance_New(__ecereClass_Type), type->kind = 8, type->__anon1._class = symbol, type);
if(!type->__anon1._class)
{
type->kind = 3;
}
type->refCount = 1;
return type;
}
return (((void *)0));
}
struct ClassFunction * MkClassFunction(struct __ecereNameSpace__ecere__sys__OldList * specifiers, struct Specifier * _class, struct Declarator * decl, struct __ecereNameSpace__ecere__sys__OldList * declList)
{
return __extension__ ({
struct ClassFunction * __ecereInstance1 = __ecereNameSpace__ecere__com__eInstance_New(__ecereClass_ClassFunction);
__ecereInstance1->specifiers = specifiers, __ecereInstance1->declarator = decl, __ecereInstance1->declarations = declList, __ecereInstance1;
});
}
struct MemberInit * MkMemberInit(struct __ecereNameSpace__ecere__sys__OldList * ids, struct Initializer * initializer)
{
return __extension__ ({
struct MemberInit * __ecereInstance1 = __ecereNameSpace__ecere__com__eInstance_New(__ecereClass_MemberInit);
__ecereInstance1->identifiers = ids, __ecereInstance1->initializer = initializer, __ecereInstance1;
});
}
struct MemberInit * MkMemberInitExp(struct Expression * idExp, struct Initializer * initializer)
{
struct MemberInit * init = (init = __ecereNameSpace__ecere__com__eInstance_New(__ecereClass_MemberInit), init->initializer = initializer, init->identifiers = MkList(), init);
struct Expression * exp;
for(exp = idExp; exp && exp->type == 8; exp = exp->__anon1.member.exp)
{
__ecereMethod___ecereNameSpace__ecere__sys__OldList_Insert((&*init->identifiers), (((void *)0)), exp->__anon1.member.member);
exp->__anon1.member.member = (((void *)0));
}
if(exp && exp->type == 0)
{
__ecereMethod___ecereNameSpace__ecere__sys__OldList_Insert((&*init->identifiers), (((void *)0)), exp->__anon1.__anon1.identifier);
exp->__anon1.__anon1.identifier = (((void *)0));
}
FreeExpression(idExp);
return init;
}
struct MembersInit * MkMembersInitList(struct __ecereNameSpace__ecere__sys__OldList * dataMembers)
{
return __extension__ ({
struct MembersInit * __ecereInstance1 = __ecereNameSpace__ecere__com__eInstance_New(__ecereClass_MembersInit);
__ecereInstance1->type = 0, __ecereInstance1->__anon1.dataMembers = dataMembers, __ecereInstance1;
});
}
struct MembersInit * MkMembersInitMethod(struct ClassFunction * function)
{
return __extension__ ({
struct MembersInit * __ecereInstance1 = __ecereNameSpace__ecere__com__eInstance_New(__ecereClass_MembersInit);
__ecereInstance1->type = 1, __ecereInstance1->__anon1.function = function, __ecereInstance1;
});
}
struct Instantiation * MkInstantiation(struct Specifier * _class, struct Expression * exp, struct __ecereNameSpace__ecere__sys__OldList * members)
{
return __extension__ ({
struct Instantiation * __ecereInstance1 = __ecereNameSpace__ecere__com__eInstance_New(__ecereClass_Instantiation);
__ecereInstance1->_class = _class, __ecereInstance1->exp = exp, __ecereInstance1->members = members, __ecereInstance1;
});
}
struct Instantiation * MkInstantiationNamed(struct __ecereNameSpace__ecere__sys__OldList * specs, struct Expression * exp, struct __ecereNameSpace__ecere__sys__OldList * members)
{
struct Instantiation * inst = (inst = __ecereNameSpace__ecere__com__eInstance_New(__ecereClass_Instantiation), inst->exp = exp, inst->members = members, inst);
if(specs != (((void *)0)))
{
struct Specifier * spec;
for(spec = specs->first; spec; spec = spec->next)
if(spec->type == 1)
{
inst->_class = spec;
__ecereMethod___ecereNameSpace__ecere__sys__OldList_Remove(specs, spec);
break;
}
FreeList(specs, (void *)(FreeSpecifier));
if(!spec)
{
Compiler_Error(__ecereNameSpace__ecere__GetTranslatedString("ec", "Expecting class specifier\n", (((void *)0))));
inst->_class = MkSpecifierName("");
}
}
return inst;
}
struct Context * PushContext()
{
struct Context * ctx = (ctx = __ecereNameSpace__ecere__com__eInstance_New(__ecereClass_Context), ctx->parent = curContext, ctx);
curContext = ctx;
return ctx;
}
struct AsmField * MkAsmField(char * command, struct Expression * expression, struct Identifier * symbolic)
{
return __extension__ ({
struct AsmField * __ecereInstance1 = __ecereNameSpace__ecere__com__eInstance_New(__ecereClass_AsmField);
__ecereInstance1->command = command, __ecereInstance1->expression = expression, __ecereInstance1->symbolic = symbolic, __ecereInstance1;
});
}
struct PropertyWatch * MkDeleteWatch(struct Statement * compound)
{
return __extension__ ({
struct PropertyWatch * __ecereInstance1 = __ecereNameSpace__ecere__com__eInstance_New(__ecereClass_PropertyWatch);
__ecereInstance1->compound = compound, __ecereInstance1->deleteWatch = 1, __ecereInstance1;
});
}
struct PropertyWatch * MkPropertyWatch(struct __ecereNameSpace__ecere__sys__OldList * properties, struct Statement * compound)
{
return __extension__ ({
struct PropertyWatch * __ecereInstance1 = __ecereNameSpace__ecere__com__eInstance_New(__ecereClass_PropertyWatch);
__ecereInstance1->compound = compound, __ecereInstance1->properties = properties, __ecereInstance1;
});
}
struct DBTableDef * MkDBTableDef(char * name, struct Symbol * symbol, struct __ecereNameSpace__ecere__sys__OldList * definitions)
{
return __extension__ ({
struct DBTableDef * __ecereInstance1 = __ecereNameSpace__ecere__com__eInstance_New(__ecereClass_DBTableDef);
__ecereInstance1->name = name, __ecereInstance1->symbol = symbol, __ecereInstance1->definitions = definitions, __ecereInstance1;
});
}
struct DBTableEntry * MkDBFieldEntry(struct TypeName * type, struct Identifier * id, char * name)
{
return __extension__ ({
struct DBTableEntry * __ecereInstance1 = __ecereNameSpace__ecere__com__eInstance_New(__ecereClass_DBTableEntry);
__ecereInstance1->type = 0, __ecereInstance1->__anon1.__anon1.dataType = type, __ecereInstance1->id = id, __ecereInstance1->__anon1.__anon1.name = name, __ecereInstance1;
});
}
struct DBTableEntry * MkDBIndexEntry(struct __ecereNameSpace__ecere__sys__OldList * items, struct Identifier * id)
{
return __extension__ ({
struct DBTableEntry * __ecereInstance1 = __ecereNameSpace__ecere__com__eInstance_New(__ecereClass_DBTableEntry);
__ecereInstance1->type = 1, __ecereInstance1->__anon1.items = items, __ecereInstance1->id = id, __ecereInstance1;
});
}
struct DBIndexItem * MkDBIndexItem(struct Identifier * id, int order)
{
return __extension__ ({
struct DBIndexItem * __ecereInstance1 = __ecereNameSpace__ecere__com__eInstance_New(__ecereClass_DBIndexItem);
__ecereInstance1->id = id, __ecereInstance1->order = order, __ecereInstance1;
});
}
void __ecereCreateModuleInstances_ast()
{
intlStrings = __ecereNameSpace__ecere__com__eInstance_New(__ecereClass___ecereNameSpace__ecere__com__Map_TPL_ContextStringPair__ecere__com__List_TPL_Location___);
__ecereNameSpace__ecere__com__eInstance_IncRef(intlStrings);
}
struct TemplateParameter * MkTypeTemplateParameter(struct Identifier * identifier, struct TemplateDatatype * baseTplDatatype, struct TemplateArgument * defaultArgument)
{
if(identifier->string)
{
struct TemplateParameter * param = (param = __ecereNameSpace__ecere__com__eInstance_New(__ecereClass_TemplateParameter), param->type = 0, param->identifier = identifier, param->__anon1.dataType = baseTplDatatype, param->defaultArgument = defaultArgument, param);
struct TemplatedType * type = (type = __ecereNameSpace__ecere__com__eInstance_New(__ecereClass_TemplatedType), type->key = (uintptr_t)identifier->string, type->param = param, type);
if(!__ecereMethod___ecereNameSpace__ecere__sys__BinaryTree_Add(&curContext->templateTypes, (struct __ecereNameSpace__ecere__sys__BTNode *)type))
((type ? __extension__ ({
void * __ecerePtrToDelete = (type);
__ecereClass_TemplatedType->Destructor ? __ecereClass_TemplatedType->Destructor((void *)__ecerePtrToDelete) : 0, __ecereClass___ecereNameSpace__ecere__sys__BTNode->Destructor ? __ecereClass___ecereNameSpace__ecere__sys__BTNode->Destructor((void *)__ecerePtrToDelete) : 0, __ecereNameSpace__ecere__com__eSystem_Delete(__ecerePtrToDelete);
}) : 0), type = 0);
return param;
}
return (((void *)0));
}
void OutputIntlStrings()
{
if(((struct __ecereNameSpace__ecere__com__CustomAVLTree *)(((char *)intlStrings + 0 + sizeof(struct __ecereNameSpace__ecere__com__Instance))))->count)
{
const char * srcFile = GetSourceFile();
const char * objFile = GetOutputFile();
char srcFileFixed[797];
char potFile[797];
struct __ecereNameSpace__ecere__com__Instance * f;
__ecereNameSpace__ecere__sys__ChangeExtension(objFile, "bowl", potFile);
f = __ecereNameSpace__ecere__sys__FileOpen(potFile, 2);
if(f)
{
const char * filePrefix = "";
if(!(srcFile[0] && (srcFile[1] == ':' || srcFile[0] == '/')))
filePrefix = "./";
__ecereNameSpace__ecere__sys__GetSlashPathBuffer(srcFileFixed, srcFile);
{
struct __ecereNameSpace__ecere__com__MapIterator s = (s.container = (void *)0, s.pointer = (void *)0, __ecereProp___ecereNameSpace__ecere__com__MapIterator_Set_map(&s, (intlStrings)), s);
while(__ecereMethod___ecereNameSpace__ecere__com__Iterator_Next((void *)(&s)))
{
struct ContextStringPair pair = (*(struct ContextStringPair *)(uintptr_t)__ecereProp___ecereNameSpace__ecere__com__MapIterator_Get_key(&s));
{
struct __ecereNameSpace__ecere__com__Iterator l =
{
((struct __ecereNameSpace__ecere__com__Instance *)(uintptr_t)__ecereProp___ecereNameSpace__ecere__com__Iterator_Get_data((void *)(&s))), 0
};
while(__ecereMethod___ecereNameSpace__ecere__com__Iterator_Next(&l))
__ecereMethod___ecereNameSpace__ecere__sys__File_Printf(f, "#: %s%s:%d\n", filePrefix, srcFileFixed, (*(struct Location *)(uintptr_t)__ecereProp___ecereNameSpace__ecere__com__Iterator_Get_data(&l)).start.line);
}
if(pair.context)
__ecereMethod___ecereNameSpace__ecere__sys__File_Printf(f, "msgctxt \"%s\"\n", pair.context);
__ecereMethod___ecereNameSpace__ecere__sys__File_Printf(f, "msgid \"%s\"\n", pair.string);
__ecereMethod___ecereNameSpace__ecere__sys__File_Printf(f, "msgstr \"%s\"\n\n", pair.string);
}
}
(__ecereNameSpace__ecere__com__eInstance_DecRef(f), f = 0);
}
(__extension__ ({
void (* __internal_VirtualMethod)(struct __ecereNameSpace__ecere__com__Instance *);
__internal_VirtualMethod = ((void (*)(struct __ecereNameSpace__ecere__com__Instance *))__extension__ ({
struct __ecereNameSpace__ecere__com__Instance * __internal_ClassInst = intlStrings;
__internal_ClassInst ? __internal_ClassInst->_vTbl : __ecereClass___ecereNameSpace__ecere__com__Map->_vTbl;
})[__ecereVMethodID___ecereNameSpace__ecere__com__Container_Free]);
__internal_VirtualMethod ? __internal_VirtualMethod(intlStrings) : (void)1;
}));
}
}
void __ecereUnregisterModule_ast(struct __ecereNameSpace__ecere__com__Instance * module)
{
}
unsigned int ModuleAccess(struct __ecereNameSpace__ecere__com__Instance * searchIn, struct __ecereNameSpace__ecere__com__Instance * searchFor)
{
struct __ecereNameSpace__ecere__com__SubModule * subModule;
if(searchFor == searchIn)
return 1;
for(subModule = ((struct __ecereNameSpace__ecere__com__Module *)(((char *)searchIn + sizeof(struct __ecereNameSpace__ecere__com__Instance))))->modules.first; subModule; subModule = subModule->next)
{
if(subModule->importMode == 1)
{
if(ModuleAccess(subModule->module, searchFor))
return 1;
}
}
return 0;
}
struct Expression * MkExpIntlString(const char * string, const char * context)
{
if(inCompiler)
{
struct __ecereNameSpace__ecere__sys__OldList * list = MkList();
char * s;
if(inCompiler)
{
struct ContextStringPair pair =
{
0, 0
};
struct __ecereNameSpace__ecere__com__Instance * list;
int len = strlen(string);
pair.string = __ecereNameSpace__ecere__com__eSystem_New(sizeof(unsigned char) * (len - 2 + 1));
memcpy(pair.string, string + 1, len - 2);
pair.string[len - 2] = '\0';
if(context)
{
len = strlen(context);
pair.context = __ecereNameSpace__ecere__com__eSystem_New(sizeof(unsigned char) * (len - 2 + 1));
memcpy(pair.context, context + 1, len - 2);
pair.context[len - 2] = '\0';
}
list = (((struct __ecereNameSpace__ecere__com__Instance *)((uintptr_t)(__extension__ ({
struct __ecereNameSpace__ecere__com__Iterator __internalIterator =
{
intlStrings, 0
};
__ecereMethod___ecereNameSpace__ecere__com__Iterator_Index(&__internalIterator, ((uint64)(uintptr_t)(&pair)), 0);
((struct __ecereNameSpace__ecere__com__Instance *)(uintptr_t)__ecereProp___ecereNameSpace__ecere__com__Iterator_Get_data(&__internalIterator));
})))));
if(!list)
{
list = __ecereNameSpace__ecere__com__eInstance_New(__ecereClass___ecereNameSpace__ecere__com__List_TPL_Location_);
__extension__ ({
struct __ecereNameSpace__ecere__com__Iterator __internalIterator =
{
intlStrings, 0
};
__ecereMethod___ecereNameSpace__ecere__com__Iterator_Index(&__internalIterator, ((uint64)(uintptr_t)(&pair)), 1);
__ecereProp___ecereNameSpace__ecere__com__Iterator_Set_data(&__internalIterator, (uint64)(uintptr_t)(list));
});
}
else
{
(__ecereNameSpace__ecere__com__eSystem_Delete(pair.string), pair.string = 0);
(__ecereNameSpace__ecere__com__eSystem_Delete(pair.context), pair.context = 0);
}
(__extension__ ({
struct __ecereNameSpace__ecere__com__IteratorPointer * (* __internal_VirtualMethod)(struct __ecereNameSpace__ecere__com__Instance *, uint64 value);
__internal_VirtualMethod = ((struct __ecereNameSpace__ecere__com__IteratorPointer * (*)(struct __ecereNameSpace__ecere__com__Instance *, uint64 value))__extension__ ({
struct __ecereNameSpace__ecere__com__Instance * __internal_ClassInst = list;
__internal_ClassInst ? __internal_ClassInst->_vTbl : __ecereClass___ecereNameSpace__ecere__com__List->_vTbl;
})[__ecereVMethodID___ecereNameSpace__ecere__com__Container_Add]);
__internal_VirtualMethod ? __internal_VirtualMethod(list, (uint64)(uintptr_t)(&yylloc)) : (struct __ecereNameSpace__ecere__com__IteratorPointer *)1;
}));
}
s = QMkString(i18nModuleName ? i18nModuleName : "");
ListAdd(list, MkExpString(s));
(__ecereNameSpace__ecere__com__eSystem_Delete(s), s = 0);
ListAdd(list, MkExpString(string));
if(context)
{
int lenString = strlen(string), lenContext = strlen(context);
char * msgid = __ecereNameSpace__ecere__com__eSystem_New(sizeof(char) * (lenString - 2 + lenContext - 2 + 4));
msgid[0] = '\"';
memcpy(msgid + 1, context + 1, lenContext - 2);
msgid[1 + lenContext - 2] = 4;
memcpy(msgid + 1 + lenContext - 2 + 1, string + 1, lenString - 2);
memcpy(msgid + 1 + lenContext - 2 + 1 + lenString - 2, "\"", 2);
ListAdd(list, MkExpString(msgid));
(__ecereNameSpace__ecere__com__eSystem_Delete(msgid), msgid = 0);
}
else
ListAdd(list, QMkExpId("null"));
return MkExpCall(QMkExpId("GetTranslatedString"), list);
}
else
{
struct Expression * e = MkExpString(string);
e->__anon1.__anon2.intlString = 1;
return e;
}
}
struct ModuleImport * FindModule(struct __ecereNameSpace__ecere__com__Instance * moduleToFind)
{
struct ModuleImport * module;
if(!((struct __ecereNameSpace__ecere__com__Module *)(((char *)moduleToFind + sizeof(struct __ecereNameSpace__ecere__com__Instance))))->name)
return mainModule;
for(module = (*imports).first; module; module = module->next)
if(module->name && !strcmp(module->name, ((struct __ecereNameSpace__ecere__com__Module *)(((char *)moduleToFind + sizeof(struct __ecereNameSpace__ecere__com__Instance))))->name))
break;
if(!module)
{
module = __extension__ ({
struct ModuleImport * __ecereInstance1 = __ecereNameSpace__ecere__com__eInstance_New(__ecereClass_ModuleImport);
__ecereInstance1->name = __ecereNameSpace__ecere__sys__CopyString(((struct __ecereNameSpace__ecere__com__Module *)(((char *)moduleToFind + sizeof(struct __ecereNameSpace__ecere__com__Instance))))->name), __ecereInstance1->importType = ((struct __ecereNameSpace__ecere__com__Module *)(((char *)moduleToFind + sizeof(struct __ecereNameSpace__ecere__com__Instance))))->importType, __ecereInstance1->importAccess = ModuleAccess(privateModule, moduleToFind) ? 1 : 2, __ecereInstance1;
});
__ecereMethod___ecereNameSpace__ecere__sys__OldList_Add((&*imports), module);
}
return module;
}
struct Symbol * FindClass(const char * name)
{
struct Symbol * cl = (((void *)0));
struct __ecereNameSpace__ecere__com__Class * _class;
unsigned int global = 0;
char fullName[1024];
fullName[0] = 0;
if(name[0] == ':' && name[1] == ':')
{
global = 1;
name += 2;
}
if(!global && (currentNameSpace || defaultNameSpace) && declMode != 0 && defaultDeclMode != 0)
{
int len = 0, stringLen;
if(defaultNameSpace)
{
memcpy(fullName, defaultNameSpace, defaultNameSpaceLen);
len += defaultNameSpaceLen;
fullName[len++] = ':';
fullName[len++] = ':';
}
if(currentNameSpace)
{
memcpy(fullName + len, currentNameSpace, currentNameSpaceLen);
len += currentNameSpaceLen;
fullName[len++] = ':';
fullName[len++] = ':';
}
stringLen = strlen(name);
memcpy(fullName + len, name, stringLen);
len += stringLen;
fullName[len] = 0;
cl = globalContext ? (struct Symbol *)__ecereMethod___ecereNameSpace__ecere__sys__BinaryTree_FindString(&globalContext->classes, fullName) : (((void *)0));
}
if(!cl)
cl = globalContext ? (struct Symbol *)__ecereMethod___ecereNameSpace__ecere__sys__BinaryTree_FindString(&globalContext->classes, name) : (((void *)0));
if(!cl && !global)
{
for(cl = globalContext ? (struct Symbol *)__ecereProp___ecereNameSpace__ecere__sys__BinaryTree_Get_first(&globalContext->classes) : (((void *)0)); cl; cl = (struct Symbol *)__ecereProp___ecereNameSpace__ecere__sys__BTNode_Get_next(((struct __ecereNameSpace__ecere__sys__BTNode *)cl)))
{
if(cl->shortName && !strcmp(cl->shortName, name))
break;
}
}
if(!cl)
{
_class = (((void *)0));
if(!global && (currentNameSpace || defaultNameSpace) && declMode != 0 && defaultDeclMode != 0)
_class = __ecereNameSpace__ecere__com__eSystem_FindClass(privateModule, fullName);
if(!_class)
_class = __ecereNameSpace__ecere__com__eSystem_FindClass(privateModule, name);
if(_class)
{
name = _class->fullName;
cl = (struct Symbol *)__ecereMethod___ecereNameSpace__ecere__sys__BinaryTree_FindString(&globalContext->classes, name);
if(!cl)
{
cl = __extension__ ({
struct Symbol * __ecereInstance1 = __ecereNameSpace__ecere__com__eInstance_New(__ecereClass_Symbol);
__ecereInstance1->string = __ecereNameSpace__ecere__sys__CopyString(name), __ecereInstance1->__anon1.registered = _class, __ecereInstance1->notYetDeclared = 1, __ecereInstance1->imported = 1, __ecereInstance1;
});
_class->symbol = cl;
if(_class->module)
cl->module = FindModule(_class->module);
else
cl->module = mainModule;
if(!__ecereMethod___ecereNameSpace__ecere__sys__BinaryTree_Add(&globalContext->classes, (struct __ecereNameSpace__ecere__sys__BTNode *)cl))
__ecereMethod___ecereNameSpace__ecere__sys__OldList_Add((&*excludedSymbols), cl);
if(strcmp(name, _class->name))
cl->shortName = __ecereNameSpace__ecere__sys__CopyString(_class->name);
}
}
}
return cl;
}
struct Identifier * MkIdentifier(const char * string)
{
struct Identifier * id = __ecereNameSpace__ecere__com__eInstance_New(__ecereClass_Identifier);
int c;
id->_class = (((void *)0));
if(string)
{
const char * namePart;
unsigned int gotColon = 0;
for(c = strlen(string) - 1; c >= 0; c--)
if(string[c] == ':')
{
gotColon = 1;
break;
}
namePart = string + c + 1;
while(c >= 0 && string[c] == ':')
c--;
if(c >= 0)
{
char name[1024];
struct Symbol * symbol;
memcpy(name, string, c + 1);
