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import json |
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import logging |
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import os |
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import sys |
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from time import time |
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from unittest.mock import patch |
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from transformers.testing_utils import TestCasePlus, require_torch_tpu |
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logging.basicConfig(level=logging.DEBUG) |
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logger = logging.getLogger() |
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def get_results(output_dir): |
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results = {} |
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path = os.path.join(output_dir, "all_results.json") |
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if os.path.exists(path): |
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with open(path, "r") as f: |
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results = json.load(f) |
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else: |
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raise ValueError(f"can't find {path}") |
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return results |
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stream_handler = logging.StreamHandler(sys.stdout) |
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logger.addHandler(stream_handler) |
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@require_torch_tpu |
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class TorchXLAExamplesTests(TestCasePlus): |
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def test_run_glue(self): |
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import xla_spawn |
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tmp_dir = self.get_auto_remove_tmp_dir() |
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testargs = f""" |
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./examples/pytorch/text-classification/run_glue.py |
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--num_cores=8 |
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./examples/pytorch/text-classification/run_glue.py |
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--model_name_or_path distilbert-base-uncased |
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--output_dir {tmp_dir} |
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--overwrite_output_dir |
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--train_file ./tests/fixtures/tests_samples/MRPC/train.csv |
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--validation_file ./tests/fixtures/tests_samples/MRPC/dev.csv |
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--do_train |
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--do_eval |
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--debug tpu_metrics_debug |
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--per_device_train_batch_size=2 |
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--per_device_eval_batch_size=1 |
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--learning_rate=1e-4 |
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--max_steps=10 |
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--warmup_steps=2 |
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--seed=42 |
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--max_seq_length=128 |
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""".split() |
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with patch.object(sys, "argv", testargs): |
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start = time() |
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xla_spawn.main() |
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end = time() |
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result = get_results(tmp_dir) |
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self.assertGreaterEqual(result["eval_accuracy"], 0.75) |
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self.assertLess(end - start, 500) |
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def test_trainer_tpu(self): |
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import xla_spawn |
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testargs = """ |
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./tests/test_trainer_tpu.py |
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--num_cores=8 |
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./tests/test_trainer_tpu.py |
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""".split() |
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with patch.object(sys, "argv", testargs): |
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xla_spawn.main() |
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