name[c + 1] = '\0';
if(!strcmp(name, "typed_object"))
{
id->_class = MkSpecifierName("typed_object");
id->string = __ecereNameSpace__ecere__sys__CopyString(namePart);
}
else if(!strcmp(name, "property"))
{
id->_class = MkSpecifierName("property");
id->string = __ecereNameSpace__ecere__sys__CopyString(namePart);
}
else if(!strcmp(name, "typed_object&"))
{
id->_class = MkSpecifierName("typed_object&");
id->string = __ecereNameSpace__ecere__sys__CopyString(namePart);
}
else if(!strcmp(name, "any_object"))
{
id->_class = MkSpecifierName("any_object");
id->string = __ecereNameSpace__ecere__sys__CopyString(namePart);
}
else
{
struct TemplatedType * templatedType = FindTemplateTypeParameter(curContext, name);
if(templatedType)
{
id->_class = __extension__ ({
struct Specifier * __ecereInstance1 = __ecereNameSpace__ecere__com__eInstance_New(__ecereClass_Specifier);
__ecereInstance1->type = 8, __ecereInstance1->__anon1.templateParameter = templatedType->param, __ecereInstance1;
});
id->string = __ecereNameSpace__ecere__sys__CopyString(namePart);
}
else
{
symbol = FindClass(name);
if(symbol)
{
id->_class = _MkSpecifierName(symbol->string, symbol, (((void *)0)));
id->string = __ecereNameSpace__ecere__sys__CopyString(namePart);
}
else
id->string = __ecereNameSpace__ecere__sys__CopyString(string);
}
}
}
else if(gotColon)
{
id->_class = MkSpecifierName((((void *)0)));
id->string = __ecereNameSpace__ecere__sys__CopyString(namePart);
}
else
id->string = __ecereNameSpace__ecere__sys__CopyString(string);
}
else
id->string = __ecereNameSpace__ecere__sys__CopyString("");
return id;
}
void SetClassTemplateArgs(struct Specifier * spec, struct __ecereNameSpace__ecere__sys__OldList * templateArgs)
{
if(spec->type == 1)
{
struct Symbol * symbol = spec->__anon1.__anon1.symbol;
spec->__anon1.__anon1.templateArgs = templateArgs;
if(templateArgs && templateArgs->first)
{
char templateString[1024];
struct TemplateArgument * arg;
strcpy(templateString, symbol ? symbol->string : spec->__anon1.__anon1.name);
strcat(templateString, "<");
for(arg = templateArgs->first; arg; arg = arg->next)
{
char argument[256];
argument[0] = '\0';
switch(arg->type)
{
case 2:
{
char expString[1024];
struct __ecereNameSpace__ecere__com__Class * backupThisClass = thisClass;
thisClass = (((void *)0));
expString[0] = '\0';
PrintExpression(arg->__anon1.expression, expString);
strcat(argument, expString);
thisClass = backupThisClass;
break;
}
case 1:
{
strcat(argument, arg->__anon1.identifier->string);
break;
}
case 0:
{
char * typeString = StringFromSpecDecl(arg->__anon1.templateDatatype->specifiers, arg->__anon1.templateDatatype->decl);
strcat(argument, typeString);
(__ecereNameSpace__ecere__com__eSystem_Delete(typeString), typeString = 0);
break;
}
}
if(argument[0])
{
if(arg->prev)
strcat(templateString, ", ");
if(arg->name)
{
strcat(templateString, arg->name->string);
strcat(templateString, " = ");
}
strcat(templateString, argument);
}
}
{
int len = strlen(templateString);
if(templateString[len - 1] == '>')
templateString[len++] = ' ';
templateString[len++] = '>';
templateString[len++] = '\0';
}
symbol = FindClass(templateString);
if(!symbol && spec->__anon1.__anon1.symbol)
{
symbol = _DeclClass((((void *)0)), templateString);
symbol->notYetDeclared = 1;
}
if(spec->__anon1.__anon1.symbol)
__ecereMethod___ecereNameSpace__ecere__sys__OldList_Add(&spec->__anon1.__anon1.symbol->templatedClasses, __extension__ ({
struct __ecereNameSpace__ecere__sys__OldLink * __ecereInstance1 = __ecereNameSpace__ecere__com__eSystem_New0(sizeof(struct __ecereNameSpace__ecere__sys__OldLink));
__ecereInstance1->data = symbol, __ecereInstance1;
}));
(__ecereNameSpace__ecere__com__eSystem_Delete(spec->__anon1.__anon1.name), spec->__anon1.__anon1.name = 0);
spec->__anon1.__anon1.symbol = symbol;
spec->__anon1.__anon1.name = __ecereNameSpace__ecere__sys__CopyString(symbol ? symbol->string : templateString);
}
}
else
FreeList(templateArgs, (void *)(FreeTemplateArgument));
}
struct Symbol * _DeclClass(struct Specifier * _class, const char * name)
{
struct Symbol * symbol;
char nameBuffer[1024];
if(_class)
{
strcpy(nameBuffer, _class->__anon1.__anon1.name ? _class->__anon1.__anon1.name : "");
strcat(nameBuffer, "::");
strcat(nameBuffer, name);
name = nameBuffer;
}
symbol = FindClass(name);
if(!symbol)
{
if(name[0] == ':' && name[1] == ':')
name += 2;
symbol = __extension__ ({
struct Symbol * __ecereInstance1 = __ecereNameSpace__ecere__com__eInstance_New(__ecereClass_Symbol);
__ecereInstance1->string = __ecereNameSpace__ecere__sys__CopyString(name), __ecereInstance1->notYetDeclared = 1, __ecereInstance1;
});
if(!__ecereMethod___ecereNameSpace__ecere__sys__BinaryTree_Add(&globalContext->classes, (struct __ecereNameSpace__ecere__sys__BTNode *)symbol))
__ecereMethod___ecereNameSpace__ecere__sys__OldList_Add((&*excludedSymbols), symbol);
{
int start = 0, c;
char ch;
for(c = 0; (ch = name[c]); c++)
{
if(ch == '.' || (ch == ':' && name[c + 1] == ':'))
{
if(ch == ':')
c++;
start = c + 1;
}
}
if(start && c - start)
symbol->shortName = __ecereNameSpace__ecere__sys__CopyString(name + start);
}
}
return symbol;
}
int CheckType(const char * text)
{
if(inIDE)
{
if(!strcmp(text, "WINAPI"))
return EXT_DECL;
else if(!strcmp(text, "BOOL") || !strcmp(text, "WINUSERAPI"))
return TYPE_NAME;
}
if(FindTemplateTypeParameter(curContext, text))
{
return TYPE_NAME;
}
if(FindType(curContext, text))
{
return TYPE_NAME;
}
if(FindClass(text))
{
return TYPE_NAME;
}
return IDENTIFIER;
}
struct Type * MkClassType(const char * name)
{
if(name)
{
struct Type * type = (type = __ecereNameSpace__ecere__com__eInstance_New(__ecereClass_Type), type->kind = 8, type->__anon1._class = FindClass(name), type);
if(!type->__anon1._class)
{
type->kind = 3;
}
type->refCount = 1;
return type;
}
return (((void *)0));
}
struct TypeName * MkTypeNameGuessDecl(struct __ecereNameSpace__ecere__sys__OldList * qualifiers, struct Declarator * declarator)
{
if(qualifiers != (((void *)0)))
{
unsigned int gotType = 0;
unsigned int gotFullType = 0;
struct Specifier * spec, * next;
for(spec = qualifiers->first; spec; spec = next)
{
next = spec->next;
if(gotType && !declarator && ((spec->type == 1 && spec->__anon1.__anon1.name) || (spec->type == 0 && gotFullType)))
{
const char * s = (((void *)0));
if(spec->type == 1)
{
char * colon = __ecereNameSpace__ecere__sys__RSearchString(spec->__anon1.__anon1.name, "::", strlen(spec->__anon1.__anon1.name), 1, 0);
s = colon ? colon + 2 : spec->__anon1.__anon1.name;
}
else if(spec->type == 0)
{
if(spec->__anon1.specifier == INT64)
s = "int64";
else if(spec->__anon1.specifier == INT128)
s = "__int128";
else if(spec->__anon1.specifier == FLOAT128)
s = "__float128";
}
if(s)
{
declarator = MkDeclaratorIdentifier(MkIdentifier(s));
__ecereMethod___ecereNameSpace__ecere__sys__OldList_Remove(qualifiers, spec);
FreeSpecifier(spec);
spec = (((void *)0));
}
}
if(spec && spec->type != 5)
{
if(spec->type == 0)
{
if(spec->__anon1.specifier == CONST || spec->__anon1.specifier == VOLATILE || spec->__anon1.specifier == EXTERN || spec->__anon1.specifier == STATIC || spec->__anon1.specifier == AUTO || spec->__anon1.specifier == REGISTER)
continue;
else if(spec->__anon1.specifier != UNSIGNED && spec->__anon1.specifier != SIGNED && spec->__anon1.specifier != LONG)
gotFullType = 1;
gotType = 1;
}
else
{
gotFullType = 1;
gotType = 1;
}
}
}
}
return __extension__ ({
struct TypeName * __ecereInstance1 = __ecereNameSpace__ecere__com__eInstance_New(__ecereClass_TypeName);
__ecereInstance1->qualifiers = qualifiers, __ecereInstance1->declarator = declarator, __ecereInstance1;
});
}
void SetupBaseSpecs(struct Symbol * symbol, struct __ecereNameSpace__ecere__sys__OldList * baseSpecs)
{
if(baseSpecs && baseSpecs->first && ((struct Specifier *)baseSpecs->first)->type == 1)
{
char name[1024];
struct Symbol * baseClass;
char * tpl;
strcpy(name, ((struct Specifier *)baseSpecs->first)->__anon1.__anon1.name);
tpl = strchr(name, '<');
if(tpl)
*tpl = 0;
baseClass = FindClass(name);
if(baseClass && baseClass->ctx)
{
struct TemplatedType * copy;
for(copy = (struct TemplatedType *)__ecereProp___ecereNameSpace__ecere__sys__BinaryTree_Get_first(&baseClass->ctx->templateTypes); copy; copy = (struct TemplatedType *)__ecereProp___ecereNameSpace__ecere__sys__BTNode_Get_next((void *)(copy)))
{
struct TemplatedType * type = (type = __ecereNameSpace__ecere__com__eInstance_New(__ecereClass_TemplatedType), type->key = copy->key, type->param = copy->param, type);
if(!__ecereMethod___ecereNameSpace__ecere__sys__BinaryTree_Add(&curContext->templateTypes, (struct __ecereNameSpace__ecere__sys__BTNode *)type))
((type ? __extension__ ({
void * __ecerePtrToDelete = (type);
__ecereClass_TemplatedType->Destructor ? __ecereClass_TemplatedType->Destructor((void *)__ecerePtrToDelete) : 0, __ecereClass___ecereNameSpace__ecere__sys__BTNode->Destructor ? __ecereClass___ecereNameSpace__ecere__sys__BTNode->Destructor((void *)__ecerePtrToDelete) : 0, __ecereNameSpace__ecere__com__eSystem_Delete(__ecerePtrToDelete);
}) : 0), type = 0);
}
}
else if(baseClass && baseClass->__anon1.registered)
{
struct __ecereNameSpace__ecere__com__Class * sClass;
for(sClass = baseClass->__anon1.registered; sClass; sClass = sClass->base)
{
struct __ecereNameSpace__ecere__com__ClassTemplateParameter * p;
for(p = sClass->templateParams.first; p; p = p->next)
{
if(p->type == 0)
{
struct TemplateParameter * param = p->param;
struct TemplatedType * type;
if(!param)
{
p->param = param = __extension__ ({
struct TemplateParameter * __ecereInstance1 = __ecereNameSpace__ecere__com__eInstance_New(__ecereClass_TemplateParameter);
__ecereInstance1->identifier = MkIdentifier(p->name), __ecereInstance1->type = p->type, __ecereInstance1->dataTypeString = p->__anon1.dataTypeString, __ecereInstance1;
});
}
type = __extension__ ({
struct TemplatedType * __ecereInstance1 = __ecereNameSpace__ecere__com__eInstance_New(__ecereClass_TemplatedType);
__ecereInstance1->key = (uintptr_t)p->name, __ecereInstance1->param = param, __ecereInstance1;
});
if(!__ecereMethod___ecereNameSpace__ecere__sys__BinaryTree_Add(&curContext->templateTypes, (struct __ecereNameSpace__ecere__sys__BTNode *)type))
((type ? __extension__ ({
void * __ecerePtrToDelete = (type);
__ecereClass_TemplatedType->Destructor ? __ecereClass_TemplatedType->Destructor((void *)__ecerePtrToDelete) : 0, __ecereClass___ecereNameSpace__ecere__sys__BTNode->Destructor ? __ecereClass___ecereNameSpace__ecere__sys__BTNode->Destructor((void *)__ecerePtrToDelete) : 0, __ecereNameSpace__ecere__com__eSystem_Delete(__ecerePtrToDelete);
}) : 0), type = 0);
}
}
}
}
}
}
struct Specifier * _MkSpecifierName(const char * name, struct Symbol * symbol, struct __ecereNameSpace__ecere__sys__OldList * templateArgs)
{
struct Specifier * spec = (spec = __ecereNameSpace__ecere__com__eInstance_New(__ecereClass_Specifier), spec->type = 1, spec);
if(name)
{
if(!symbol)
{
struct TemplatedType * templatedType = FindTemplateTypeParameter(curContext, name);
if(templatedType)
{
spec->__anon1.templateParameter = templatedType->param;
spec->type = 8;
return spec;
}
else
symbol = FindClass(name);
}
if(symbol && symbol->__anon1.registered && symbol->__anon1.registered->isRemote == 1)
{
char className[1024];
strcpy(className, "DCOMClient_");
if(!strncmp(name, className, strlen(className)))
spec->__anon1.__anon1.name = __ecereNameSpace__ecere__sys__CopyString(name);
else
{
strcat(className, name);
spec->__anon1.__anon1.name = __ecereNameSpace__ecere__sys__CopyString(className);
}
}
else if(symbol)
{
char nameSpace[1024];
char * c = strstr(name, symbol->string);
spec->__anon1.__anon1.name = __ecereNameSpace__ecere__sys__CopyString(symbol->string);
if(c && c >= name + 2 && c[-1] == ':' && c[-2] == ':')
{
if(c > name + 2)
{
memcpy(nameSpace, name, c - name - 2);
nameSpace[c - name] = 0;
spec->__anon1.__anon1.nsSpec = _MkSpecifierName(nameSpace, (((void *)0)), (((void *)0)));
}
else
spec->__anon1.__anon1.nsSpec = _MkSpecifierName((((void *)0)), (((void *)0)), (((void *)0)));
}
}
else
spec->__anon1.__anon1.name = __ecereNameSpace__ecere__sys__CopyString(name);
spec->__anon1.__anon1.symbol = symbol;
if(templateArgs != (((void *)0)))
SetClassTemplateArgs(spec, templateArgs);
}
return spec;
}
struct ClassDef;
struct Expression * GetTemplateArgExpByName(const char * paramName, struct __ecereNameSpace__ecere__com__Class * thisClassFrom, struct __ecereNameSpace__ecere__com__Class * curClass, int tplType);
struct Expression * GetTemplateArgExp(struct TemplateParameter * param, struct __ecereNameSpace__ecere__com__Class * thisClassFrom, struct __ecereNameSpace__ecere__com__Class * curClass, unsigned int pointer)
{
return param->identifier ? GetTemplateArgExpByName(param->identifier->string, thisClassFrom, curClass, 0) : (((void *)0));
}
struct Declaration;
struct Declaration
{
struct Declaration * prev;
struct Declaration * next;
struct Location loc;
int type;
union
{
struct
{
struct __ecereNameSpace__ecere__sys__OldList * specifiers;
struct __ecereNameSpace__ecere__sys__OldList * declarators;
} ecere_gcc_struct __anon1;
struct Instantiation * inst;
struct
{
struct Identifier * id;
struct Expression * exp;
} ecere_gcc_struct __anon2;
} ecere_gcc_struct __anon1;
struct Specifier * extStorage;
struct Symbol * symbol;
int declMode;
} ecere_gcc_struct;
struct Statement
{
struct Statement * prev;
struct Statement * next;
struct Location loc;
int type;
union
{
struct __ecereNameSpace__ecere__sys__OldList * expressions;
struct
{
struct Identifier * id;
struct Statement * stmt;
} ecere_gcc_struct labeled;
struct
{
struct Expression * exp;
struct Statement * stmt;
} ecere_gcc_struct caseStmt;
struct
{
struct __ecereNameSpace__ecere__sys__OldList * declarations;
struct __ecereNameSpace__ecere__sys__OldList * statements;
struct Context * context;
unsigned int isSwitch;
} ecere_gcc_struct compound;
struct
{
struct __ecereNameSpace__ecere__sys__OldList * exp;
struct Statement * stmt;
struct Statement * elseStmt;
} ecere_gcc_struct ifStmt;
struct
{
struct __ecereNameSpace__ecere__sys__OldList * exp;
struct Statement * stmt;
} ecere_gcc_struct switchStmt;
struct
{
struct __ecereNameSpace__ecere__sys__OldList * exp;
struct Statement * stmt;
} ecere_gcc_struct whileStmt;
struct
{
struct __ecereNameSpace__ecere__sys__OldList * exp;
struct Statement * stmt;
} ecere_gcc_struct doWhile;
struct
{
struct Statement * init;
struct Statement * check;
struct __ecereNameSpace__ecere__sys__OldList * increment;
struct Statement * stmt;
} ecere_gcc_struct forStmt;
struct
{
struct Identifier * id;
} ecere_gcc_struct gotoStmt;
struct
{
struct Specifier * spec;
char * statements;
struct __ecereNameSpace__ecere__sys__OldList * inputFields;
struct __ecereNameSpace__ecere__sys__OldList * outputFields;
struct __ecereNameSpace__ecere__sys__OldList * clobberedFields;
} ecere_gcc_struct asmStmt;
struct
{
struct Expression * watcher;
struct Expression * object;
struct __ecereNameSpace__ecere__sys__OldList * watches;
} ecere_gcc_struct _watch;
struct
{
struct Identifier * id;
struct __ecereNameSpace__ecere__sys__OldList * exp;
struct __ecereNameSpace__ecere__sys__OldList * filter;
struct Statement * stmt;
} ecere_gcc_struct forEachStmt;
struct Declaration * decl;
} ecere_gcc_struct __anon1;
} ecere_gcc_struct;
struct External
{
struct External * prev;
struct External * next;
struct Location loc;
int type;
struct Symbol * symbol;
union
{
struct FunctionDefinition * function;
struct ClassDefinition * _class;
struct Declaration * declaration;
char * importString;
struct Identifier * id;
struct DBTableDef * table;
char * pragma;
} ecere_gcc_struct __anon1;
int importType;
struct External * fwdDecl;
struct __ecereNameSpace__ecere__com__Instance * outgoing;
struct __ecereNameSpace__ecere__com__Instance * incoming;
int nonBreakableIncoming;
} ecere_gcc_struct;
struct Declaration * MkDeclarationInst(struct Instantiation * inst)
{
struct Declaration * decl = (decl = __ecereNameSpace__ecere__com__eInstance_New(__ecereClass_Declaration), decl->type = 2, decl->__anon1.inst = inst, decl->loc = yylloc, decl);
struct Symbol * symbol;
if(curContext == globalContext && (currentNameSpace || defaultNameSpace) && declMode != 0 && defaultDeclMode != 0)
{
char name[1024];
int len = 0, stringLen;
if(defaultNameSpace)
{
memcpy(name, defaultNameSpace, defaultNameSpaceLen);
len += defaultNameSpaceLen;
name[len++] = ':';
name[len++] = ':';
}
if(currentNameSpace)
{
memcpy(name + len, currentNameSpace, currentNameSpaceLen);
len += currentNameSpaceLen;
name[len++] = ':';
name[len++] = ':';
}
stringLen = strlen(inst->exp->__anon1.__anon1.identifier->string);
memcpy(name + len, inst->exp->__anon1.__anon1.identifier->string, stringLen);
len += stringLen;
name[len] = 0;
(__ecereNameSpace__ecere__com__eSystem_Delete(inst->exp->__anon1.__anon1.identifier->string), inst->exp->__anon1.__anon1.identifier->string = 0);
inst->exp->__anon1.__anon1.identifier->string = __ecereNameSpace__ecere__sys__CopyString(name);
}
symbol = __extension__ ({
struct Symbol * __ecereInstance1 = __ecereNameSpace__ecere__com__eInstance_New(__ecereClass_Symbol);
__ecereInstance1->string = (inst->exp->type == 0) ? __ecereNameSpace__ecere__sys__CopyString(inst->exp->__anon1.__anon1.identifier->string) : (((void *)0)), __ecereInstance1->type = MkClassTypeSymbol(inst->_class->__anon1.__anon1.symbol), __ecereInstance1;
});
if(strstr(symbol->string, "::"))
curContext->hasNameSpace = 1;
if(!__ecereMethod___ecereNameSpace__ecere__sys__BinaryTree_Add(&(curContext->templateTypesOnly ? curContext->parent : curContext)->symbols, (struct __ecereNameSpace__ecere__sys__BTNode *)symbol))
__ecereMethod___ecereNameSpace__ecere__sys__OldList_Add((&*excludedSymbols), symbol);
decl->symbol = inst->symbol = symbol;
return decl;
}
struct Declaration * MkDeclaration(struct __ecereNameSpace__ecere__sys__OldList * specifiers, struct __ecereNameSpace__ecere__sys__OldList * initDeclarators)
{
struct Declaration * decl = (decl = __ecereNameSpace__ecere__com__eInstance_New(__ecereClass_Declaration), decl->type = 1, decl->__anon1.__anon1.declarators = initDeclarators, decl->__anon1.__anon1.specifiers = specifiers, decl->loc = yylloc, decl);
unsigned int variable = 1;
if(specifiers != (((void *)0)))
{
unsigned int gotType = 0;
struct Specifier * spec, * next;
for(spec = specifiers->first; spec; spec = next)
{
next = spec->next;
if(spec->type == 0 && spec->__anon1.specifier == TYPEDEF)
{
if(initDeclarators != (((void *)0)))
{
struct InitDeclarator * d;
for(d = initDeclarators->first; d; d = d->next)
{
if(GetDeclId(d->declarator)->string)
{
struct Symbol * type = (type = __ecereNameSpace__ecere__com__eInstance_New(__ecereClass_Symbol), type->string = __ecereNameSpace__ecere__sys__CopyString(GetDeclId(d->declarator)->string), type->type = ProcessType(specifiers, d->declarator), type);
if(!__ecereMethod___ecereNameSpace__ecere__sys__BinaryTree_Add(&(curContext->templateTypesOnly ? curContext->parent : curContext)->types, (struct __ecereNameSpace__ecere__sys__BTNode *)type))
__ecereMethod___ecereNameSpace__ecere__sys__OldList_Add((&*excludedSymbols), type);
decl->symbol = d->declarator->symbol = type;
}
}
}
else if(spec->next)
{
spec = specifiers->last;
{
if((spec->type == 1 && spec->__anon1.__anon1.name) || spec->type == 0)
{
const char * s = (((void *)0));
if(spec->type == 1)
{
const char * colon = __ecereNameSpace__ecere__sys__RSearchString(spec->__anon1.__anon1.name, "::", strlen(spec->__anon1.__anon1.name), 1, 0);
s = colon ? colon + 2 : spec->__anon1.__anon1.name;
}
else if(spec->type == 0)
{
if(spec->__anon1.specifier == INT64)
s = "int64";
else if(spec->__anon1.specifier == INT128)
s = "__int128";
else if(spec->__anon1.specifier == FLOAT128)
s = "__float128";
}
if(s)
{
struct Symbol * type = (type = __ecereNameSpace__ecere__com__eInstance_New(__ecereClass_Symbol), type->string = __ecereNameSpace__ecere__sys__CopyString(s), type->type = ProcessType(specifiers, (((void *)0))), type);
decl->symbol = type;
decl->__anon1.__anon1.declarators = initDeclarators = MkListOne(MkInitDeclarator(MkDeclaratorIdentifier(MkIdentifier(s)), (((void *)0))));
__ecereMethod___ecereNameSpace__ecere__sys__OldList_Remove(specifiers, spec);
FreeSpecifier(spec);
if(!__ecereMethod___ecereNameSpace__ecere__sys__BinaryTree_Add(&(curContext->templateTypesOnly ? curContext->parent : curContext)->types, (struct __ecereNameSpace__ecere__sys__BTNode *)type))
__ecereMethod___ecereNameSpace__ecere__sys__OldList_Add((&*excludedSymbols), type);
}
}
}
}
variable = 0;
break;
}
else if(spec->type == 0 && (spec->__anon1.specifier == STRUCT || spec->__anon1.specifier == UNION))
variable = 0;
else
{
if(gotType && initDeclarators == (((void *)0)) && !spec->next && ((spec->type == 1 && spec->__anon1.__anon1.name) || spec->type == 0))
{
const char * s = (((void *)0));
if(spec->type == 1)
{
char * colon = __ecereNameSpace__ecere__sys__RSearchString(spec->__anon1.__anon1.name, "::", strlen(spec->__anon1.__anon1.name), 1, 0);
s = colon ? colon + 2 : spec->__anon1.__anon1.name;
}
else if(spec->type == 0)
{
if(spec->__anon1.specifier == INT64)
s = "int64";
else if(spec->__anon1.specifier == INT128)
s = "__int128";
else if(spec->__anon1.specifier == FLOAT128)
s = "__float128";
}
if(s)
{
decl->__anon1.__anon1.declarators = initDeclarators = MkListOne(MkInitDeclarator(MkDeclaratorIdentifier(MkIdentifier(s)), (((void *)0))));
__ecereMethod___ecereNameSpace__ecere__sys__OldList_Remove(specifiers, spec);
FreeSpecifier(spec);
spec = (((void *)0));
}
}
}
if(spec && spec->type != 5)
gotType = 1;
}
}
if(variable && initDeclarators)
{
struct InitDeclarator * d;
for(d = initDeclarators->first; d; d = d->next)
{
struct Identifier * id = GetDeclId(d->declarator);
if(id && id->string && id->string[0])
{
if(curContext)
{
struct Symbol * symbol;
if(curContext == globalContext && (currentNameSpace || defaultNameSpace) && declMode != 0 && defaultDeclMode != 0)
{
char name[1024];
int len = 0, stringLen;
if(defaultNameSpace)
{
memcpy(name, defaultNameSpace, defaultNameSpaceLen);
len += defaultNameSpaceLen;
name[len++] = ':';
name[len++] = ':';
}
if(currentNameSpace)
{
memcpy(name + len, currentNameSpace, currentNameSpaceLen);
len += currentNameSpaceLen;
name[len++] = ':';
name[len++] = ':';
}
stringLen = strlen(id->string);
memcpy(name + len, id->string, stringLen);
len += stringLen;
name[len] = 0;
(__ecereNameSpace__ecere__com__eSystem_Delete(id->string), id->string = 0);
id->string = __ecereNameSpace__ecere__sys__CopyString(name);
}
symbol = (struct Symbol *)__ecereMethod___ecereNameSpace__ecere__sys__BinaryTree_FindString(&(curContext->templateTypesOnly ? curContext->parent : curContext)->symbols, id->string);
if(!symbol && strcmp(id->string, "strlen"))
{
symbol = __extension__ ({
struct Symbol * __ecereInstance1 = __ecereNameSpace__ecere__com__eInstance_New(__ecereClass_Symbol);
__ecereInstance1->string = __ecereNameSpace__ecere__sys__CopyString(id->string), __ecereInstance1->type = ProcessType(specifiers, d->declarator), __ecereInstance1;
});
if(strstr(symbol->string, "::"))
curContext->hasNameSpace = 1;
if(!__ecereMethod___ecereNameSpace__ecere__sys__BinaryTree_Add(&(curContext->templateTypesOnly ? curContext->parent : curContext)->symbols, (struct __ecereNameSpace__ecere__sys__BTNode *)symbol))
__ecereMethod___ecereNameSpace__ecere__sys__OldList_Add((&*excludedSymbols), symbol);
if(symbol->type && symbol->type->kind == 12 && !symbol->type->__anon1.__anon4.arraySizeExp && d->initializer)
{
if(d->initializer->type == 1)
{
char string[256];
sprintf(string, "%d", (*d->initializer->__anon1.list).count);
symbol->type->__anon1.__anon4.arraySizeExp = MkExpConstant(string);
symbol->type->__anon1.__anon4.freeExp = 1;
}
else if(d->initializer->type == 0 && d->initializer->__anon1.exp->type == 3 && d->initializer->__anon1.exp->__anon1.__anon2.string)
{
char string[256];
int c, count = 0;
char ch;
unsigned int escaped = 0;
char * s = d->initializer->__anon1.exp->__anon1.__anon2.string;
if(s[0] == 'L')
s++;
for(c = 1; (ch = s[c]); c++)
{
if(ch == '\\' && !escaped)
escaped = 1;
else
{
count++;
escaped = 0;
}
}
sprintf(string, "%d", count);
symbol->type->__anon1.__anon4.arraySizeExp = MkExpConstant(string);
symbol->type->__anon1.__anon4.freeExp = 1;
}
}
}
decl->symbol = d->declarator->symbol = symbol;
}
}
}
}
else
{
decl->symbol = __ecereNameSpace__ecere__com__eInstance_New(__ecereClass_Symbol);
__ecereMethod___ecereNameSpace__ecere__sys__OldList_Add((&*excludedSymbols), decl->symbol);
}
return decl;
}
struct Declaration * MkStructDeclaration(struct __ecereNameSpace__ecere__sys__OldList * specifiers, struct __ecereNameSpace__ecere__sys__OldList * declarators, struct Specifier * extStorage)
{
struct Declaration * decl = (decl = __ecereNameSpace__ecere__com__eInstance_New(__ecereClass_Declaration), decl->type = 0, decl->__anon1.__anon1.declarators = declarators, decl->__anon1.__anon1.specifiers = specifiers, decl->extStorage = extStorage, decl->loc = yylloc, decl);
if(specifiers != (((void *)0)))
{
unsigned int gotType = 0;
struct Specifier * spec, * next;
for(spec = specifiers->first; spec; spec = next)
{
next = spec->next;
if(gotType && declarators == (((void *)0)) && ((spec->type == 1 && spec->__anon1.__anon1.name) || spec->type == 0))
{
const char * s = (((void *)0));
if(spec->type == 1)
{
const char * colon = __ecereNameSpace__ecere__sys__RSearchString(spec->__anon1.__anon1.name, "::", strlen(spec->__anon1.__anon1.name), 1, 0);
s = colon ? colon + 2 : spec->__anon1.__anon1.name;
}
else if(spec->type == 0)
{
if(spec->__anon1.specifier == INT64)
s = "int64";
else if(spec->__anon1.specifier == INT128)
s = "__int128";
else if(spec->__anon1.specifier == FLOAT128)
s = "__float128";
}
if(s)
{
decl->__anon1.__anon1.declarators = declarators = MkListOne(MkStructDeclarator(MkDeclaratorIdentifier(MkIdentifier(s)), (((void *)0))));
__ecereMethod___ecereNameSpace__ecere__sys__OldList_Remove(specifiers, spec);
FreeSpecifier(spec);
spec = (((void *)0));
}
}
if(spec && spec->type != 5)
gotType = 1;
}
}
return decl;
}
struct Declaration * MkDeclarationClassInst(struct Instantiation * inst)
{
return __extension__ ({
struct Declaration * __ecereInstance1 = __ecereNameSpace__ecere__com__eInstance_New(__ecereClass_Declaration);
__ecereInstance1->type = 2, __ecereInstance1->__anon1.inst = inst, __ecereInstance1->loc = yylloc, __ecereInstance1;
});
}
struct Declaration * MkDeclarationDefine(struct Identifier * id, struct Expression * exp)
{
struct Declaration * decl = (decl = __ecereNameSpace__ecere__com__eInstance_New(__ecereClass_Declaration), decl->type = 3, decl->__anon1.__anon2.id = id, decl->__anon1.__anon2.exp = exp, decl->loc = yylloc, decl);
char expString[1024];
expString[0] = '\0';
PrintExpression(exp, expString);
if(curContext == globalContext && (currentNameSpace || defaultNameSpace) && declMode != 0 && defaultDeclMode != 0)
{
char name[1024];
int len = 0, stringLen;
if(defaultNameSpace)
{
memcpy(name, defaultNameSpace, defaultNameSpaceLen);
len += defaultNameSpaceLen;
name[len++] = ':';
name[len++] = ':';
}
if(currentNameSpace)
{
memcpy(name + len, currentNameSpace, currentNameSpaceLen);
len += currentNameSpaceLen;
name[len++] = ':';
name[len++] = ':';
}
stringLen = strlen(id->string);
memcpy(name + len, id->string, stringLen);
len += stringLen;
name[len] = 0;
(__ecereNameSpace__ecere__com__eSystem_Delete(id->string), id->string = 0);
id->string = __ecereNameSpace__ecere__sys__CopyString(name);
}
if(!__ecereNameSpace__ecere__com__eSystem_FindDefine(privateModule, id->string))
__ecereNameSpace__ecere__com__eSystem_RegisterDefine(id->string, expString, privateModule, buildingECERECOMModule ? 4 : 1);
else
Compiler_Warning(__ecereNameSpace__ecere__GetTranslatedString("ec", "Redefinition of %s ignored\n", (((void *)0))), id->string);
return decl;
}
struct Statement * MkLabeledStmt(struct Identifier * id, struct Statement * statement)
{
return __extension__ ({
struct Statement * __ecereInstance1 = __ecereNameSpace__ecere__com__eInstance_New(__ecereClass_Statement);
__ecereInstance1->type = 0, __ecereInstance1->__anon1.labeled.id = id, __ecereInstance1->__anon1.labeled.stmt = statement, __ecereInstance1->loc = yylloc, __ecereInstance1;
});
}
struct Statement * MkCaseStmt(struct Expression * exp, struct Statement * statement)
{
return __extension__ ({
struct Statement * __ecereInstance1 = __ecereNameSpace__ecere__com__eInstance_New(__ecereClass_Statement);
__ecereInstance1->type = 1, __ecereInstance1->__anon1.caseStmt.exp = exp, __ecereInstance1->__anon1.caseStmt.stmt = statement, __ecereInstance1->loc = yylloc, __ecereInstance1;
});
}
struct Statement * MkIfStmt(struct __ecereNameSpace__ecere__sys__OldList * exp, struct Statement * statement, struct Statement * elseStmt)
{
return __extension__ ({
struct Statement * __ecereInstance1 = __ecereNameSpace__ecere__com__eInstance_New(__ecereClass_Statement);
__ecereInstance1->type = 4, __ecereInstance1->__anon1.ifStmt.exp = exp, __ecereInstance1->__anon1.ifStmt.stmt = statement, __ecereInstance1->__anon1.ifStmt.elseStmt = elseStmt, __ecereInstance1->loc = yylloc, __ecereInstance1;
});
}
struct Statement * MkSwitchStmt(struct __ecereNameSpace__ecere__sys__OldList * exp, struct Statement * statement)
{
if(statement)
statement->__anon1.compound.isSwitch = 1;
return __extension__ ({
struct Statement * __ecereInstance1 = __ecereNameSpace__ecere__com__eInstance_New(__ecereClass_Statement);
__ecereInstance1->type = 5, __ecereInstance1->__anon1.switchStmt.exp = exp, __ecereInstance1->__anon1.switchStmt.stmt = statement, __ecereInstance1->loc = yylloc, __ecereInstance1;
});
}
struct Statement * MkWhileStmt(struct __ecereNameSpace__ecere__sys__OldList * exp, struct Statement * statement)
{
return __extension__ ({
struct Statement * __ecereInstance1 = __ecereNameSpace__ecere__com__eInstance_New(__ecereClass_Statement);
__ecereInstance1->type = 6, __ecereInstance1->__anon1.whileStmt.exp = exp, __ecereInstance1->__anon1.whileStmt.stmt = statement, __ecereInstance1->loc = yylloc, __ecereInstance1;
});
}
struct Statement * MkDoWhileStmt(struct Statement * statement, struct __ecereNameSpace__ecere__sys__OldList * exp)
{
return __extension__ ({
struct Statement * __ecereInstance1 = __ecereNameSpace__ecere__com__eInstance_New(__ecereClass_Statement);
__ecereInstance1->type = 7, __ecereInstance1->__anon1.doWhile.exp = exp, __ecereInstance1->__anon1.doWhile.stmt = statement, __ecereInstance1->loc = yylloc, __ecereInstance1;
});
}
struct Statement * MkForStmt(struct Statement * init, struct Statement * check, struct __ecereNameSpace__ecere__sys__OldList * inc, struct Statement * statement)
{
return __extension__ ({
struct Statement * __ecereInstance1 = __ecereNameSpace__ecere__com__eInstance_New(__ecereClass_Statement);
__ecereInstance1->type = 8, __ecereInstance1->__anon1.forStmt.init = init, __ecereInstance1->__anon1.forStmt.check = check, __ecereInstance1->__anon1.forStmt.increment = inc, __ecereInstance1->__anon1.forStmt.stmt = statement, __ecereInstance1->loc = yylloc, __ecereInstance1;
});
}
struct Statement * MkForEachStmt(struct Identifier * id, struct __ecereNameSpace__ecere__sys__OldList * exp, struct __ecereNameSpace__ecere__sys__OldList * filter, struct Statement * statement)
{
return __extension__ ({
struct Statement * __ecereInstance1 = __ecereNameSpace__ecere__com__eInstance_New(__ecereClass_Statement);
__ecereInstance1->type = 18, __ecereInstance1->__anon1.forEachStmt.id = id, __ecereInstance1->__anon1.forEachStmt.exp = exp, __ecereInstance1->__anon1.forEachStmt.filter = filter, __ecereInstance1->__anon1.forEachStmt.stmt = statement, __ecereInstance1->loc = yylloc, __ecereInstance1;
});
}
void ProcessFunctionBody(struct FunctionDefinition * func, struct Statement * body)
{
struct Declarator * declarator = func->declarator;
struct Declarator * funcDecl = GetFuncDecl(declarator);
struct Symbol * symbol;
func->body = body;
if(funcDecl && funcDecl->__anon1.function.parameters && body)
{
struct Context * context = body->__anon1.compound.context;
struct TypeName * param;
for(param = (*funcDecl->__anon1.function.parameters).first; param; param = param->next)
{
if(param->declarator)
{
struct Symbol * symbol = (((void *)0));
struct Identifier * id = GetDeclId(param->declarator);
char * string = id ? id->string : (((void *)0));
if(string)
{
for(symbol = (struct Symbol *)__ecereProp___ecereNameSpace__ecere__sys__BinaryTree_Get_first(&context->symbols); symbol; symbol = (struct Symbol *)__ecereProp___ecereNameSpace__ecere__sys__BTNode_Get_next(((struct __ecereNameSpace__ecere__sys__BTNode *)symbol)))
if(!strcmp(symbol->string, string))
break;
if(!symbol && id)
{
symbol = __extension__ ({
struct Symbol * __ecereInstance1 = __ecereNameSpace__ecere__com__eInstance_New(__ecereClass_Symbol);
__ecereInstance1->string = __ecereNameSpace__ecere__sys__CopyString(id->string), __ecereInstance1->type = ProcessType(param->qualifiers, param->declarator), __ecereInstance1->isParam = 1, __ecereInstance1;
});
if(!__ecereMethod___ecereNameSpace__ecere__sys__BinaryTree_Add(&context->symbols, (struct __ecereNameSpace__ecere__sys__BTNode *)symbol))
__ecereMethod___ecereNameSpace__ecere__sys__OldList_Add((&*excludedSymbols), symbol);
param->declarator->symbol = symbol;
}
}
}
}
}
if(!declarator->symbol)
{
struct Identifier * id = GetDeclId(declarator);
if((currentNameSpace || defaultNameSpace) && declMode != 0 && defaultDeclMode != 0 && strcmp(id->string, "__on_register_module"))
{
char name[1024];
int len = 0, stringLen;
if(defaultNameSpace)
{
memcpy(name, defaultNameSpace, defaultNameSpaceLen);
len += defaultNameSpaceLen;
name[len++] = ':';
name[len++] = ':';
}
if(currentNameSpace)
{
memcpy(name + len, currentNameSpace, currentNameSpaceLen);
len += currentNameSpaceLen;
name[len++] = ':';
name[len++] = ':';
}
stringLen = strlen(id->string);
memcpy(name + len, id->string, stringLen);
len += stringLen;
name[len] = 0;
(__ecereNameSpace__ecere__com__eSystem_Delete(id->string), id->string = 0);
id->string = __ecereNameSpace__ecere__sys__CopyString(name);
}
symbol = __extension__ ({
struct Symbol * __ecereInstance1 = __ecereNameSpace__ecere__com__eInstance_New(__ecereClass_Symbol);
__ecereInstance1->string = __ecereNameSpace__ecere__sys__CopyString(id->string), __ecereInstance1->type = ProcessType(func->specifiers, declarator), __ecereInstance1;
});
if(strstr(symbol->string, "::"))
globalContext->hasNameSpace = 1;
if(!__ecereMethod___ecereNameSpace__ecere__sys__BinaryTree_Add(&globalContext->symbols, (struct __ecereNameSpace__ecere__sys__BTNode *)symbol))
__ecereMethod___ecereNameSpace__ecere__sys__OldList_Add((&*excludedSymbols), symbol);
declarator->symbol = symbol;
}
else
{
symbol = declarator->symbol;
__ecereMethod___ecereNameSpace__ecere__sys__OldList_Remove((&*excludedSymbols), declarator->symbol);
(__ecereNameSpace__ecere__com__eSystem_Delete(symbol->string), symbol->string = 0);
symbol->string = __ecereNameSpace__ecere__sys__CopyString(GetDeclId(declarator)->string);
if(strstr(symbol->string, "::"))
globalContext->hasNameSpace = 1;
if(!__ecereMethod___ecereNameSpace__ecere__sys__BinaryTree_Add(&globalContext->symbols, (struct __ecereNameSpace__ecere__sys__BTNode *)symbol))
__ecereMethod___ecereNameSpace__ecere__sys__OldList_Add((&*excludedSymbols), symbol);
if(!symbol->type)
symbol->type = ProcessType(func->specifiers, declarator);
}
if(symbol->type && (symbol->type->kind == 11 || symbol->type->kind == 16))
{
if(!symbol->type->__anon1.__anon2.params.count)
{
struct Type * type = (type = __ecereNameSpace__ecere__com__eInstance_New(__ecereClass_Type), type->refCount = 1, type);
__ecereMethod___ecereNameSpace__ecere__sys__OldList_Add(&symbol->type->__anon1.__anon2.params, type);
}
}
else
{
}
}
void ProcessClassFunctionBody(struct ClassFunction * func, struct Statement * body)
{
struct Symbol * symbol;
struct Declarator * decl = func->declarator;
struct Declarator * funcDecl = GetFuncDecl(func->declarator);
func->body = body;
if(decl && !decl->symbol)
{
struct __ecereNameSpace__ecere__sys__OldList * symbolSpecs = MkList();
if(funcDecl && funcDecl->__anon1.function.parameters && body)
{
struct Context * context = body->__anon1.compound.context;
struct TypeName * param;
for(param = (*funcDecl->__anon1.function.parameters).first; param; param = param->next)
{
if(param->declarator)
{
struct Symbol * symbol = (((void *)0));
struct Identifier * id = GetDeclId(param->declarator);
char * string = id ? id->string : (((void *)0));
if(string)
{
symbol = (struct Symbol *)__ecereMethod___ecereNameSpace__ecere__sys__BinaryTree_FindString(&context->symbols, string);
}
if(!symbol && id)
{
symbol = __extension__ ({
struct Symbol * __ecereInstance1 = __ecereNameSpace__ecere__com__eInstance_New(__ecereClass_Symbol);
__ecereInstance1->string = __ecereNameSpace__ecere__sys__CopyString(id->string), __ecereInstance1->type = ProcessType(param->qualifiers, param->declarator), __ecereInstance1->isParam = 1, __ecereInstance1;
});
if(!__ecereMethod___ecereNameSpace__ecere__sys__BinaryTree_Add(&context->symbols, (struct __ecereNameSpace__ecere__sys__BTNode *)symbol))
__ecereMethod___ecereNameSpace__ecere__sys__OldList_Add((&*excludedSymbols), symbol);
param->declarator->symbol = symbol;
}
}
}
}
symbol = __ecereNameSpace__ecere__com__eInstance_New(__ecereClass_Symbol);
{
struct Identifier * id = GetDeclId(funcDecl);
if(id)
{
int c;
for(c = strlen(id->string) - 1; c >= 0; c--)
{
if(id->string[c] == ':')
{
char * string = __ecereNameSpace__ecere__sys__CopyString(id->string + c + 1);
id->string[c - 1] = 0;
id->_class = MkSpecifierName(id->string);
(__ecereNameSpace__ecere__com__eSystem_Delete(id->string), id->string = 0);
id->string = string;
break;
}
}
symbol->string = __ecereNameSpace__ecere__sys__CopyString(id->string);
}
}
if(func->specifiers)
{
struct Specifier * spec;
for(spec = (*func->specifiers).first; spec; spec = spec->next)
__ecereMethod___ecereNameSpace__ecere__sys__OldList_Add((&*symbolSpecs), CopySpecifier(spec));
}
symbol->type = ProcessType(symbolSpecs, decl);
decl->symbol = symbol;
__ecereMethod___ecereNameSpace__ecere__sys__OldList_Add((&*excludedSymbols), symbol);
FreeList(symbolSpecs, (void *)(FreeSpecifier));
}
}
struct Statement * MkCompoundStmt(struct __ecereNameSpace__ecere__sys__OldList * declarations, struct __ecereNameSpace__ecere__sys__OldList * statements)
{
return __extension__ ({
struct Statement * __ecereInstance1 = __ecereNameSpace__ecere__com__eInstance_New(__ecereClass_Statement);
__ecereInstance1->type = 2, __ecereInstance1->__anon1.compound.declarations = declarations, __ecereInstance1->__anon1.compound.statements = statements, __ecereInstance1->loc = yylloc, __ecereInstance1;
});
}
struct Statement * MkExpressionStmt(struct __ecereNameSpace__ecere__sys__OldList * expressions)
{
return __extension__ ({
struct Statement * __ecereInstance1 = __ecereNameSpace__ecere__com__eInstance_New(__ecereClass_Statement);
__ecereInstance1->type = 3, __ecereInstance1->__anon1.expressions = expressions, __ecereInstance1->loc = yylloc, __ecereInstance1;
});
}
struct Statement * MkBadDeclStmt(struct Declaration * decl)
{
return __extension__ ({
struct Statement * __ecereInstance1 = __ecereNameSpace__ecere__com__eInstance_New(__ecereClass_Statement);
__ecereInstance1->type = 14, __ecereInstance1->__anon1.decl = decl, __ecereInstance1->loc = yylloc, __ecereInstance1;
});
}
struct Statement * MkGotoStmt(struct Identifier * id)
{
return __extension__ ({
struct Statement * __ecereInstance1 = __ecereNameSpace__ecere__com__eInstance_New(__ecereClass_Statement);
__ecereInstance1->type = 9, __ecereInstance1->__anon1.gotoStmt.id = id, __ecereInstance1->loc = yylloc, __ecereInstance1;
});
}
struct Statement * MkContinueStmt()
{
return __extension__ ({
struct Statement * __ecereInstance1 = __ecereNameSpace__ecere__com__eInstance_New(__ecereClass_Statement);
__ecereInstance1->type = 10, __ecereInstance1->loc = yylloc, __ecereInstance1;
});
}
struct Statement * MkBreakStmt()
{
return __extension__ ({
struct Statement * __ecereInstance1 = __ecereNameSpace__ecere__com__eInstance_New(__ecereClass_Statement);
__ecereInstance1->type = 11, __ecereInstance1->loc = yylloc, __ecereInstance1;
});
}
struct Statement * MkReturnStmt(struct __ecereNameSpace__ecere__sys__OldList * exp)
{
return __extension__ ({
struct Statement * __ecereInstance1 = __ecereNameSpace__ecere__com__eInstance_New(__ecereClass_Statement);
__ecereInstance1->type = 12, __ecereInstance1->__anon1.expressions = exp, __ecereInstance1->loc = yylloc, __ecereInstance1;
});
}
struct Statement * MkAsmStmt(struct Specifier * spec, char * statements, struct __ecereNameSpace__ecere__sys__OldList * inputFields, struct __ecereNameSpace__ecere__sys__OldList * outputFields, struct __ecereNameSpace__ecere__sys__OldList * clobberedFields)
{
return __extension__ ({
struct Statement * __ecereInstance1 = __ecereNameSpace__ecere__com__eInstance_New(__ecereClass_Statement);
__ecereInstance1->type = 13, __ecereInstance1->__anon1.asmStmt.spec = spec, __ecereInstance1->__anon1.asmStmt.statements = statements, __ecereInstance1->__anon1.asmStmt.inputFields = inputFields, __ecereInstance1->__anon1.asmStmt.outputFields = outputFields, __ecereInstance1->__anon1.asmStmt.clobberedFields = clobberedFields, __ecereInstance1;
});
}
struct Statement * MkFireWatchersStmt(struct Expression * object, struct __ecereNameSpace__ecere__sys__OldList * watches)
{
return __extension__ ({
struct Statement * __ecereInstance1 = __ecereNameSpace__ecere__com__eInstance_New(__ecereClass_Statement);
__ecereInstance1->type = 15, __ecereInstance1->__anon1._watch.object = object, __ecereInstance1->__anon1._watch.watches = watches, __ecereInstance1;
});
}
struct Statement * MkStopWatchingStmt(struct Expression * watcher, struct Expression * object, struct __ecereNameSpace__ecere__sys__OldList * watches)
{
return __extension__ ({
struct Statement * __ecereInstance1 = __ecereNameSpace__ecere__com__eInstance_New(__ecereClass_Statement);
__ecereInstance1->type = 16, __ecereInstance1->__anon1._watch.watcher = watcher, __ecereInstance1->__anon1._watch.object = object, __ecereInstance1->__anon1._watch.watches = watches, __ecereInstance1;
});
}
struct Statement * MkWatchStmt(struct Expression * watcher, struct Expression * object, struct __ecereNameSpace__ecere__sys__OldList * watches)
{
return __extension__ ({
struct Statement * __ecereInstance1 = __ecereNameSpace__ecere__com__eInstance_New(__ecereClass_Statement);
__ecereInstance1->type = 17, __ecereInstance1->__anon1._watch.watcher = watcher, __ecereInstance1->__anon1._watch.object = object, __ecereInstance1->__anon1._watch.watches = watches, __ecereInstance1;
});
}
struct External * MkExternalFunction(struct FunctionDefinition * function)
{
struct External * external = (external = __ecereNameSpace__ecere__com__eInstance_New(__ecereClass_External), external->type = 0, external->__anon1.function = function, external->symbol = function->declarator->symbol, external);
if(function->specifiers)
{
struct Specifier * spec;
for(spec = (*function->specifiers).first; spec; spec = spec->next)
if(spec->type == 0 && spec->__anon1.specifier == STATIC)
{
structDeclMode = declMode = 3;
break;
}
}
if(external->symbol && !external->symbol->__anon2.__anon3.methodExternal)
external->symbol->__anon2.__anon3.methodExternal = external;
return external;
}
struct External * MkExternalImport(char * name, int importType, int importAccess)
{
struct External * external = (external = __ecereNameSpace__ecere__com__eInstance_New(__ecereClass_External), external->type = 3, external);
int len = strlen(name) - 2;
external->__anon1.importString = __ecereNameSpace__ecere__com__eSystem_New(sizeof(char) * (len + 1));
strncpy(external->__anon1.importString, name + 1, len);
external->__anon1.importString[len] = '\0';
(__ecereNameSpace__ecere__com__eSystem_Delete(name), name = 0);
{
ImportModule(external->__anon1.importString, importType, importAccess, 1);
ImportModule(external->__anon1.importString, importType, importAccess, 0);
}
return external;
}
struct ClassDefinition * MkClass(struct Symbol * symbol, struct __ecereNameSpace__ecere__sys__OldList * baseSpecs, struct __ecereNameSpace__ecere__sys__OldList * definitions)
{
struct ClassDefinition * classDef;
SetupBaseSpecs(symbol, baseSpecs);
if(symbol->ctx)
{
struct ClassDefinition * classDef = symbol->ctx->classDef;
if(classDef)
{
struct External * external;
for(external = (*ast).first; external; external = external->next)
{
if(external->type == 2 && external->__anon1._class == classDef)
{
__ecereMethod___ecereNameSpace__ecere__sys__OldList_Remove((&*ast), external);
FreeExternal(external);
break;
}
}
}
FreeContext(symbol->ctx);
((symbol->ctx ? __extension__ ({
void * __ecerePtrToDelete = (symbol->ctx);
__ecereClass_Context->Destructor ? __ecereClass_Context->Destructor((void *)__ecerePtrToDelete) : 0, __ecereNameSpace__ecere__com__eSystem_Delete(__ecerePtrToDelete);
}) : 0), symbol->ctx = 0);
}
symbol->ctx = curContext;
classDef = __extension__ ({
struct ClassDefinition * __ecereInstance1 = __ecereNameSpace__ecere__com__eInstance_New(__ecereClass_ClassDefinition);
__ecereInstance1->symbol = symbol, __ecereInstance1->_class = MkSpecifierName(symbol->string), __ecereInstance1->baseSpecs = baseSpecs, __ecereInstance1->definitions = definitions, __ecereInstance1->nameLoc = symbol->nameLoc, __ecereInstance1;
});
curContext->classDef = classDef;
return classDef;
}
struct Expression * GetTemplateArgExpByName(const char * paramName, struct __ecereNameSpace__ecere__com__Class * thisClassFrom, struct __ecereNameSpace__ecere__com__Class * curClass, int tplType)
{
struct Expression * argExp = (((void *)0));
struct __ecereNameSpace__ecere__com__Class * instanceClass = ((curExternal && curExternal->type == 0 && curExternal->__anon1.function) ? curExternal->__anon1.function->_class : (((void *)0)));
struct __ecereNameSpace__ecere__com__Class * _class = curClass ? curClass : instanceClass;
if(thisClassFrom && instanceClass && thisClassFrom != instanceClass && strcmp(thisClassFrom->name, "class"))
Compiler_Error(__ecereNameSpace__ecere__GetTranslatedString("ec", "unresolved template type (%s)\n", (((void *)0))), paramName);
if(_class)
{
int id = 0;
struct __ecereNameSpace__ecere__com__ClassTemplateParameter * curParam;
struct __ecereNameSpace__ecere__com__Class * sClass;
if(_class->templateClass)
_class = _class->templateClass;
for(sClass = _class; sClass; sClass = sClass->base)
{
id = 0;
for(curParam = sClass->templateParams.first; curParam; curParam = curParam->next)
{
if(!strcmp(curParam->name, paramName))
{
for(sClass = sClass->base; sClass; sClass = sClass->base)
id += sClass->templateParams.count;
break;
}
id++;
}
if(curParam)
break;
}
if(curParam && curParam->type != tplType)
curParam = (((void *)0));
if(curParam)
{
char idString[32];
char className[1024];
sprintf(idString, "%d", id);
strcpy(className, "__ecereClass_");
FullClassNameCat(className, _class->fullName, 1);
DeclareClass(curExternal, FindClass(_class->fullName), className);
argExp = MkExpIndex((MkExpMember)(MkExpMember(MkExpIdentifier(MkIdentifier("this")), MkIdentifier("_class")), MkIdentifier("templateArgs")), MkListOne(MkExpConstant(idString)));
}
}
return argExp;
}
struct External * MkExternalPragma(const char * s)
{
struct External * external = (external = __ecereNameSpace__ecere__com__eInstance_New(__ecereClass_External), external->type = 6, external->__anon1.pragma = __ecereNameSpace__ecere__sys__CopyString(s), external);
return external;
}
struct External * MkExternalDeclaration(struct Declaration * declaration)
{
struct External * external = (external = __ecereNameSpace__ecere__com__eInstance_New(__ecereClass_External), external->type = 1, external->__anon1.declaration = declaration, external->symbol = declaration ? declaration->symbol : (((void *)0)), external);
if(declaration && declaration->type == 1 && declaration->__anon1.__anon1.specifiers)
{
struct Specifier * spec;
for(spec = (*declaration->__anon1.__anon1.specifiers).first; spec; spec = spec->next)
if(spec->type == 0 && spec->__anon1.specifier == TYPEDEF)
{
structDeclMode = declMode = 0;
break;
}
else if(spec->type == 0 && spec->__anon1.specifier == STATIC)
{
structDeclMode = declMode = 3;
break;
}
}
if(declaration && declaration->symbol && !declaration->symbol->__anon2.__anon3.methodExternal)
declaration->symbol->__anon2.__anon3.methodExternal = external;
return external;
}
struct External * MkExternalNameSpace(struct Identifier * identifier)
{
struct External * external = (external = __ecereNameSpace__ecere__com__eInstance_New(__ecereClass_External), external->type = 4, external->__anon1.id = identifier, external);
currentNameSpace = identifier ? identifier->string : (((void *)0));
currentNameSpaceLen = currentNameSpace ? strlen(currentNameSpace) : 0;
return external;
}
struct External * MkExternalClass(struct ClassDefinition * _class)
{
return __extension__ ({
struct External * __ecereInstance1 = __ecereNameSpace__ecere__com__eInstance_New(__ecereClass_External);
__ecereInstance1->type = 2, __ecereInstance1->__anon1._class = _class, __ecereInstance1->symbol = _class->symbol, __ecereInstance1;
});
}
struct External * MkExternalDBTable(struct DBTableDef * table)
{
return __extension__ ({
struct External * __ecereInstance1 = __ecereNameSpace__ecere__com__eInstance_New(__ecereClass_External);
__ecereInstance1->type = 5, __ecereInstance1->__anon1.table = table, __ecereInstance1;
});
}
struct PropertyDef;
typedef union YYSTYPE
{
int specifierType;
int i;
int declMode;
struct Identifier * id;
struct Expression * exp;
struct Specifier * specifier;
struct __ecereNameSpace__ecere__sys__OldList * list;
struct Enumerator * enumerator;
struct Declarator * declarator;
struct Pointer * pointer;
struct Initializer * initializer;
struct InitDeclarator * initDeclarator;
struct TypeName * typeName;
struct Declaration * declaration;
struct Statement * stmt;
struct FunctionDefinition * function;
struct External * external;
struct Context * context;
struct AsmField * asmField;
struct Attrib * attrib;
struct ExtDecl * extDecl;
struct Attribute * attribute;
struct Instantiation * instance;
struct MembersInit * membersInit;
struct MemberInit * memberInit;
struct ClassFunction * classFunction;
struct ClassDefinition * _class;
struct ClassDef * classDef;
struct PropertyDef * prop;
char * string;
struct Symbol * symbol;
struct PropertyWatch * propertyWatch;
struct TemplateParameter * templateParameter;
struct TemplateArgument * templateArgument;
struct TemplateDatatype * templateDatatype;
struct DBTableEntry * dbtableEntry;
struct DBIndexItem * dbindexItem;
struct DBTableDef * dbtableDef;
} ecere_gcc_struct YYSTYPE;
extern YYSTYPE yylval;
struct ClassDef
{
struct ClassDef * prev;
struct ClassDef * next;
struct Location loc;
int type;
union
{
struct Declaration * decl;
struct ClassFunction * function;
struct __ecereNameSpace__ecere__sys__OldList * defProperties;
struct PropertyDef * propertyDef;
struct PropertyWatch * propertyWatch;
char * designer;
struct Identifier * defaultProperty;
struct
{
struct Identifier * id;
struct Initializer * initializer;
} ecere_gcc_struct __anon1;
} ecere_gcc_struct __anon1;
int memberAccess;
void * object;
} ecere_gcc_struct;
struct PropertyDef
{
struct PropertyDef * prev;
struct PropertyDef * next;
struct Location loc;
struct __ecereNameSpace__ecere__sys__OldList * specifiers;
struct Declarator * declarator;
struct Identifier * id;
struct Statement * getStmt;
struct Statement * setStmt;
struct Statement * issetStmt;
struct Symbol * symbol;
struct Expression * category;
struct
{
unsigned int conversion : 1;
unsigned int isWatchable : 1;
unsigned int isDBProp : 1;
} ecere_gcc_struct __anon1;
} ecere_gcc_struct;
struct ClassDef * MkClassDefFunction(struct ClassFunction * function)
{
struct ClassDef * def = __ecereNameSpace__ecere__com__eInstance_New(__ecereClass_ClassDef);
if(function && function->declarator)
{
struct Declarator * funcDecl = GetFuncDecl(function->declarator);
if(funcDecl && funcDecl->declarator && funcDecl->declarator->type == 2)
{
def->type = 2;
def->__anon1.decl = MkStructDeclaration(function->specifiers, MkListOne(MkStructDeclarator(function->declarator, (((void *)0)))), (((void *)0)));
function->declarator = (((void *)0));
function->specifiers = (((void *)0));
FreeClassFunction(function);
return def;
}
}
def->type = 0;
def->__anon1.function = function;
return def;
}
static struct Type * ProcessTypeSpecs(struct __ecereNameSpace__ecere__sys__OldList * specs, unsigned int assumeEllipsis, unsigned int keepTypeName)
{
struct Type * specType = (specType = __ecereNameSpace__ecere__com__eInstance_New(__ecereClass_Type), specType->refCount = 1, specType->kind = 3, specType->isSigned = 1, specType);
if(specs != (((void *)0)))
{
unsigned int isTypedef = 0;
struct Specifier * spec;
unsigned int isLong = 0;
for(spec = specs->first; spec; spec = spec->next)
{
if(spec->type == 5)
{
struct ExtDecl * extDecl = spec->__anon1.__anon1.extDecl;
if(extDecl->type == 0)
{
if(!strcmp(spec->__anon1.__anon1.extDecl->__anon1.s, "__declspec(dllexport)") || !strcmp(spec->__anon1.__anon1.extDecl->__anon1.s, "dllexport"))
specType->dllExport = 1;
else if(!strcmp(spec->__anon1.__anon1.extDecl->__anon1.s, "__declspec(stdcall)") || !strcmp(spec->__anon1.__anon1.extDecl->__anon1.s, "stdcall"))
specType->attrStdcall = 1;
}
else if(extDecl->type == 1)
{
struct __ecereNameSpace__ecere__sys__OldList * attribs = extDecl->__anon1.attr->attribs;
if(attribs)
{
struct Attribute * attr;
for(attr = (*attribs).first; attr; attr = attr->next)
{
char * s = attr->attr;
if(s)
{
if(!strcmp(s, "dllexport"))
specType->dllExport = 1;
else if(!strcmp(s, "stdcall"))
specType->attrStdcall = 1;
else if(!strcmp(s, "__vector_size__"))
specType->isVector = 1;
}
}
}
specType->keepCast = 1;
}
}
if(spec->__anon1.specifier != CONST && (specType->kind == 9 || specType->kind == 10))
{
FreeType(specType);
specType = __extension__ ({
struct Type * __ecereInstance1 = __ecereNameSpace__ecere__com__eInstance_New(__ecereClass_Type);
__ecereInstance1->kind = 3, __ecereInstance1->isSigned = 1, __ecereInstance1->refCount = 1, __ecereInstance1;
});
}
if(isTypedef && keepTypeName)
{
specType->kind = 18;
return specType;
}
else if(spec->type == 0)
{
if(spec->__anon1.specifier == TYPEDEF)
isTypedef = 1;
else if(spec->__anon1.specifier == VOID)
specType->kind = 0;
else if(spec->__anon1.specifier == CHAR)
specType->kind = 1;
else if(spec->__anon1.specifier == INT)
{
if(specType->kind != 2 && specType->kind != 5 && !isLong)
specType->kind = 3;
}
else if(spec->__anon1.specifier == _BOOL || spec->__anon1.specifier == BOOL)
specType->kind = 24;
else if(spec->__anon1.specifier == UINT)
{
if(specType->kind != 2 && specType->kind != 5)
specType->kind = 3;
specType->isSigned = 0;
}
else if(spec->__anon1.specifier == INT64)
specType->kind = 4;
else if(spec->__anon1.specifier == INT128)
specType->kind = 25;
else if(spec->__anon1.specifier == FLOAT128)
specType->kind = 26;
else if(spec->__anon1.specifier == VALIST)
specType->kind = 17;
else if(spec->__anon1.specifier == SHORT)
specType->kind = 2;
else if(spec->__anon1.specifier == LONG)
{
if(isLong || (targetBits == 64 && targetPlatform != 1))
specType->kind = 4;
else
specType->kind = 3;
specType->isLong = 1;
isLong = 1;
}
else if(spec->__anon1.specifier == FLOAT)
specType->kind = 6;
else if(spec->__anon1.specifier == DOUBLE)
specType->kind = 7;
else if(spec->__anon1.specifier == SIGNED)
specType->isSigned = 1;
else if(spec->__anon1.specifier == UNSIGNED)
specType->isSigned = 0;
else if(spec->__anon1.specifier == CONST)
specType->constant = 1;
else if(spec->__anon1.specifier == TYPED_OBJECT || spec->__anon1.specifier == ANY_OBJECT || spec->__anon1.specifier == CLASS)
{
switch(spec->__anon1.specifier)
{
case TYPED_OBJECT:
specType->classObjectType = 2;
break;
case ANY_OBJECT:
specType->classObjectType = 3;
break;
case CLASS:
specType->classObjectType = 1;
break;
}
specType->kind = 8;
specType->__anon1._class = FindClass("class");
}
else if(spec->__anon1.specifier == THISCLASS)
specType->kind = 21;
}
else if(spec->type == 1)
{
if(spec->__anon1.__anon1.name && (!strcmp(spec->__anon1.__anon1.name, "intptr") || !strcmp(spec->__anon1.__anon1.name, "uintptr")))
{
specType->kind = 22;
if(!strcmp(spec->__anon1.__anon1.name, "uintptr"))
specType->isSigned = 0;
}
else if(spec->__anon1.__anon1.name && (!strcmp(spec->__anon1.__anon1.name, "uintsize") || !strcmp(spec->__anon1.__anon1.name, "intsize")))
{
specType->kind = 23;
if(!strcmp(spec->__anon1.__anon1.name, "uintsize"))
specType->isSigned = 0;
}
else
{
struct Symbol * symbol = spec->__anon1.__anon1.name ? FindType(curContext, spec->__anon1.__anon1.name) : (((void *)0));
if(symbol && symbol->type)
{
unsigned int isConstant = specType->constant;
struct Type * dummy = __ecereNameSpace__ecere__com__eInstance_New(__ecereClass_Type);
*dummy = *specType;
FreeType(dummy);
CopyTypeInto(specType, symbol->type);
specType->constant = isConstant;
(__ecereNameSpace__ecere__com__eSystem_Delete(specType->typeName), specType->typeName = 0);
specType->typeName = __ecereNameSpace__ecere__sys__CopyString(symbol->type->name);
}
else if(!isTypedef)
{
specType->__anon1._class = spec->__anon1.__anon1.name ? FindClass(spec->__anon1.__anon1.name) : (((void *)0));
specType->kind = 8;
if(!specType->__anon1._class)
specType->kind = 3;
}
}
}
else if(spec->type == 2)
{
specType->kind = 15;
specType->__anon1.__anon1.enumName = spec->__anon1.__anon2.id ? __ecereNameSpace__ecere__sys__CopyString(spec->__anon1.__anon2.id->string) : (((void *)0));
__ecereMethod___ecereNameSpace__ecere__sys__OldList_Clear(&specType->__anon1.__anon1.members);
if(spec->__anon1.__anon2.list)
{
struct Enumerator * e;
for(e = (*spec->__anon1.__anon2.list).first; e; e = e->next)
{
struct __ecereNameSpace__ecere__sys__NamedLink64 * i = (i = __ecereNameSpace__ecere__com__eSystem_New0(sizeof(struct __ecereNameSpace__ecere__sys__NamedLink64)), i->name = __ecereNameSpace__ecere__sys__CopyString(e->id->string), i);
if(e->exp && e->exp->type == 2 && e->exp->__anon1.__anon1.constant)
i->data = strtoll(e->exp->__anon1.__anon1.constant, (((void *)0)), 0);
__ecereMethod___ecereNameSpace__ecere__sys__OldList_Add(&specType->__anon1.__anon1.members, i);
}
}
}
else if(spec->type == 8)
{
specType->kind = 20;
specType->__anon1.templateParameter = spec->__anon1.templateParameter;
}
else if(spec->type == 3 || spec->type == 4)
{
struct Symbol * _class = spec->__anon1.__anon2.id ? FindClass(spec->__anon1.__anon2.id->string) : (((void *)0));
if(_class)
{
specType->declaredWithStruct = 1;
if(!_class->__anon1.registered || _class->__anon1.registered->type != 1)
specType->directClassAccess = 1;
specType->__anon1._class = _class;
specType->kind = 8;
break;
}
__ecereMethod___ecereNameSpace__ecere__sys__OldList_Clear(&specType->__anon1.__anon1.members);
if(spec->type == 3)
specType->kind = 9;
else if(spec->type == 4)
specType->kind = 10;
if(spec->__anon1.__anon2.id)
{
if(!spec->__anon1.__anon2.definitions && !isTypedef)
{
struct Symbol * symbol = spec->__anon1.__anon2.id->string ? FindSymbol(spec->__anon1.__anon2.id->string, curContext, globalContext, 1, 0) : (((void *)0));
if(symbol && symbol->type)
{
*specType = *symbol->type;
specType->name = __ecereNameSpace__ecere__sys__CopyString(symbol->type->name);
specType->typeName = __ecereNameSpace__ecere__sys__CopyString(spec->__anon1.__anon1.name);
specType->__anon1.__anon1.enumName = __ecereNameSpace__ecere__sys__CopyString(symbol->type->__anon1.__anon1.enumName);
specType->refCount = 1;
if(symbol->type->kind == 15)
{
struct __ecereNameSpace__ecere__sys__NamedLink64 * member;
__ecereMethod___ecereNameSpace__ecere__sys__OldList_Clear(&specType->__anon1.__anon1.members);
for(member = symbol->type->__anon1.__anon1.members.first; member; member = member->next)
{
struct __ecereNameSpace__ecere__sys__NamedLink64 * item = (item = __ecereNameSpace__ecere__com__eSystem_New0(sizeof(struct __ecereNameSpace__ecere__sys__NamedLink64)), item->name = __ecereNameSpace__ecere__sys__CopyString(member->name), item->data = member->data, item);
__ecereMethod___ecereNameSpace__ecere__sys__OldList_Add(&specType->__anon1.__anon1.members, item);
}
}
else if(symbol->type->kind == 9 || symbol->type->kind == 10)
{
struct Type * member;
for(member = specType->__anon1.__anon1.members.first; member; member = member->next)
member->refCount++;
}
else if(symbol->type->kind == 11)
{
struct Type * param;
specType->__anon1.__anon2.returnType->refCount++;
for(param = specType->__anon1.__anon2.params.first; param; param = param->next)
param->refCount++;
}
else if(symbol->type->kind == 13 || symbol->type->kind == 12)
{
specType->__anon1.type->refCount++;
if(symbol->type->kind == 12)
{
if(specType->__anon1.__anon4.arraySizeExp)
specType->__anon1.__anon4.arraySizeExp = CopyExpression(specType->__anon1.__anon4.arraySizeExp);
}
}
}
else
specType->__anon1.__anon1.enumName = __ecereNameSpace__ecere__sys__CopyString(spec->__anon1.__anon2.id->string);
}
else
specType->__anon1.__anon1.enumName = __ecereNameSpace__ecere__sys__CopyString(spec->__anon1.__anon2.id->string);
}
if(spec->__anon1.__anon2.definitions)
{
struct ClassDef * def;
for(def = (*spec->__anon1.__anon2.definitions).first; def; def = def->next)
{
if(def->type == 2 && def->__anon1.decl->type == 0)
{
struct Declaration * decl = def->__anon1.decl;
if(decl->__anon1.__anon1.declarators)
{
struct Declarator * d;
for(d = (*decl->__anon1.__anon1.declarators).first; d; d = d->next)
{
struct Type * memberType = ProcessType(decl->__anon1.__anon1.specifiers, d);
__ecereMethod___ecereNameSpace__ecere__sys__OldList_Add(&specType->__anon1.__anon1.members, memberType);
}
}
else if(decl->__anon1.__anon1.specifiers)
{
struct Type * memberType = ProcessType(decl->__anon1.__anon1.specifiers, (((void *)0)));
__ecereMethod___ecereNameSpace__ecere__sys__OldList_Add(&specType->__anon1.__anon1.members, memberType);
}
}
}
}
break;
}
else if(spec->type == 7)
{
specType->kind = 19;
specType->__anon1._class = spec->__anon1._class->__anon1.__anon1.symbol;
}
}
}
else if(assumeEllipsis)
specType->kind = 14;
return specType;
}
struct ClassDef * MkClassDefAccessOverride(int access, struct Identifier * id)
{
return __extension__ ({
struct ClassDef * __ecereInstance1 = __ecereNameSpace__ecere__com__eInstance_New(__ecereClass_ClassDef);
__ecereInstance1->type = 13, __ecereInstance1->__anon1.__anon1.id = id, __ecereInstance1->memberAccess = access, __ecereInstance1;
});
}
struct ClassDef * MkClassDefMemberAccess()
{
return __extension__ ({
struct ClassDef * __ecereInstance1 = __ecereNameSpace__ecere__com__eInstance_New(__ecereClass_ClassDef);
__ecereInstance1->type = 12, __ecereInstance1;
});
}
struct ClassDef * MkClassDefDeclaration(struct Declaration * decl)
{
return __extension__ ({
struct ClassDef * __ecereInstance1 = __ecereNameSpace__ecere__com__eInstance_New(__ecereClass_ClassDef);
__ecereInstance1->type = 2, __ecereInstance1->__anon1.decl = decl, __ecereInstance1;
});
}
struct ClassDef * MkClassDefClassData(struct Declaration * decl)
{
return __extension__ ({
struct ClassDef * __ecereInstance1 = __ecereNameSpace__ecere__com__eInstance_New(__ecereClass_ClassDef);
__ecereInstance1->type = 9, __ecereInstance1->__anon1.decl = decl, __ecereInstance1;
});
}
struct ClassDef * MkClassDefDesigner(const char * designer)
{
return __extension__ ({
struct ClassDef * __ecereInstance1 = __ecereNameSpace__ecere__com__eInstance_New(__ecereClass_ClassDef);
__ecereInstance1->type = 5, __ecereInstance1->__anon1.designer = __ecereNameSpace__ecere__sys__CopyString(designer), __ecereInstance1;
});
}
struct ClassDef * MkClassDefNoExpansion()
{
return __extension__ ({
struct ClassDef * __ecereInstance1 = __ecereNameSpace__ecere__com__eInstance_New(__ecereClass_ClassDef);
__ecereInstance1->type = 6, __ecereInstance1;
});
}
struct ClassDef * MkClassDefFixed()
{
return __extension__ ({
struct ClassDef * __ecereInstance1 = __ecereNameSpace__ecere__com__eInstance_New(__ecereClass_ClassDef);
__ecereInstance1->type = 7, __ecereInstance1;
});
}
struct ClassDef * MkClassDefDesignerDefaultProperty(struct Identifier * id)
{
return __extension__ ({
struct ClassDef * __ecereInstance1 = __ecereNameSpace__ecere__com__eInstance_New(__ecereClass_ClassDef);
__ecereInstance1->type = 8, __ecereInstance1->__anon1.defaultProperty = id, __ecereInstance1;
});
}
struct ClassDef * MkClassDefDefaultProperty(struct __ecereNameSpace__ecere__sys__OldList * defProperties)
{
return __extension__ ({
struct ClassDef * __ecereInstance1 = __ecereNameSpace__ecere__com__eInstance_New(__ecereClass_ClassDef);
__ecereInstance1->type = 1, __ecereInstance1->__anon1.defProperties = defProperties, __ecereInstance1;
});
}
struct ClassDef * MkClassDefProperty(struct PropertyDef * propertyDef)
{
return __extension__ ({
struct ClassDef * __ecereInstance1 = __ecereNameSpace__ecere__com__eInstance_New(__ecereClass_ClassDef);
__ecereInstance1->type = 3, __ecereInstance1->__anon1.propertyDef = propertyDef, __ecereInstance1->loc = yylloc, __ecereInstance1;
});
}
struct ClassDef * MkClassDefClassProperty(struct PropertyDef * propertyDef)
{
return __extension__ ({
struct ClassDef * __ecereInstance1 = __ecereNameSpace__ecere__com__eInstance_New(__ecereClass_ClassDef);
__ecereInstance1->type = 10, __ecereInstance1->__anon1.propertyDef = propertyDef, __ecereInstance1->loc = yylloc, __ecereInstance1;
});
}
struct ClassDef * MkClassDefClassPropertyValue(struct Identifier * id, struct Initializer * initializer)
{
return __extension__ ({
struct ClassDef * __ecereInstance1 = __ecereNameSpace__ecere__com__eInstance_New(__ecereClass_ClassDef);
__ecereInstance1->type = 11, __ecereInstance1->__anon1.__anon1.id = id, __ecereInstance1->__anon1.__anon1.initializer = initializer, __ecereInstance1->loc = yylloc, __ecereInstance1;
});
}
struct ClassDef * MkClassDefPropertyWatch(struct PropertyWatch * watcher)
{
return __extension__ ({
struct ClassDef * __ecereInstance1 = __ecereNameSpace__ecere__com__eInstance_New(__ecereClass_ClassDef);
__ecereInstance1->type = 4, __ecereInstance1->__anon1.propertyWatch = watcher, __ecereInstance1;
});
}
struct PropertyDef * MkProperty(struct __ecereNameSpace__ecere__sys__OldList * specs, struct Declarator * decl, struct Identifier * id, struct Statement * setStmt, struct Statement * getStmt)
{
struct PropertyDef * prop = (prop = __ecereNameSpace__ecere__com__eInstance_New(__ecereClass_PropertyDef), prop->specifiers = specs, prop->declarator = decl, prop->setStmt = setStmt, prop->getStmt = getStmt, prop);
struct Symbol * symbol;
struct Type * type = ProcessType(specs, decl);
if(!id)
{
char typeString[1024];
typeString[0] = '\0';
PrintTypeNoConst(type, typeString, 0, 1);
id = MkIdentifier(typeString);
prop->__anon1.conversion = 1;
}
prop->id = id;
symbol = __extension__ ({
struct Symbol * __ecereInstance1 = __ecereNameSpace__ecere__com__eInstance_New(__ecereClass_Symbol);
__ecereInstance1->string = __ecereNameSpace__ecere__sys__CopyString(id->string), __ecereInstance1->type = type, __ecereInstance1;
});
__ecereMethod___ecereNameSpace__ecere__sys__OldList_Add((&*excludedSymbols), symbol);
prop->symbol = symbol;
return prop;
}
static struct Type * ProcessTypeDecls(struct __ecereNameSpace__ecere__sys__OldList * specs, struct Declarator * decl, struct Type * parentType)
{
struct Type * type = parentType;
struct Declarator * subDecl = decl ? decl->declarator : (((void *)0));
unsigned int isVector = 0;
if(decl && (decl->type == 6 || decl->type == 7))
{
struct ExtDecl * extDecl = decl->__anon1.extended.extended;
if(extDecl && extDecl->type == 1)
{
struct __ecereNameSpace__ecere__sys__OldList * attribs = extDecl->__anon1.attr->attribs;
if(attribs)
{
struct Attribute * attr;
for(attr = (*attribs).first; attr; attr = attr->next)
{
char * s = attr->attr;
if(s)
if(!strcmp(s, "__vector_size__"))
isVector = 1;
}
}
}
}
if(!parentType)
type = ProcessTypeSpecs(specs, decl == (((void *)0)), (decl && decl->type == 7 && !isVector) ? 1 : 0);
if(decl)
{
switch(decl->type)
{
case 2:
break;
case 6:
case 7:
{
struct ExtDecl * extDecl = decl->__anon1.extended.extended;
if(extDecl)
{
switch(extDecl->type)
{
case 0:
{
char * s = extDecl->__anon1.s;
if(s)
{
if(!strcmp(s, "__declspec(dllexport)") || !strcmp(s, "dllexport"))
type->dllExport = 1;
else if(!strcmp(s, "__declspec(stdcall)") || !strcmp(s, "stdcall"))
type->attrStdcall = 1;
}
break;
}
case 1:
{
struct __ecereNameSpace__ecere__sys__OldList * attribs = extDecl->__anon1.attr->attribs;
if(attribs)
{
struct Attribute * attr;
for(attr = (*attribs).first; attr; attr = attr->next)
{
char * s = attr->attr;
if(s)
{
if(!strcmp(s, "dllexport"))
type->dllExport = 1;
else if(!strcmp(s, "stdcall"))
type->attrStdcall = 1;
else if(!strcmp(s, "__vector_size__"))
{
type->isVector = 1;
}
}
}
}
type->keepCast = 1;
break;
}
}
}
break;
}
case 0:
{
struct Expression * exp = decl->__anon1.structDecl.exp;
if(exp)
{
ProcessExpressionType(exp);
ComputeExpression(exp);
if(exp->type == 2)
type->bitFieldCount = (unsigned int)strtoul(exp->__anon1.__anon1.constant, (((void *)0)), 0);
}
break;
}
case 4:
{
type = __extension__ ({
struct Type * __ecereInstance1 = __ecereNameSpace__ecere__com__eInstance_New(__ecereClass_Type);
__ecereInstance1->refCount = 1, __ecereInstance1->kind = 11, __ecereInstance1->__anon1.__anon2.returnType = type, __ecereInstance1->dllExport = type->dllExport, __ecereInstance1->attrStdcall = type->attrStdcall, __ecereInstance1;
});
if(decl->__anon1.function.parameters)
{
struct TypeName * param;
for(param = (*decl->__anon1.function.parameters).first; param; param = param->next)
__ecereMethod___ecereNameSpace__ecere__sys__OldList_Add(&type->__anon1.__anon2.params, ProcessType(param->qualifiers, param->declarator));
}
break;
}
case 3:
{
type = __extension__ ({
struct Type * __ecereInstance1 = __ecereNameSpace__ecere__com__eInstance_New(__ecereClass_Type);
__ecereInstance1->refCount = 1, __ecereInstance1->kind = 12, __ecereInstance1->__anon1.__anon4.arraySizeExp = CopyExpression(decl->__anon1.array.exp), __ecereInstance1->__anon1.__anon4.freeExp = 1, __ecereInstance1->__anon1.type = type, __ecereInstance1->dllExport = type->dllExport, __ecereInstance1->attrStdcall = type->attrStdcall, __ecereInstance1;
});
if(decl->__anon1.array.enumClass)
type->__anon1.__anon4.enumClass = decl->__anon1.array.enumClass->__anon1.__anon1.symbol;
break;
}
case 5:
{
struct Pointer * pointer = decl->__anon1.pointer.pointer;
while(pointer)
{
struct __ecereNameSpace__ecere__sys__OldList * qualifiers = pointer->qualifiers;
if(type->classObjectType)
type->byReference = 1;
else
type = __extension__ ({
struct Type * __ecereInstance1 = __ecereNameSpace__ecere__com__eInstance_New(__ecereClass_Type);
__ecereInstance1->refCount = 1, __ecereInstance1->kind = 13, __ecereInstance1->__anon1.type = type, __ecereInstance1->dllExport = type->dllExport, __ecereInstance1->attrStdcall = type->attrStdcall, __ecereInstance1;
});
if(qualifiers)
{
struct Specifier * spec;
for(spec = (*qualifiers).first; spec; spec = spec->next)
{
if(spec->type == 0 && spec->__anon1.specifier == CONST)
type->constant = 1;
}
}
pointer = pointer->pointer;
}
break;
}
case 1:
{
struct Identifier * id = decl->__anon1.identifier;
struct Specifier * _class = id->_class;
(__ecereNameSpace__ecere__com__eSystem_Delete(type->name), type->name = 0);
type->name = __ecereNameSpace__ecere__sys__CopyString(id->string);
if(_class)
{
if(_class->type == 8)
{
type->__anon1.__anon2.thisClassTemplate = _class->__anon1.templateParameter;
type->extraParam = 1;
}
else
{
char * name = _class->__anon1.__anon1.name;
if(!name)
type->__anon1.__anon2.staticMethod = 1;
else
{
if(!id->classSym)
id->classSym = _class->__anon1.__anon1.symbol;
if(name[strlen(name) - 1] == '&')
{
type->__anon1.__anon2.thisClass = FindClass("class");
type->byReference = 1;
}
else
type->__anon1.__anon2.thisClass = _class->__anon1.__anon1.symbol;
if(type->__anon1.__anon2.thisClass && strcmp(type->__anon1.__anon2.thisClass->string, "class"))
type->extraParam = 1;
else if(!strcmp(name, "any_object"))
{
type->extraParam = 1;
type->__anon1.__anon2.thisClass = FindClass("class");
}
else if(!strcmp(name, "class"))
{
type->__anon1.__anon2.thisClass = FindClass("class");
type->classObjectType = 1;
}
else if(!strcmp(name, "typed_object") || !strcmp(name, "typed_object&"))
{
type->__anon1.__anon2.thisClass = FindClass("class");
type->classObjectType = 2;
}
}
}
}
break;
}
default:
__ecereNameSpace__ecere__com__PrintLn(__ecereClass_char__PTR_, "Unhandled Declarator Type: ", __ecereClass_DeclaratorType, (void *)&decl->type, (void *)0);
}
}
if(subDecl)
{
struct Type * curType = type;
type = ProcessTypeDecls((((void *)0)), subDecl, type);
if(curType && type->kind != 11)
{
curType->__anon1.__anon2.thisClassTemplate = type->__anon1.__anon2.thisClassTemplate;
curType->extraParam = type->extraParam;
curType->__anon1.__anon2.staticMethod = type->__anon1.__anon2.staticMethod;
curType->__anon1.__anon2.thisClass = type->__anon1.__anon2.thisClass;
curType->byReference = type->byReference;
curType->classObjectType = type->classObjectType;
}
}
return type;
}
void __ecereRegisterModule_ast(struct __ecereNameSpace__ecere__com__Instance * module)
{
struct __ecereNameSpace__ecere__com__Class __attribute__((unused)) * class;
__ecereNameSpace__ecere__com__eSystem_RegisterFunction("SetDefaultNameSpace", "void SetDefaultNameSpace(const char * s)", SetDefaultNameSpace, module, 1);
__ecereNameSpace__ecere__com__eSystem_RegisterFunction("SetStrictNameSpaces", "void SetStrictNameSpaces(bool b)", SetStrictNameSpaces, module, 1);
__ecereNameSpace__ecere__com__eSystem_RegisterFunction("SetDeclMode", "void SetDeclMode(ecere::com::AccessMode accessMode)", SetDeclMode, module, 1);
__ecereNameSpace__ecere__com__eSystem_RegisterFunction("SetDefaultDeclMode", "void SetDefaultDeclMode(ecere::com::AccessMode accessMode)", SetDefaultDeclMode, module, 1);
__ecereNameSpace__ecere__com__eSystem_RegisterFunction("SetCurrentNameSpace", "void SetCurrentNameSpace(const char * s)", SetCurrentNameSpace, module, 1);
__ecereNameSpace__ecere__com__eSystem_RegisterFunction("MkList", "ecere::sys::OldList * MkList(void)", MkList, module, 1);
__ecereNameSpace__ecere__com__eSystem_RegisterFunction("MkListOne", "ecere::sys::OldList * MkListOne(void * item)", MkListOne, module, 1);
__ecereNameSpace__ecere__com__eSystem_RegisterFunction("ListAdd", "void ListAdd(ecere::sys::OldList list, void * item)", ListAdd, module, 2);
__ecereNameSpace__ecere__com__eSystem_RegisterFunction("ListAddFront", "void ListAddFront(ecere::sys::OldList list, void * item)", ListAddFront, module, 2);
__ecereNameSpace__ecere__com__eSystem_RegisterFunction("MkIdentifier", "Identifier MkIdentifier(const char * string)", MkIdentifier, module, 1);
__ecereNameSpace__ecere__com__eSystem_RegisterFunction("MkTypeTemplateParameter", "TemplateParameter MkTypeTemplateParameter(Identifier identifier, TemplateDatatype baseTplDatatype, TemplateArgument defaultArgument)", MkTypeTemplateParameter, module, 1);
__ecereNameSpace__ecere__com__eSystem_RegisterFunction("MkIdentifierTemplateParameter", "TemplateParameter MkIdentifierTemplateParameter(Identifier identifier, ecere::com::TemplateMemberType memberType, TemplateArgument defaultArgument)", MkIdentifierTemplateParameter, module, 1);
__ecereNameSpace__ecere__com__eSystem_RegisterFunction("MkExpressionTemplateParameter", "TemplateParameter MkExpressionTemplateParameter(Identifier identifier, TemplateDatatype dataType, TemplateArgument defaultArgument)", MkExpressionTemplateParameter, module, 1);
__ecereNameSpace__ecere__com__eSystem_RegisterFunction("MkTemplateDatatype", "TemplateDatatype MkTemplateDatatype(ecere::sys::OldList * specifiers, Declarator decl)", MkTemplateDatatype, module, 1);
__ecereNameSpace__ecere__com__eSystem_RegisterFunction("MkTemplateTypeArgument", "TemplateArgument MkTemplateTypeArgument(TemplateDatatype tplDatatype)", MkTemplateTypeArgument, module, 1);
__ecereNameSpace__ecere__com__eSystem_RegisterFunction("MkTemplateExpressionArgument", "TemplateArgument MkTemplateExpressionArgument(Expression expr)", MkTemplateExpressionArgument, module, 1);
__ecereNameSpace__ecere__com__eSystem_RegisterFunction("MkTemplateIdentifierArgument", "TemplateArgument MkTemplateIdentifierArgument(Identifier ident)", MkTemplateIdentifierArgument, module, 1);
__ecereNameSpace__ecere__com__eSystem_RegisterFunction("MkExpExtensionCompound", "Expression MkExpExtensionCompound(Statement compound)", MkExpExtensionCompound, module, 2);
__ecereNameSpace__ecere__com__eSystem_RegisterFunction("MkExpExtensionExpression", "Expression MkExpExtensionExpression(ecere::sys::OldList * expressions)", MkExpExtensionExpression, module, 2);
__ecereNameSpace__ecere__com__eSystem_RegisterFunction("MkExpExtensionInitializer", "Expression MkExpExtensionInitializer(TypeName typeName, Initializer initializer)", MkExpExtensionInitializer, module, 2);
__ecereNameSpace__ecere__com__eSystem_RegisterFunction("MkExpIdentifier", "Expression MkExpIdentifier(Identifier id)", MkExpIdentifier, module, 1);
__ecereNameSpace__ecere__com__eSystem_RegisterFunction("MkExpDummy", "Expression MkExpDummy(void)", MkExpDummy, module, 1);
__ecereNameSpace__ecere__com__eSystem_RegisterFunction("MkExpConstant", "Expression MkExpConstant(const char * string)", MkExpConstant, module, 1);
__ecereNameSpace__ecere__com__eSystem_RegisterFunction("MkExpString", "Expression MkExpString(const char * string)", MkExpString, module, 2);
__ecereNameSpace__ecere__com__eSystem_RegisterFunction("MkExpWideString", "Expression MkExpWideString(const char * string)", MkExpWideString, module, 2);
class = __ecereNameSpace__ecere__com__eSystem_RegisterClass(1, "ContextStringPair", 0, sizeof(struct ContextStringPair), 0, (void *)0, (void *)0, module, 1, 1);
if(((struct __ecereNameSpace__ecere__com__Module *)(((char *)module + sizeof(struct __ecereNameSpace__ecere__com__Instance))))->application == ((struct __ecereNameSpace__ecere__com__Module *)(((char *)__thisModule + sizeof(struct __ecereNameSpace__ecere__com__Instance))))->application && class)
__ecereClass_ContextStringPair = class;
__ecereNameSpace__ecere__com__eClass_AddMethod(class, "OnCompare", 0, __ecereMethod_ContextStringPair_OnCompare, 1);
__ecereNameSpace__ecere__com__eClass_AddMethod(class, "OnFree", 0, __ecereMethod_ContextStringPair_OnFree, 1);
__ecereNameSpace__ecere__com__eClass_AddDataMember(class, "string", "String", sizeof(void *), 0xF000F000, 1);
__ecereNameSpace__ecere__com__eClass_AddDataMember(class, "context", "String", sizeof(void *), 0xF000F000, 1);
__ecereNameSpace__ecere__com__eSystem_RegisterFunction("MkExpIntlString", "Expression MkExpIntlString(const char * string, const char * context)", MkExpIntlString, module, 2);
__ecereNameSpace__ecere__com__eSystem_RegisterFunction("MkExpOp", "Expression MkExpOp(Expression exp1, int op, Expression exp2)", MkExpOp, module, 2);
__ecereNameSpace__ecere__com__eSystem_RegisterFunction("MkExpBrackets", "Expression MkExpBrackets(ecere::sys::OldList expressions)", MkExpBrackets, module, 2);
__ecereNameSpace__ecere__com__eSystem_RegisterFunction("MkExpIndex", "Expression MkExpIndex(Expression expression, ecere::sys::OldList index)", MkExpIndex, module, 2);
__ecereNameSpace__ecere__com__eSystem_RegisterFunction("MkExpCall", "Expression MkExpCall(Expression expression, ecere::sys::OldList arguments)", MkExpCall, module, 2);
__ecereNameSpace__ecere__com__eSystem_RegisterFunction("MkExpMember", "Expression MkExpMember(Expression expression, Identifier member)", MkExpMember, module, 2);
__ecereNameSpace__ecere__com__eSystem_RegisterFunction("MkExpPointer", "Expression MkExpPointer(Expression expression, Identifier member)", MkExpPointer, module, 2);
__ecereNameSpace__ecere__com__eSystem_RegisterFunction("MkExpTypeSize", "Expression MkExpTypeSize(TypeName typeName)", MkExpTypeSize, module, 2);
__ecereNameSpace__ecere__com__eSystem_RegisterFunction("MkExpTypeAlign", "Expression MkExpTypeAlign(TypeName typeName)", MkExpTypeAlign, module, 2);
__ecereNameSpace__ecere__com__eSystem_RegisterFunction("MkExpOffsetOf", "Expression MkExpOffsetOf(TypeName typeName, Identifier id)", MkExpOffsetOf, module, 2);
__ecereNameSpace__ecere__com__eSystem_RegisterFunction("MkExpClassSize", "Expression MkExpClassSize(Specifier _class)", MkExpClassSize, module, 2);
__ecereNameSpace__ecere__com__eSystem_RegisterFunction("MkExpCast", "Expression MkExpCast(TypeName typeName, Expression expression)", MkExpCast, module, 2);
__ecereNameSpace__ecere__com__eSystem_RegisterFunction("MkExpCondition", "Expression MkExpCondition(Expression cond, ecere::sys::OldList expressions, Expression elseExp)", MkExpCondition, module, 2);
__ecereNameSpace__ecere__com__eSystem_RegisterFunction("MkExpRenew", "Expression MkExpRenew(Expression memExp, TypeName type, Expression size)", MkExpRenew, module, 2);
__ecereNameSpace__ecere__com__eSystem_RegisterFunction("MkExpRenew0", "Expression MkExpRenew0(Expression memExp, TypeName type, Expression size)", MkExpRenew0, module, 2);
__ecereNameSpace__ecere__com__eSystem_RegisterFunction("MkExpNew", "Expression MkExpNew(TypeName type, Expression size)", MkExpNew, module, 2);
__ecereNameSpace__ecere__com__eSystem_RegisterFunction("MkExpNew0", "Expression MkExpNew0(TypeName type, Expression size)", MkExpNew0, module, 2);
__ecereNameSpace__ecere__com__eSystem_RegisterFunction("MkExpVaArg", "Expression MkExpVaArg(Expression exp, TypeName type)", MkExpVaArg, module, 2);
__ecereNameSpace__ecere__com__eSystem_RegisterFunction("MkSpecifier", "Specifier MkSpecifier(int specifier)", MkSpecifier, module, 2);
__ecereNameSpace__ecere__com__eSystem_RegisterFunction("MkSpecifierTypeOf", "Specifier MkSpecifierTypeOf(Expression expression)", MkSpecifierTypeOf, module, 2);
__ecereNameSpace__ecere__com__eSystem_RegisterFunction("MkSpecifierSubClass", "Specifier MkSpecifierSubClass(Specifier _class)", MkSpecifierSubClass, module, 2);
__ecereNameSpace__ecere__com__eSystem_RegisterFunction("MkSpecifierExtended", "Specifier MkSpecifierExtended(ExtDecl extDecl)", MkSpecifierExtended, module, 2);
__ecereNameSpace__ecere__com__eSystem_RegisterFunction("MkEnum", "Specifier MkEnum(Identifier id, ecere::sys::OldList list)", MkEnum, module, 2);
__ecereNameSpace__ecere__com__eSystem_RegisterFunction("MkStructOrUnion", "Specifier MkStructOrUnion(SpecifierType type, Identifier id, ecere::sys::OldList definitions)", MkStructOrUnion, module, 2);
__ecereNameSpace__ecere__com__eSystem_RegisterFunction("AddStructDefinitions", "void AddStructDefinitions(Specifier spec, ecere::sys::OldList definitions)", AddStructDefinitions, module, 2);
__ecereNameSpace__ecere__com__eSystem_RegisterFunction("MkAttribute", "Attribute MkAttribute(String attr, Expression exp)", MkAttribute, module, 2);
__ecereNameSpace__ecere__com__eSystem_RegisterFunction("MkAttrib", "Attrib MkAttrib(int type, ecere::sys::OldList * attribs)", MkAttrib, module, 2);
__ecereNameSpace__ecere__com__eSystem_RegisterFunction("MkExtDeclString", "ExtDecl MkExtDeclString(String s)", MkExtDeclString, module, 2);
__ecereNameSpace__ecere__com__eSystem_RegisterFunction("MkExtDeclAttrib", "ExtDecl MkExtDeclAttrib(Attrib attr)", MkExtDeclAttrib, module, 2);
__ecereNameSpace__ecere__com__eSystem_RegisterFunction("MkExtDeclMultiAttrib", "ExtDecl MkExtDeclMultiAttrib(ecere::sys::OldList * attribs)", MkExtDeclMultiAttrib, module, 2);
__ecereNameSpace__ecere__com__eSystem_RegisterFunction("MkDeclaratorIdentifier", "Declarator MkDeclaratorIdentifier(Identifier id)", MkDeclaratorIdentifier, module, 1);
__ecereNameSpace__ecere__com__eSystem_RegisterFunction("MkDeclaratorFunction", "Declarator MkDeclaratorFunction(Declarator declarator, ecere::sys::OldList parameters)", MkDeclaratorFunction, module, 2);
__ecereNameSpace__ecere__com__eSystem_RegisterFunction("MkDeclaratorExtended", "Declarator MkDeclaratorExtended(ExtDecl extended, Declarator declarator)", MkDeclaratorExtended, module, 2);
__ecereNameSpace__ecere__com__eSystem_RegisterFunction("MkDeclaratorExtendedEnd", "Declarator MkDeclaratorExtendedEnd(ExtDecl extended, Declarator declarator)", MkDeclaratorExtendedEnd, module, 2);
__ecereNameSpace__ecere__com__eSystem_RegisterFunction("MkStructDeclarator", "Declarator MkStructDeclarator(Declarator declarator, Expression exp)", MkStructDeclarator, module, 2);
__ecereNameSpace__ecere__com__eSystem_RegisterFunction("MkDeclaratorBrackets", "Declarator MkDeclaratorBrackets(Declarator declarator)", MkDeclaratorBrackets, module, 2);
__ecereNameSpace__ecere__com__eSystem_RegisterFunction("MkDeclaratorArray", "Declarator MkDeclaratorArray(Declarator declarator, Expression exp)", MkDeclaratorArray, module, 2);
__ecereNameSpace__ecere__com__eSystem_RegisterFunction("MkDeclaratorEnumArray", "Declarator MkDeclaratorEnumArray(Declarator declarator, Specifier _class)", MkDeclaratorEnumArray, module, 2);
__ecereNameSpace__ecere__com__eSystem_RegisterFunction("MkDeclaratorPointer", "Declarator MkDeclaratorPointer(Pointer pointer, Declarator declarator)", MkDeclaratorPointer, module, 2);
__ecereNameSpace__ecere__com__eSystem_RegisterFunction("MkEnumerator", "Enumerator MkEnumerator(Identifier id, Expression exp, ecere::sys::OldList * attribs)", MkEnumerator, module, 2);
__ecereNameSpace__ecere__com__eSystem_RegisterFunction("MkPointer", "Pointer MkPointer(ecere::sys::OldList qualifiers, Pointer pointer)", MkPointer, module, 2);
__ecereNameSpace__ecere__com__eSystem_RegisterFunction("MkInitializerAssignment", "Initializer MkInitializerAssignment(Expression exp)", MkInitializerAssignment, module, 2);
__ecereNameSpace__ecere__com__eSystem_RegisterFunction("MkInitializerList", "Initializer MkInitializerList(ecere::sys::OldList list)", MkInitializerList, module, 2);
__ecereNameSpace__ecere__com__eSystem_RegisterFunction("MkInitDeclarator", "InitDeclarator MkInitDeclarator(Declarator declarator, Initializer initializer)", MkInitDeclarator, module, 2);
__ecereNameSpace__ecere__com__eSystem_RegisterFunction("MkTypeName", "TypeName MkTypeName(ecere::sys::OldList qualifiers, Declarator declarator)", MkTypeName, module, 1);
__ecereNameSpace__ecere__com__eSystem_RegisterFunction("MkTypeNameGuessDecl", "TypeName MkTypeNameGuessDecl(ecere::sys::OldList qualifiers, Declarator declarator)", MkTypeNameGuessDecl, module, 1);
__ecereNameSpace__ecere__com__eSystem_RegisterFunction("GetDeclId", "Identifier GetDeclId(Declarator decl)", GetDeclId, module, 1);
__ecereNameSpace__ecere__com__eSystem_RegisterFunction("MkDeclarationClassInst", "Declaration MkDeclarationClassInst(Instantiation inst)", MkDeclarationClassInst, module, 2);
__ecereNameSpace__ecere__com__eSystem_RegisterFunction("MkDeclarationInst", "Declaration MkDeclarationInst(Instantiation inst)", MkDeclarationInst, module, 2);
__ecereNameSpace__ecere__com__eSystem_RegisterFunction("MkDeclarationDefine", "Declaration MkDeclarationDefine(Identifier id, Expression exp)", MkDeclarationDefine, module, 2);
__ecereNameSpace__ecere__com__eSystem_RegisterFunction("MkDeclaration", "Declaration MkDeclaration(ecere::sys::OldList specifiers, ecere::sys::OldList initDeclarators)", MkDeclaration, module, 2);
__ecereNameSpace__ecere__com__eSystem_RegisterFunction("MkStructDeclaration", "Declaration MkStructDeclaration(ecere::sys::OldList specifiers, ecere::sys::OldList declarators, Specifier extStorage)", MkStructDeclaration, module, 2);
__ecereNameSpace__ecere__com__eSystem_RegisterFunction("MkLabeledStmt", "Statement MkLabeledStmt(Identifier id, Statement statement)", MkLabeledStmt, module, 2);
__ecereNameSpace__ecere__com__eSystem_RegisterFunction("MkCaseStmt", "Statement MkCaseStmt(Expression exp, Statement statement)", MkCaseStmt, module, 2);
__ecereNameSpace__ecere__com__eSystem_RegisterFunction("MkCompoundStmt", "Statement MkCompoundStmt(ecere::sys::OldList declarations, ecere::sys::OldList statements)", MkCompoundStmt, module, 2);
__ecereNameSpace__ecere__com__eSystem_RegisterFunction("MkExpressionStmt", "Statement MkExpressionStmt(ecere::sys::OldList expressions)", MkExpressionStmt, module, 2);
__ecereNameSpace__ecere__com__eSystem_RegisterFunction("MkBadDeclStmt", "Statement MkBadDeclStmt(Declaration decl)", MkBadDeclStmt, module, 2);
__ecereNameSpace__ecere__com__eSystem_RegisterFunction("MkIfStmt", "Statement MkIfStmt(ecere::sys::OldList exp, Statement statement, Statement elseStmt)", MkIfStmt, module, 2);
__ecereNameSpace__ecere__com__eSystem_RegisterFunction("MkSwitchStmt", "Statement MkSwitchStmt(ecere::sys::OldList exp, Statement statement)", MkSwitchStmt, module, 2);
__ecereNameSpace__ecere__com__eSystem_RegisterFunction("MkWhileStmt", "Statement MkWhileStmt(ecere::sys::OldList exp, Statement statement)", MkWhileStmt, module, 2);
__ecereNameSpace__ecere__com__eSystem_RegisterFunction("MkDoWhileStmt", "Statement MkDoWhileStmt(Statement statement, ecere::sys::OldList exp)", MkDoWhileStmt, module, 2);
__ecereNameSpace__ecere__com__eSystem_RegisterFunction("MkForStmt", "Statement MkForStmt(Statement init, Statement check, ecere::sys::OldList inc, Statement statement)", MkForStmt, module, 2);
__ecereNameSpace__ecere__com__eSystem_RegisterFunction("MkForEachStmt", "Statement MkForEachStmt(Identifier id, ecere::sys::OldList exp, ecere::sys::OldList filter, Statement statement)", MkForEachStmt, module, 2);
__ecereNameSpace__ecere__com__eSystem_RegisterFunction("MkGotoStmt", "Statement MkGotoStmt(Identifier id)", MkGotoStmt, module, 2);
__ecereNameSpace__ecere__com__eSystem_RegisterFunction("MkContinueStmt", "Statement MkContinueStmt(void)", MkContinueStmt, module, 2);
__ecereNameSpace__ecere__com__eSystem_RegisterFunction("MkBreakStmt", "Statement MkBreakStmt(void)", MkBreakStmt, module, 2);
__ecereNameSpace__ecere__com__eSystem_RegisterFunction("MkReturnStmt", "Statement MkReturnStmt(ecere::sys::OldList exp)", MkReturnStmt, module, 2);
__ecereNameSpace__ecere__com__eSystem_RegisterFunction("MkFunction", "FunctionDefinition MkFunction(ecere::sys::OldList specifiers, Declarator declarator, ecere::sys::OldList declarationList)", MkFunction, module, 2);
__ecereNameSpace__ecere__com__eSystem_RegisterFunction("_MkFunction", "FunctionDefinition _MkFunction(ecere::sys::OldList specifiers, Declarator declarator, ecere::sys::OldList declarationList, bool errorOnOmit)", _MkFunction, module, 2);
__ecereNameSpace__ecere__com__eSystem_RegisterFunction("ProcessFunctionBody", "void ProcessFunctionBody(FunctionDefinition func, Statement body)", ProcessFunctionBody, module, 2);
__ecereNameSpace__ecere__com__eSystem_RegisterFunction("MkExternalPragma", "External MkExternalPragma(const String s)", MkExternalPragma, module, 2);
__ecereNameSpace__ecere__com__eSystem_RegisterFunction("MkExternalFunction", "External MkExternalFunction(FunctionDefinition function)", MkExternalFunction, module, 2);
__ecereNameSpace__ecere__com__eSystem_RegisterFunction("MkExternalImport", "External MkExternalImport(char * name, ecere::com::ImportType importType, ecere::com::AccessMode importAccess)", MkExternalImport, module, 2);
__ecereNameSpace__ecere__com__eSystem_RegisterFunction("MkExternalDeclaration", "External MkExternalDeclaration(Declaration declaration)", MkExternalDeclaration, module, 2);
__ecereNameSpace__ecere__com__eSystem_RegisterFunction("MkExternalNameSpace", "External MkExternalNameSpace(Identifier identifier)", MkExternalNameSpace, module, 2);
__ecereNameSpace__ecere__com__eSystem_RegisterFunction("SetClassTemplateArgs", "void SetClassTemplateArgs(Specifier spec, ecere::sys::OldList templateArgs)", SetClassTemplateArgs, module, 2);
__ecereNameSpace__ecere__com__eSystem_RegisterFunction("_MkSpecifierName", "Specifier _MkSpecifierName(const char * name, Symbol symbol, ecere::sys::OldList templateArgs)", _MkSpecifierName, module, 2);
__ecereNameSpace__ecere__com__eSystem_RegisterFunction("MkSpecifierName", "Specifier MkSpecifierName(const char * name)", MkSpecifierName, module, 1);
__ecereNameSpace__ecere__com__eSystem_RegisterFunction("MkSpecifierNameArgs", "Specifier MkSpecifierNameArgs(const char * name, ecere::sys::OldList * templateArgs)", MkSpecifierNameArgs, module, 1);
__ecereNameSpace__ecere__com__eSystem_RegisterFunction("MkClassFunction", "ClassFunction MkClassFunction(ecere::sys::OldList specifiers, Specifier _class, Declarator decl, ecere::sys::OldList declList)", MkClassFunction, module, 2);
__ecereNameSpace__ecere__com__eSystem_RegisterFunction("ProcessClassFunctionBody", "void ProcessClassFunctionBody(ClassFunction func, Statement body)", ProcessClassFunctionBody, module, 2);
__ecereNameSpace__ecere__com__eSystem_RegisterFunction("MkSpecsClass", "ecere::sys::OldList * MkSpecsClass(Specifier _class)", MkSpecsClass, module, 2);
__ecereNameSpace__ecere__com__eSystem_RegisterFunction("MkMemberInit", "MemberInit MkMemberInit(ecere::sys::OldList ids, Initializer initializer)", MkMemberInit, module, 2);
__ecereNameSpace__ecere__com__eSystem_RegisterFunction("MkMemberInitExp", "MemberInit MkMemberInitExp(Expression idExp, Initializer initializer)", MkMemberInitExp, module, 2);
__ecereNameSpace__ecere__com__eSystem_RegisterFunction("MkMembersInitList", "MembersInit MkMembersInitList(ecere::sys::OldList dataMembers)", MkMembersInitList, module, 2);
__ecereNameSpace__ecere__com__eSystem_RegisterFunction("MkMembersInitMethod", "MembersInit MkMembersInitMethod(ClassFunction function)", MkMembersInitMethod, module, 2);
__ecereNameSpace__ecere__com__eSystem_RegisterFunction("MkInstantiation", "Instantiation MkInstantiation(Specifier _class, Expression exp, ecere::sys::OldList members)", MkInstantiation, module, 2);
__ecereNameSpace__ecere__com__eSystem_RegisterFunction("MkInstantiationNamed", "Instantiation MkInstantiationNamed(ecere::sys::OldList specs, Expression exp, ecere::sys::OldList members)", MkInstantiationNamed, module, 2);
__ecereNameSpace__ecere__com__eSystem_RegisterFunction("MkClassDefAccessOverride", "ClassDef MkClassDefAccessOverride(ecere::com::AccessMode access, Identifier id)", MkClassDefAccessOverride, module, 2);
__ecereNameSpace__ecere__com__eSystem_RegisterFunction("MkClassDefMemberAccess", "ClassDef MkClassDefMemberAccess(void)", MkClassDefMemberAccess, module, 2);
__ecereNameSpace__ecere__com__eSystem_RegisterFunction("MkClassDefDeclaration", "ClassDef MkClassDefDeclaration(Declaration decl)", MkClassDefDeclaration, module, 2);
__ecereNameSpace__ecere__com__eSystem_RegisterFunction("MkClassDefClassData", "ClassDef MkClassDefClassData(Declaration decl)", MkClassDefClassData, module, 2);
__ecereNameSpace__ecere__com__eSystem_RegisterFunction("MkClassDefDesigner", "ClassDef MkClassDefDesigner(const char * designer)", MkClassDefDesigner, module, 2);
__ecereNameSpace__ecere__com__eSystem_RegisterFunction("MkClassDefNoExpansion", "ClassDef MkClassDefNoExpansion(void)", MkClassDefNoExpansion, module, 2);
__ecereNameSpace__ecere__com__eSystem_RegisterFunction("MkClassDefFixed", "ClassDef MkClassDefFixed(void)", MkClassDefFixed, module, 2);
__ecereNameSpace__ecere__com__eSystem_RegisterFunction("MkClassDefDesignerDefaultProperty", "ClassDef MkClassDefDesignerDefaultProperty(Identifier id)", MkClassDefDesignerDefaultProperty, module, 2);
__ecereNameSpace__ecere__com__eSystem_RegisterFunction("MkClassDefDefaultProperty", "ClassDef MkClassDefDefaultProperty(ecere::sys::OldList defProperties)", MkClassDefDefaultProperty, module, 2);
__ecereNameSpace__ecere__com__eSystem_RegisterFunction("MkClassDefFunction", "ClassDef MkClassDefFunction(ClassFunction function)", MkClassDefFunction, module, 2);
__ecereNameSpace__ecere__com__eSystem_RegisterFunction("DeclClassAddNameSpace", "Symbol DeclClassAddNameSpace(Specifier _class, const char * className)", DeclClassAddNameSpace, module, 2);
__ecereNameSpace__ecere__com__eSystem_RegisterFunction("DeclClass", "Symbol DeclClass(Specifier _class, const char * name)", DeclClass, module, 2);
__ecereNameSpace__ecere__com__eSystem_RegisterFunction("_DeclClass", "Symbol _DeclClass(Specifier _class, const char * name)", _DeclClass, module, 2);
__ecereNameSpace__ecere__com__eSystem_RegisterFunction("SetupBaseSpecs", "void SetupBaseSpecs(Symbol symbol, ecere::sys::OldList baseSpecs)", SetupBaseSpecs, module, 2);
__ecereNameSpace__ecere__com__eSystem_RegisterFunction("MkClass", "ClassDefinition MkClass(Symbol symbol, ecere::sys::OldList baseSpecs, ecere::sys::OldList definitions)", MkClass, module, 2);
__ecereNameSpace__ecere__com__eSystem_RegisterFunction("MkExpInstance", "Expression MkExpInstance(Instantiation inst)", MkExpInstance, module, 2);
__ecereNameSpace__ecere__com__eSystem_RegisterFunction("MkExternalClass", "External MkExternalClass(ClassDefinition _class)", MkExternalClass, module, 2);
__ecereNameSpace__ecere__com__eSystem_RegisterFunction("MkProperty", "PropertyDef MkProperty(ecere::sys::OldList specs, Declarator decl, Identifier id, Statement setStmt, Statement getStmt)", MkProperty, module, 2);
__ecereNameSpace__ecere__com__eSystem_RegisterFunction("MkClassDefProperty", "ClassDef MkClassDefProperty(PropertyDef propertyDef)", MkClassDefProperty, module, 2);
__ecereNameSpace__ecere__com__eSystem_RegisterFunction("MkClassDefClassProperty", "ClassDef MkClassDefClassProperty(PropertyDef propertyDef)", MkClassDefClassProperty, module, 2);
__ecereNameSpace__ecere__com__eSystem_RegisterFunction("MkClassDefClassPropertyValue", "ClassDef MkClassDefClassPropertyValue(Identifier id, Initializer initializer)", MkClassDefClassPropertyValue, module, 2);
__ecereNameSpace__ecere__com__eSystem_RegisterFunction("CheckType", "int CheckType(const char * text)", CheckType, module, 2);
__ecereNameSpace__ecere__com__eSystem_RegisterFunction("check_type", "int check_type(void)", check_type, module, 2);
__ecereNameSpace__ecere__com__eSystem_RegisterFunction("PushContext", "Context PushContext(void)", PushContext, module, 2);
__ecereNameSpace__ecere__com__eSystem_RegisterFunction("PopContext", "void PopContext(Context ctx)", PopContext, module, 2);
__ecereNameSpace__ecere__com__eSystem_RegisterFunction("FindType", "Symbol FindType(Context ctx, const char * name)", FindType, module, 2);
__ecereNameSpace__ecere__com__eSystem_RegisterFunction("FindStruct", "Symbol FindStruct(Context ctx, const char * name)", FindStruct, module, 2);
__ecereNameSpace__ecere__com__eSystem_RegisterFunction("FindTemplateTypeParameter", "TemplatedType FindTemplateTypeParameter(Context ctx, const char * name)", FindTemplateTypeParameter, module, 2);
__ecereNameSpace__ecere__com__eSystem_RegisterFunction("ModuleAccess", "bool ModuleAccess(ecere::com::Module searchIn, ecere::com::Module searchFor)", ModuleAccess, module, 2);
__ecereNameSpace__ecere__com__eSystem_RegisterFunction("FindModule", "ModuleImport FindModule(ecere::com::Module moduleToFind)", FindModule, module, 2);
__ecereNameSpace__ecere__com__eSystem_RegisterFunction("FindClass", "Symbol FindClass(const char * name)", FindClass, module, 1);
__ecereNameSpace__ecere__com__eSystem_RegisterFunction("CopyTypeInto", "void CopyTypeInto(Type type, Type src)", CopyTypeInto, module, 2);
__ecereNameSpace__ecere__com__eSystem_RegisterFunction("ProcessType", "Type ProcessType(ecere::sys::OldList specs, Declarator decl)", ProcessType, module, 1);
__ecereNameSpace__ecere__com__eSystem_RegisterFunction("ProcessTypeString", "Type ProcessTypeString(const char * string, bool staticMethod)", ProcessTypeString, module, 1);
__ecereNameSpace__ecere__com__eSystem_RegisterFunction("MkClassTypeSymbol", "Type MkClassTypeSymbol(Symbol symbol)", MkClassTypeSymbol, module, 2);
__ecereNameSpace__ecere__com__eSystem_RegisterFunction("MkClassType", "Type MkClassType(const char * name)", MkClassType, module, 1);
__ecereNameSpace__ecere__com__eSystem_RegisterFunction("MkAsmField", "AsmField MkAsmField(char * command, Expression expression, Identifier symbolic)", MkAsmField, module, 2);
__ecereNameSpace__ecere__com__eSystem_RegisterFunction("MkAsmStmt", "Statement MkAsmStmt(Specifier spec, char * statements, ecere::sys::OldList inputFields, ecere::sys::OldList outputFields, ecere::sys::OldList clobberedFields)", MkAsmStmt, module, 2);
__ecereNameSpace__ecere__com__eSystem_RegisterFunction("MkClassDefPropertyWatch", "ClassDef MkClassDefPropertyWatch(PropertyWatch watcher)", MkClassDefPropertyWatch, module, 2);
__ecereNameSpace__ecere__com__eSystem_RegisterFunction("MkFireWatchersStmt", "Statement MkFireWatchersStmt(Expression object, ecere::sys::OldList watches)", MkFireWatchersStmt, module, 2);
__ecereNameSpace__ecere__com__eSystem_RegisterFunction("MkStopWatchingStmt", "Statement MkStopWatchingStmt(Expression watcher, Expression object, ecere::sys::OldList watches)", MkStopWatchingStmt, module, 2);
__ecereNameSpace__ecere__com__eSystem_RegisterFunction("MkWatchStmt", "Statement MkWatchStmt(Expression watcher, Expression object, ecere::sys::OldList watches)", MkWatchStmt, module, 2);
__ecereNameSpace__ecere__com__eSystem_RegisterFunction("MkDeleteWatch", "PropertyWatch MkDeleteWatch(Statement compound)", MkDeleteWatch, module, 2);
__ecereNameSpace__ecere__com__eSystem_RegisterFunction("MkPropertyWatch", "PropertyWatch MkPropertyWatch(ecere::sys::OldList properties, Statement compound)", MkPropertyWatch, module, 2);
__ecereNameSpace__ecere__com__eSystem_RegisterFunction("MkExpClass", "Expression MkExpClass(ecere::sys::OldList * specifiers, Declarator decl)", MkExpClass, module, 2);
__ecereNameSpace__ecere__com__eSystem_RegisterFunction("MkExpClassData", "Expression MkExpClassData(Identifier id)", MkExpClassData, module, 2);
__ecereNameSpace__ecere__com__eSystem_RegisterFunction("MkExternalDBTable", "External MkExternalDBTable(DBTableDef table)", MkExternalDBTable, module, 2);
__ecereNameSpace__ecere__com__eSystem_RegisterFunction("MkDBTableDef", "DBTableDef MkDBTableDef(char * name, Symbol symbol, ecere::sys::OldList * definitions)", MkDBTableDef, module, 2);
__ecereNameSpace__ecere__com__eSystem_RegisterFunction("MkDBFieldEntry", "DBTableEntry MkDBFieldEntry(TypeName type, Identifier id, char * name)", MkDBFieldEntry, module, 2);
__ecereNameSpace__ecere__com__eSystem_RegisterFunction("MkDBIndexItem", "DBIndexItem MkDBIndexItem(Identifier id, Order order)", MkDBIndexItem, module, 2);
__ecereNameSpace__ecere__com__eSystem_RegisterFunction("MkDBIndexEntry", "DBTableEntry MkDBIndexEntry(ecere::sys::OldList * items, Identifier id)", MkDBIndexEntry, module, 2);
__ecereNameSpace__ecere__com__eSystem_RegisterFunction("MkExpDBOpen", "Expression MkExpDBOpen(Expression ds, Expression dbName)", MkExpDBOpen, module, 2);
__ecereNameSpace__ecere__com__eSystem_RegisterFunction("MkExpDBField", "Expression MkExpDBField(char * table, Identifier id)", MkExpDBField, module, 2);
__ecereNameSpace__ecere__com__eSystem_RegisterFunction("MkExpDBIndex", "Expression MkExpDBIndex(char * table, Identifier id)", MkExpDBIndex, module, 2);
__ecereNameSpace__ecere__com__eSystem_RegisterFunction("MkExpDBTable", "Expression MkExpDBTable(char * table)", MkExpDBTable, module, 2);
__ecereNameSpace__ecere__com__eSystem_RegisterFunction("MkExpArray", "Expression MkExpArray(ecere::sys::OldList * expressions)", MkExpArray, module, 2);
__ecereNameSpace__ecere__com__eSystem_RegisterFunction("GetTemplateArgExpByName", "Expression GetTemplateArgExpByName(const char * paramName, ecere::com::Class thisClassFrom, ecere::com::Class curClass, ecere::com::TemplateParameterType tplType)", GetTemplateArgExpByName, module, 2);
__ecereNameSpace__ecere__com__eSystem_RegisterFunction("GetTemplateArgExp", "Expression GetTemplateArgExp(TemplateParameter param, ecere::com::Class thisClassFrom, ecere::com::Class curClass, bool pointer)", GetTemplateArgExp, module, 2);
__ecereNameSpace__ecere__com__eSystem_RegisterFunction("OutputIntlStrings", "void OutputIntlStrings(void)", OutputIntlStrings, module, 1);
__ecereNameSpace__ecere__com__eSystem_RegisterFunction("SetAST", "void SetAST(ecere::sys::OldList * list)", SetAST, module, 1);
__ecereNameSpace__ecere__com__eSystem_RegisterFunction("GetAST", "ecere::sys::OldList * GetAST(void)", GetAST, module, 1);
__ecereNameSpace__ecere__com__eSystem_RegisterFunction("ParseEc", "void ParseEc(void)", ParseEc, module, 1);
__ecereNameSpace__ecere__com__eSystem_RegisterFunction("LexEc", "int LexEc(void)", LexEc, module, 1);
__ecereNameSpace__ecere__com__eSystem_RegisterFunction("GetYYText", "const char * GetYYText(void)", GetYYText, module, 1);
}
|
the_stack_data/231393238.c | /**
* Exercitiul 4.
* Determinarea daca 3 numere date pot forma un triunghi.
*/
#include <stdio.h>
int main()
{
int a, b, c;
scanf("%d %d %d", &a, &b, &c);
if (a + b > c && a + c > b && b + c > a) {
printf("DA\n");
} else {
printf("NU\n");
}
return 0;
} |
the_stack_data/85915.c | #include <stdio.h>
// Write a program to find the factorial value of any number
// entered through the keyboard.
int main(void) {
int number;
long unsigned int factorial = 1;
printf("Please enter a number: ");
scanf("%d", &number);
if ( number == 0 ) {
printf("1");
return 0;
}
if ( number < 0 ) {
printf("Invalid number");
return 0;
}
for (; number > 0; number--) {
factorial *= number;
}
printf("%lu", factorial);
}
|
the_stack_data/25141.c | #include <ctype.h>
#include <wchar.h>
#include <stdio.h>
#include <stdlib.h>
#include <string.h>
#include <locale.h>
int main(int argc, char **argv){
if(!setlocale(LC_ALL, "")){
return EXIT_FAILURE;
}
if(argc <= 1){
for(int i = 0 ; i < 128 ; ++i){
wchar_t w = i;
int width = wcwidth(w);
printf("0x%02x: %d%c\t", i, width, width < 0 ? '!' : ' ');
if(i % 4 == 3){
printf("\n");
}
}
printf("\n");
return EXIT_SUCCESS;
}
while(*++argv){
const char* arg = *argv;
int totalcols = 0;
size_t totalb = 0;
int i = 0;
while(*arg){
mbstate_t mbs = {};
wchar_t w;
size_t conv = mbrtowc(&w, arg, strlen(arg), &mbs);
if(conv == (size_t)-1 || conv == (size_t)-2){
fprintf(stderr, "Invalid UTF-8: %s\n", arg);
return EXIT_FAILURE;
}
int width = wcwidth(w);
printf("0x%05lx: %d %lc\t", (long)w, width, w);
if(i++ % 4 == 3){
printf("\n");
}
if(width > 0){
totalcols += width;
}
arg += conv;
totalb += conv;
}
printf("\n total width: %d total bytes: %zu\n\n", totalcols, totalb);
// FIXME this will be broken if totalcols > screen width
printf("%s\n", *argv);
for(int z = 0 ; z < totalcols ; ++z){
putchar('0' + z % 10);
}
putchar('\n');
if(totalcols > 20){
for(int z = 0 ; z < totalcols ; ++z){
if(z % 10){
putchar(' ');
}else{
putchar('0' + z / 10);
}
}
putchar('\n');
}
}
return EXIT_SUCCESS;
}
|
the_stack_data/178264364.c | /*
* Justice Smith - COP3502C - CS1
* Assignment 4 - Coin Organization
* Merge Sort template sourced from https://www.geeksforgeeks.org/merge-sort/
* */
#include <stdio.h>
#include <stdlib.h>
#include <string.h>
#define LEN_NAME 20
typedef struct Customer {
char *name;
long long int tokens, bills, adjustedValue;
}Customer;
// Create and return a single customer object
Customer *createCustomer() {
Customer *ret;
char *buffer;
// Creating the customer struct
ret = malloc(sizeof(Customer));
// Taking in the name of length LEN_NAME and one spot for '\0'
buffer = malloc((LEN_NAME + 1) * sizeof(char));
// Taking in the customer currency
scanf("%s%lld%lld", buffer, &ret->tokens, &ret->bills);
ret->adjustedValue = 0;
// Copying trimmed name to struct
ret->name = strdup(buffer);
return ret;
}
void merge(Customer **customers, int left, int mid, int right) {
int i, j, k;
int leftSize = mid - left + 1;
int rightSize = right - mid;
// Temp arrays
Customer** leftArr = malloc(leftSize * sizeof(Customer*));
Customer** rightArr = malloc(rightSize * sizeof(Customer*));
// Copy struct pointers over for sorting
for (i = 0; i < leftSize; ++i)
leftArr[i] = customers[left + i];
for (j = 0; j < rightSize; ++j)
rightArr[j] = customers[mid + 1 + j];
// Merging the temp arrays back into customers[left...right]
i = 0;
j = 0;
k = left;
while (i < leftSize && j < rightSize) {
if (leftArr[i]->adjustedValue >= rightArr[j]->adjustedValue) {
customers[k] = leftArr[i];
i++;
}
else {
customers[k] = rightArr[j];
j++;
}
k++;
}
// Cleanup copying of remaining leftArr elements after comparisons, if any
while (i < leftSize) {
customers[k] = leftArr[i];
i++;
k++;
}
// Cleanup copying of remaining rightArr elements after comparisons, if any
while (j < rightSize) {
customers[k] = rightArr[j];
j++;
k++;
}
}
void mergeSort(Customer **customers, int left, int right) {
if (left < right) {
int mid = (left + right) / 2;
mergeSort(customers, left, mid);
mergeSort(customers, mid + 1, right);
merge(customers, left, mid, right);
}
}
// Print single customer record helper function
void printCustomer(Customer *customer) {
printf("--------------------------------\n");
printf("Customer: %s\n", customer->name);
printf("Tokens: %d, Bills: %d\n", customer->tokens, customer->bills);
printf("Adjusted value: %d units\n", customer->adjustedValue);
}
int main() {
long long int numCustomers, tokenMultiplier, billsMultiplier;
Customer **customerList;
// Get number of customers and create struct array
scanf("%lld", &numCustomers);
customerList = malloc(numCustomers * sizeof(Customer*));
// Fill customer array
for (int i = 0; i < numCustomers; ++i)
customerList[i] = createCustomer();
// Scan multipliers
scanf("%lld%lld", &billsMultiplier, &tokenMultiplier);
for (int i = 0; i < numCustomers; ++i)
customerList[i]->adjustedValue = (customerList[i]->tokens * tokenMultiplier) + (customerList[i]->bills * billsMultiplier);
// Sort the customers in descending order
mergeSort(customerList, 0, numCustomers - 1);
// Print all customers
for (int i = 0; i < numCustomers; ++i)
printf("%s\t(%lld)\n", customerList[i]->name, customerList[i]->adjustedValue);
return 0;
} |
the_stack_data/67325956.c | #include <stdio.h>
int square_digits(int n)
{
const int pow5[10] = {
0, 1, 32, 243, 1024, 3125, 7776, 16807, 32768, 59049
};
int sum = 0;
while (n) {
sum += pow5[n % 10];
n /= 10;
}
return sum;
}
/* 6 * 9^5 */
#define ulim 354295
int main(void)
{
int sum = 0;
int i;
for (i = 2; i < ulim; ++i) {
if (i == square_digits(i))
sum += i;
}
printf("%d\n", sum);
return 0;
}
|
the_stack_data/45450717.c | /*
* dlist.c
* This is Dual Link List Data Structure Reference Implementation which written
* purely in C Language.
* Copyright 2018 Zombie<[email protected]>
*
* Redistribution and use in source and binary forms, with or without
* modification, are permitted provided that the following conditions are met:
*
* 1. Redistributions of source code must retain the above copyright notice,
* this list of conditions and the following disclaimer.
*
* 2. Redistributions in binary form must reproduce the above copyright notice,
* this list of conditions and the following disclaimer in the documentation
* and/or other materials provided with the distribution.
*
* 3. Neither the name of the copyright holder nor the names of its
* contributors may be used to endorse or promote products derived from this
* software without specific prior written permission.
*
* THIS SOFTWARE IS PROVIDED BY THE COPYRIGHT HOLDERS AND CONTRIBUTORS "AS IS"
* AND ANY EXPRESS OR IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED TO, THE
* IMPLIED WARRANTIES OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR PURPOSE
* ARE DISCLAIMED. IN NO EVENT SHALL THE COPYRIGHT HOLDER OR CONTRIBUTORS BE
* LIABLE FOR ANY DIRECT, INDIRECT, INCIDENTAL, SPECIAL, EXEMPLARY, OR
* CONSEQUENTIAL DAMAGES (INCLUDING, BUT NOT LIMITED TO, PROCUREMENT OF
* SUBSTITUTE GOODS OR SERVICES; LOSS OF USE, DATA, OR PROFITS; OR BUSINESS
* INTERRUPTION) HOWEVER CAUSED AND ON ANY THEORY OF LIABILITY, WHETHER IN
* CONTRACT, STRICT LIABILITY, OR TORT (INCLUDING NEGLIGENCE OR OTHERWISE)
* ARISING IN ANY WAY OUT OF THE USE OF THIS SOFTWARE, EVEN IF ADVISED OF THE
* POSSIBILITY OF SUCH DAMAGE.
*/
#include <stdio.h>
#include <stdlib.h>
#include <stdbool.h>
// #define __DEBUG__
#ifdef __DEBUG__
#define dbgprintf(format,...) \
printf("["__FILE__":%d]: "format"\n", __LINE__, ##__VA_ARGS__)
#else
#define dbgprintf(format,...)
#endif
#define MAX_SIZE 50
#define ElemType int
typedef struct DLNode {
ElemType data;
struct DLNode *prior;
struct DLNode *next;
} DLNode, *DualLinkList;
/* Basic Operation */
bool create_list_end(DualLinkList *L, ElemType e[], int n)
{
*L = (DualLinkList)malloc(sizeof(DLNode));
(*L)->prior = NULL;
(*L)->next = NULL;
DualLinkList r = *L;
for (int i = 0; i < n; i++) {
DualLinkList p = (DualLinkList)malloc(sizeof(DLNode));
p->data = e[i];
r->next = p;
p->prior = r;
r = p;
}
r->next = NULL;
return true;
}
bool create_list_front(DualLinkList *L, ElemType e[], int n)
{
*L = (DualLinkList)malloc(sizeof(DLNode));
(*L)->prior = NULL;
(*L)->next = NULL;
DualLinkList r = *L;
for (int i = 0; i < n; i++) {
DualLinkList p = (DualLinkList)malloc(sizeof(DLNode));
p->data = e[i];
p->prior = (*L);
p->next = (*L)->next;
if ((*L)->next) (*L)->next->prior = p;
(*L)->next = p;
}
return true;
}
void print_list(DualLinkList L)
{
int counter = 1;
for (L = L->next; L != NULL; L = L->next) { // Ignore first head pointer
printf("%d\t", L->data);
if (counter % 10 == 0 && L->next != NULL) printf("\n");
counter++;
}
printf("\n");
}
int main(int argc, char **argv)
{
printf("Dual Link List Test\n");
DualLinkList L;
int a[20] = {1, 2, 3, 4, 5, 6, 7, 8, 9, 10, 11, 12, 13, 14, 15, 16, 17, 18, 19, 20};
create_list_front(&L, a, 20);
print_list(L);
return 0;
}
|
the_stack_data/86076049.c | #include <stdio.h>
int main(void) {
int a;
float b;
scanf("%d%f", &a, &b);
printf("%.3f km/l\n", a/b);
return 0;
}
|
the_stack_data/23576407.c | /*
* KubOS HAL
* Copyright (C) 2016 Kubos Corporation
*
* Licensed under the Apache License, Version 2.0 (the "License");
* you may not use this file except in compliance with the License.
* You may obtain a copy of the License at
*
* http://www.apache.org/licenses/LICENSE-2.0
*
* Unless required by applicable law or agreed to in writing, software
* distributed under the License is distributed on an "AS IS" BASIS,
* WITHOUT WARRANTIES OR CONDITIONS OF ANY KIND, either express or implied.
* See the License for the specific language governing permissions and
* limitations under the License.
*/
#if (defined YOTTA_CFG_HARDWARE_SPI) && (YOTTA_CFG_HARDWARE_SPI_COUNT > 0)
#include "msp430f5529-hal/spi.h"
#include "FreeRTOS.h"
#include "task.h"
#include <msp430.h>
hal_spi_handle hal_spi_buses[YOTTA_CFG_HARDWARE_SPI_COUNT];
/* defines for register timeout mode */
#define SET 0
#define RELEASE 1
static void hal_spi_set_role(hal_spi_handle * handle);
static void hal_spi_set_clock_speed(hal_spi_handle * handle);
static void hal_spi_set_clock_polarity(hal_spi_handle * handle);
static void hal_spi_set_clock_phase(hal_spi_handle * handle);
static void hal_spi_set_first_bit(hal_spi_handle * handle);
static hal_spi_status hal_spi_register_timeout(hal_spi_handle * handle, uint8_t flag, uint8_t mode);
hal_spi_handle * hal_spi_device_init(hal_spi_bus spi)
{
hal_spi_handle * handle = NULL;
handle = &hal_spi_buses[spi];
if (HAL_SPI_B0 == spi)
{
handle->select = &P3SEL;
handle->select_val = BIT0 + BIT1 + BIT2; /* somi, simo, clk */
handle->reg = (hal_spi_mem_reg *)__MSP430_BASEADDRESS_USCI_B0__;
}
else if (HAL_SPI_B1 == spi)
{
handle->select = &P4SEL;
handle->select_val = BIT1 + BIT2 + BIT3; /* simo, somi, clk */
handle->reg = (hal_spi_mem_reg *)__MSP430_BASEADDRESS_USCI_B1__;
}
return handle;
}
hal_spi_handle * hal_spi_init(hal_spi_conf config, hal_spi_bus spi)
{
hal_spi_handle * handle = hal_spi_device_init(spi);
handle->conf = config;
return handle;
}
void hal_spi_setup(hal_spi_handle * handle)
{
/* configure pins */
*(handle->select) |= handle->select_val;
handle->reg->control1 |= UCSWRST; /* software reset */
hal_spi_set_role(handle);
hal_spi_set_clock_polarity(handle);
hal_spi_set_clock_phase(handle);
hal_spi_set_clock_speed(handle);
hal_spi_set_first_bit(handle);
/* Bits not set are:
- BIT4 - UC7BIT - Default to 8-bit character length
- BIT1,2 - UCMODEx - Default to 3-pin SPI
- BIT0 - UCSYNC - Default to asynchronous mode
- See Section 1.5 of SLAU411D - USCI - SPI Mode for more details.
*/
handle->reg->control1 &= ~UCSWRST; /* enable spi by releasing reset */
}
void hal_spi_dev_terminate(hal_spi_handle * handle)
{
handle->reg->control1 |= UCSWRST; /* software reset */
handle->reg->control0 &= ~(UCMST | UCSYNC | UCCKPL | UCMSB); /* clear CTL0 */
handle->reg->control1 &= ~UCSWRST; /* releasing reset */
/* de-select pins */
*(handle->select) &= ~handle->select_val;
}
static void hal_spi_set_clock_speed(hal_spi_handle * handle)
{
/* SMCLK FREQ constant 1 MHz for F5529 */
const uint32_t SMCLK_FREQ = 1000000;
uint8_t preScalar;
if(handle->conf.speed < 1)
{
handle->conf.speed = 1;
}
preScalar = (uint8_t)(SMCLK_FREQ/handle->conf.speed);
handle->reg->control1 |= UCSSEL_2 | UCSWRST; /* SMCLK + keep reset */
handle->reg->baudrate0 = preScalar;
handle->reg->baudrate1 = 0;
}
static void hal_spi_set_role(hal_spi_handle * handle)
{
if (handle->conf.role == HAL_SPI_MASTER)
{
handle->reg->control0 |= UCMST;
}
else
{
handle->reg->control0 &= ~UCMST;
}
}
static void hal_spi_set_clock_polarity(hal_spi_handle * handle)
{
if (handle->conf.clock_polarity == HAL_SPI_CPOL_HIGH)
{
handle->reg->control0 |= UCCKPL;
}
else
{
handle->reg->control0 &= ~UCCKPL;
}
}
static void hal_spi_set_clock_phase(hal_spi_handle * handle)
{
if (handle->conf.clock_phase == HAL_SPI_CPHA_1EDGE)
{
handle->reg->control0 |= UCCKPH;
}
else
{
handle->reg->control0 &= ~UCCKPH;
}
}
static void hal_spi_set_first_bit(hal_spi_handle * handle)
{
if (handle->conf.first_bit == HAL_SPI_FIRSTBIT_MSB)
{
handle->reg->control0 |= UCMSB;
}
else
{
handle->reg->control0 &= ~UCMSB;
}
}
static hal_spi_status hal_spi_register_timeout(hal_spi_handle * handle, uint8_t flag, uint8_t mode)
{
/* timeout counter */
int timeout = 50;
/* set register based on mode */
if (mode == RELEASE)
{
/* while waiting for status register to clear */
while ((handle->reg->status & flag) && timeout > 0)
{
vTaskDelay(5); /* wait */
timeout--; /* decrease counter */
}
}
else /* SET */
{
/* while waiting for interrupt register to set */
while (!(handle->reg->interrupt_flags & flag) && timeout > 0)
{
vTaskDelay(5); /* wait */
timeout--; /* decrease counter */
}
}
/* if we timed out */
if (timeout <= 0)
{
return HAL_SPI_ERROR_TIMEOUT;
}
/* success */
return HAL_SPI_OK;
}
hal_spi_status hal_spi_master_write(hal_spi_handle * handle, uint8_t *buffer, int len)
{
hal_spi_status ret = HAL_SPI_ERROR;
int i = 0; /* loop variable */
/* send data */
for (; i < len; i++, buffer++)
{
/* wait for TX ready to set */
if ((ret = hal_spi_register_timeout(handle, UCTXIFG, SET)) != HAL_SPI_OK)
{
return ret; /* error */
}
/* put byte into register */
handle->reg->tx_buffer = *buffer;
/* wait for RX ready to set */
if ((ret = hal_spi_register_timeout(handle, UCRXIFG, SET)) != HAL_SPI_OK)
{
return ret; /* error */
}
/* Read the rx register */
(void)handle->reg->rx_buffer;
}
return HAL_SPI_OK;
}
hal_spi_status hal_spi_master_read(hal_spi_handle * handle, uint8_t *buffer, int len)
{
hal_spi_status ret = HAL_SPI_ERROR;
int i = 0; /* loop variable */
/* send dummy data and receive data */
for (; i < len; i++, buffer++)
{
/* wait for TX ready to set */
if ((ret = hal_spi_register_timeout(handle, UCTXIFG, SET)) != HAL_SPI_OK)
{
return ret; /* error */
}
/* put dummy byte into register */
handle->reg->tx_buffer = 0xFF;
/* wait for RX ready to set */
if ((ret = hal_spi_register_timeout(handle, UCRXIFG, SET)) != HAL_SPI_OK)
{
return ret; /* error */
}
/* put rx'd byte into buffer */
*buffer = handle->reg->rx_buffer;
}
return HAL_SPI_OK;
}
hal_spi_status hal_spi_master_write_read(hal_spi_handle * handle, uint8_t *tx_buffer, uint8_t *rx_buffer, int len)
{
hal_spi_status ret = HAL_SPI_ERROR;
int i = 0; /* loop variable */
/* send data and receive data */
for (; i < len; i++, tx_buffer++, rx_buffer++)
{
/* wait for TX ready to set */
if ((ret = hal_spi_register_timeout(handle, UCTXIFG, SET)) != HAL_SPI_OK)
{
return ret; /* error */
}
/* put data byte into register */
handle->reg->tx_buffer = *tx_buffer;
/* wait for RX ready to set */
if ((ret = hal_spi_register_timeout(handle, UCRXIFG, SET)) != HAL_SPI_OK)
{
return ret; /* error */
}
/* put rx'd byte into buffer */
*rx_buffer = handle->reg->rx_buffer;
}
return HAL_SPI_OK;
}
#endif
|
the_stack_data/1082418.c | // RUN: %clang_cc1 -mllvm -emptyline-comment-coverage=false -fprofile-instrument=clang -fcoverage-mapping -dump-coverage-mapping -emit-llvm-only -main-file-name macroception.c %s | FileCheck %s
#define M2 {
#define M1 M2
#define M22 }
#define M11 M22
// CHECK-LABEL: main:
// CHECK-NEXT: Expansion,File 0, [[@LINE+2]]:16 -> [[@LINE+2]]:18 = #0
// CHECK-NEXT: File 0, [[@LINE+1]]:18 -> [[@LINE+3]]:2 = #0
int main(void) M1
return 0;
}
// CHECK-NEXT: Expansion,File 1, 4:12 -> 4:14 = #0
// CHECK-NEXT: File 2, 3:12 -> 3:13 = #0
// CHECK-LABEL: func2:
// CHECK-NEXT: File 0, [[@LINE+2]]:18 -> [[@LINE+4]]:4 = #0
// CHECK-NEXT: Expansion,File 0, [[@LINE+3]]:1 -> [[@LINE+3]]:4 = #0
void func2(void) {
int x = 0;
M11
// CHECK-NEXT: Expansion,File 1, 6:13 -> 6:16 = #0
// CHECK-NEXT: File 2, 5:13 -> 5:14 = #0
// CHECK-LABEL: func3:
// CHECK-NEXT: Expansion,File 0, [[@LINE+3]]:18 -> [[@LINE+3]]:20 = #0
// CHECK-NEXT: File 0, [[@LINE+2]]:20 -> [[@LINE+4]]:4 = #0
// CHECK-NEXT: Expansion,File 0, [[@LINE+3]]:1 -> [[@LINE+3]]:4 = #0
void func3(void) M1
int x = 0;
M11
// CHECK-NEXT: Expansion,File 1, 4:12 -> 4:14 = #0
// CHECK-NEXT: Expansion,File 2, 6:13 -> 6:16 = #0
// CHECK-NEXT: File 3, 3:12 -> 3:13 = #0
// CHECK-NEXT: File 4, 5:13 -> 5:14 = #0
// CHECK-LABEL: func4:
// CHECK-NEXT: Expansion,File 0, [[@LINE+3]]:18 -> [[@LINE+3]]:20 = #0
// CHECK-NEXT: File 0, [[@LINE+2]]:20 -> [[@LINE+2]]:24 = #0
// CHECK-NEXT: Expansion,File 0, [[@LINE+1]]:21 -> [[@LINE+1]]:24 = #0
void func4(void) M1 M11
// CHECK-NEXT: Expansion,File 1, 4:12 -> 4:14 = #0
// CHECK-NEXT: Expansion,File 2, 6:13 -> 6:16 = #0
// CHECK-NEXT: File 3, 3:12 -> 3:13 = #0
// CHECK-NEXT: File 4, 5:13 -> 5:14 = #0
|
the_stack_data/800226.c | /* Section 2.3
* Enumeration
*/
#include <stdio.h>
enum months { JAN = 1, FEB, MAR, APR, MAY, JUN, JUL,
AUG, SEP, OCT, NOV, DEC };
int
main(void)
{ int i;
i = 0;
while (i < 12)
{
if (i == JAN)
printf(" %d is mon %d\n", JAN , i);
i++;
}
printf(" Apr is month %d\n", APR);
return 0;
}
|
the_stack_data/132952285.c | #include <stdio.h>
#include <omp.h>
#define LARGE_NUMBER 10
//#define LARGE_NUMBER 10000000
double item[LARGE_NUMBER];
void process (double input)
{
printf("processing %f by thread %d\n",input, omp_get_thread_num());
}
int cutoff =1000;
int
main ()
{
//#pragma omp parallel
{
//#pragma omp single
{
int i;
printf("Using %d threads.\n",omp_get_num_threads());
for (i = 0; i < LARGE_NUMBER; i++)
#pragma omp task if (i < cutoff)
process (item[i]);
}
}
}
|
the_stack_data/20.c | #include <stdio.h>
int main(void)
{
char c1, c2;
int diff;
float num;
c1='S';
c2='O';
diff = c1 - c2;
num= diff;
printf("%c%c%c:%d %3.2f\n", c1, c2, c1, diff, num);
return 0;
} |
the_stack_data/133634.c | #include <stdio.h>
#include <math.h>
#include <string.h>
#include <stdlib.h>
#define N 288 /* frame dimension for QCIF format */
#define M 352 /* frame dimension for QCIF format */
#define filename "akiyo_cif_0_yuv444.yuv"
#define file_y "akiyo2y.yuv"
#define iTile 24
/* code for armulator*/
#pragma arm section zidata="ram"
int current_y[N][M];
int gauss[N+2][M+2];
int newgauss[N+2][M+2];
int nonmaximum[N+2][M+2];
int threshold[N+2][M+2];
int sobel[N][M];
int newsobelx[N][M];
int newsobely[N][M];
double es[N][M];
float eo[N][M];
double z=0;
float k=0;
int q=0;
int r=0;
int t1=70;
int t2=60;
#pragma arm section
int i,j,ii;
void canny(){
for(ii=1; ii<N+2; ii+=iTile)
for(j=1;j<M+2;j++)
for(i=ii; i<ii+iTile; i++)
gauss[i][j]=0;
sobel[i][j]=0;
nonmaximum[i][j]=0;
threshold[N][M]=0;
for(ii=1; ii<N+1; ii+=iTile)
for(j=1;j<M+1;j++)
for(i=ii; i<ii+iTile; i++)
gauss[i][j]=current_y[i-1][j-1];
/*Edw dinetai to filtrarisma me ton 2d pinaka gaussFilter*/
for(ii=1; ii<N+1; ii+=iTile)
for(j=1;j<M+1;j++)
for(i=ii; i<ii+iTile; i++)
newgauss[i][j]=(gauss[i][j] *(4) + // pollaplasiazei to idio stoixeio me 4
gauss[i-1][j-1] *(1) + // stoixeio panw aristera
gauss[i][j-1] *(2) + // stoixeio aristera
gauss[i+1][j-1] *(1) + // stoixeio katw aristera
gauss[i-1][j] *(2) + // stoixeio apo panw
gauss[i+1][j] *(2) + // stoixeio apo katw
gauss[i-1][j+1] *(1) + // stoixeio panw deksia
gauss[i][j+1] *(2) + // stoixeio deksia
gauss[i+1][j+1] *(1) // stoixeio katw deksia
);
for(ii=1; ii<N+1; ii+=iTile)
for(j=1;j<M+1;j++)
for(i=ii; i<ii+iTile; i++){
current_y[i-1][j-1]=newgauss[i][j]/16;
sobel[i-1][j-1]=current_y[i-1][j-1];
}
//sobel
for(ii=1; ii<N+1; ii+=iTile)
for(j=1;j<M+1;j++)
for(i=ii; i<ii+iTile; i++)
newsobelx[i][j]=(sobel[i-1][j-1] *(-1) + // stoixeio panw aristera
sobel[i][j-1] *(-2) + // stoixeio aristera
sobel[i+1][j-1] *(-1) + // stoixeio katw aristera
sobel[i-1][j+1] *(1) + // stoixeio panw deksia
sobel[i][j+1] *(2) + // stoixeio deksia
sobel[i+1][j+1] *(1) // stoixeio katw deksia
);
for(j=1;j<M+1;j++)
for(ii=1; ii<N+1; ii+=iTile)
for(i=ii; i<ii+iTile; i++)
newsobely[i][j]=(sobel[i-1][j-1] *(1) + // stoixeio panw aristera
sobel[i+1][j-1] *(-1) + // stoixeio katw aristera
sobel[i-1][j] *(2) + // stoixeio apo panw
sobel[i+1][j] *(-2) + // stoixeio apo katw
sobel[i-1][j+1] *(1) + // stoixeio panw deksia
sobel[i+1][j+1] *(-1) // stoixeio katw deksia
);
for(ii=0; ii<N; ii+=iTile)
for(j=0;j<M;j++)
for(i=ii; i<ii+iTile; i++)
{
if (newsobely[i][j]==0){
newsobely[i][j]=1;
}
z=(newsobelx[i][j]*newsobelx[i][j])+(newsobely[i][j]*newsobely[i][j]);
k= (float)newsobelx[i][j]/(float)newsobely[i][j];
es[i][j]=sqrt(z);//plath eikostoixeiwn
eo[i][j]=atan(k);//klisi eikonostoixeiwn
}
for(ii=1; ii<N+1; ii+=iTile)
for(j=1;j<M+1;j++)
for(i=ii; i<ii+iTile; i++){
current_y[i-1][j-1]=es[i][j];
}
//non maximun
for(ii=0; ii<N; ii+=iTile)
for(j=0;j<M;j++)
for(i=ii; i<ii+iTile; i++){
eo[i][j]=(eo[i][j]*180)/3.14;
if (eo[i][j]<0){
eo[i][j]+=180;
}
}
for(ii=0; ii<N-1; ii+=iTile)
for(j=0;j<M-1;j++)
for(i=ii; i<ii+iTile; i++){
q=0;
r=0;
if ((0<=eo[i][j] && eo[i][j] <22.5) || (157.5 <=eo[i][j] &&eo[i][j] <= 180)){
q =current_y[i][j+1];
r =current_y[i][j-1];
}
else if (22.5<=eo[i][j] && eo[i][j]<67.5){
q =eo[i+1][j-1];
r =eo[i-1][j+1];
}
else if (67.5<=eo[i][j]&& eo[i][j]<112.5){
q = current_y[i+1][j];
r = current_y[i-1][j];
}
else if (112.5<=eo[i][j] && eo[i][j]<157.5){
q =current_y[i-1][j-1];
r= current_y[i+1][j+1];
}
if(current_y[i][j]>=q || current_y[i][j]>=r){
nonmaximum[i][j]=current_y[i][j];
}
else {
nonmaximum[i][j]=0;
}
}
for(ii=1; ii<N+1; ii+=iTile)
for(j=1;j<M+1;j++)
for(i=ii; i<ii+iTile; i++){
current_y[i-1][j-1]=nonmaximum[i][j];
}
//thresholding
for(ii=0; ii<N; ii+=iTile)
for(j=0;j<M;j++)
for(i=ii; i<ii+iTile; i++){
if (current_y[i][j]<=t1 && current_y[i][j]>=t2){
threshold[i][j]=100;
}
else if (current_y[i][j]>t1){
threshold[i][j]=255;
}
else if (current_y[i][j]<t2) {
threshold[i][j]=0;
}
}
for(ii=0; ii<N-1; ii+=iTile)
for(j=0;j<M-1;j++)
for(i=ii; i<ii+iTile; i++){
if (threshold[i][j]==100){
if(threshold[i+1][j-1] == 255 || threshold[i+1][j] == 255 || threshold[i+1][j+1] == 255
|| threshold[i][j-1] == 255 || threshold[i][j+1] ==255
|| threshold[i-1][j-1] == 255 || threshold[i-1][ j] == 255 || threshold[i-1][j+1] == 255)
{
threshold[i][j]=255;
}
else{
threshold[i][j]=0;
}
}
}
for(ii=1; ii<N+1; ii+=iTile)
for(j=1;j<M+1;j++)
for(i=ii; i<ii+iTile; i++){
current_y[i-1][j-1]=threshold[i][j];
}
}
void read()
{
FILE *frame_c;
if((frame_c=fopen(filename,"rb"))==NULL)
{
printf("current frame doesn't exist\n");
getchar();
exit(-1);
}
for(i=0;i<N;i++)
{
for(j=0;j<M;j++)
{
current_y[i][j]=fgetc(frame_c);
}
}
fclose(frame_c);
}
void write()
{
FILE *frame_y;
frame_y=fopen(file_y,"wb");
for(i=0;i<N;i++)
{
for(j=0;j<M;j++)
{
fputc(current_y[i][j],frame_y);
}
}
fclose(frame_y);
}
int main()
{
read();
canny();
write();
}
|
the_stack_data/87637468.c | /*
* POK header
*
* The following file is a part of the POK project. Any modification should
* made according to the POK licence. You CANNOT use this file or a part of
* this file is this part of a file for your own project
*
* For more information on the POK licence, please see our LICENCE FILE
*
* Please follow the coding guidelines described in doc/CODING_GUIDELINES
*
* Copyright (c) 2007-2009 POK team
*
* Created by julien on Fri Jan 30 14:41:34 2009
*/
/* s_scalbnf.c -- float version of s_scalbn.c.
* Conversion to float by Ian Lance Taylor, Cygnus Support, [email protected].
*/
/*
* ====================================================
* Copyright (C) 1993 by Sun Microsystems, Inc. All rights reserved.
*
* Developed at SunPro, a Sun Microsystems, Inc. business.
* Permission to use, copy, modify, and distribute this
* software is freely granted, provided that this notice
* is preserved.
* ====================================================
*/
#ifdef POK_NEEDS_LIBMATH
#include <libm.h>
#include "math_private.h"
static const float two25 = 3.355443200e+07, /* 0x4c000000 */
twom25 = 2.9802322388e-08, /* 0x33000000 */
huge = 1.0e+30, tiny = 1.0e-30;
float scalbnf(float x, int n) {
int32_t k, ix;
GET_FLOAT_WORD(ix, x);
k = (ix & 0x7f800000) >> 23; /* extract exponent */
if (k == 0) { /* 0 or subnormal x */
if ((ix & 0x7fffffff) == 0) return x; /* +-0 */
x *= two25;
GET_FLOAT_WORD(ix, x);
k = ((ix & 0x7f800000) >> 23) - 25;
if (n < -50000) return tiny * x; /*underflow*/
}
if (k == 0xff) return x + x; /* NaN or Inf */
k = k + n;
if (k > 0xfe) return huge * copysignf(huge, x); /* overflow */
if (k > 0) /* normal result */
{
SET_FLOAT_WORD(x, (ix & 0x807fffff) | (k << 23));
return x;
}
if (k <= -25) {
if (n > 50000) /* in case integer overflow in n+k */
return huge * copysignf(huge, x); /*overflow*/
else
return tiny * copysignf(tiny, x); /*underflow*/
}
k += 25; /* subnormal result */
SET_FLOAT_WORD(x, (ix & 0x807fffff) | (k << 23));
return x * twom25;
}
#endif
|
the_stack_data/114172.c | #include <stdio.h> // Archivo de cabecera para subrutinas de e/s
#include <stdlib.h> // Archivo de cabecera para subrutinas de utilidades
float a,b;
int main()
{ // Inicio
system("clear"); // Limpia pantalla
printf("Dame el primer número\n");
scanf("%f",&a); //Captura
printf("Valor inicial de a = %f\n",a);
b=++a;
printf("Valor de b en el momento de hacer la operacion ++a = %f\n",b);
printf("Valor de a después de hacer ++a = %f\n",a);
printf("Valor inicial de a = %f\n",a);
b=a++;
printf("Valor de b en el momento de hacer la operación a++ = %f\n",b);
printf("Valor de a después de hacer a++ = %f\n",a);
printf("Valor inicial de a = %f\n",a);
b=--a;
printf("Valor de b en el momento de hacer la operación --a = %f\n",b);
printf("Valor de a después de hacer --a = %f\n",a);
printf("Valor inicial de a = %f\n",a);
b=a--;
printf("Valor de b en el momento de hacer la operación a-- = %f\n",b);
printf("Valor de a después de hacer a-- = %f\n",a);
return 0;
} // Fin de programa
|
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