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from _typeshed import Incomplete |
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import numpy as np |
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from numpy.lib._function_base_impl import average |
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from numpy.lib._index_tricks_impl import AxisConcatenator |
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from .core import MaskedArray, dot |
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__all__ = [ |
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"apply_along_axis", |
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"apply_over_axes", |
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"atleast_1d", |
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"atleast_2d", |
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"atleast_3d", |
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"average", |
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"clump_masked", |
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"clump_unmasked", |
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"column_stack", |
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"compress_cols", |
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"compress_nd", |
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"compress_rowcols", |
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"compress_rows", |
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"corrcoef", |
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"count_masked", |
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"cov", |
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"diagflat", |
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"dot", |
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"dstack", |
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"ediff1d", |
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"flatnotmasked_contiguous", |
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"flatnotmasked_edges", |
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"hsplit", |
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"hstack", |
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"in1d", |
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"intersect1d", |
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"isin", |
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"mask_cols", |
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"mask_rowcols", |
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"mask_rows", |
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"masked_all", |
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"masked_all_like", |
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"median", |
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"mr_", |
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"ndenumerate", |
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"notmasked_contiguous", |
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"notmasked_edges", |
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"polyfit", |
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"row_stack", |
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"setdiff1d", |
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"setxor1d", |
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"stack", |
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"union1d", |
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"unique", |
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"vander", |
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"vstack", |
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] |
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def count_masked(arr, axis=...): ... |
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def masked_all(shape, dtype = ...): ... |
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def masked_all_like(arr): ... |
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class _fromnxfunction: |
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__name__: Incomplete |
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__doc__: Incomplete |
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def __init__(self, funcname) -> None: ... |
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def getdoc(self): ... |
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def __call__(self, *args, **params): ... |
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class _fromnxfunction_single(_fromnxfunction): |
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def __call__(self, x, *args, **params): ... |
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class _fromnxfunction_seq(_fromnxfunction): |
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def __call__(self, x, *args, **params): ... |
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class _fromnxfunction_allargs(_fromnxfunction): |
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def __call__(self, *args, **params): ... |
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atleast_1d: _fromnxfunction_allargs |
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atleast_2d: _fromnxfunction_allargs |
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atleast_3d: _fromnxfunction_allargs |
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vstack: _fromnxfunction_seq |
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row_stack: _fromnxfunction_seq |
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hstack: _fromnxfunction_seq |
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column_stack: _fromnxfunction_seq |
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dstack: _fromnxfunction_seq |
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stack: _fromnxfunction_seq |
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hsplit: _fromnxfunction_single |
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diagflat: _fromnxfunction_single |
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def apply_along_axis(func1d, axis, arr, *args, **kwargs): ... |
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def apply_over_axes(func, a, axes): ... |
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def median(a, axis=..., out=..., overwrite_input=..., keepdims=...): ... |
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def compress_nd(x, axis=...): ... |
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def compress_rowcols(x, axis=...): ... |
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def compress_rows(a): ... |
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def compress_cols(a): ... |
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def mask_rows(a, axis = ...): ... |
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def mask_cols(a, axis = ...): ... |
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def ediff1d(arr, to_end=..., to_begin=...): ... |
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def unique(ar1, return_index=..., return_inverse=...): ... |
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def intersect1d(ar1, ar2, assume_unique=...): ... |
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def setxor1d(ar1, ar2, assume_unique=...): ... |
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def in1d(ar1, ar2, assume_unique=..., invert=...): ... |
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def isin(element, test_elements, assume_unique=..., invert=...): ... |
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def union1d(ar1, ar2): ... |
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def setdiff1d(ar1, ar2, assume_unique=...): ... |
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def cov(x, y=..., rowvar=..., bias=..., allow_masked=..., ddof=...): ... |
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def corrcoef(x, y=..., rowvar=..., bias = ..., allow_masked=..., ddof = ...): ... |
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class MAxisConcatenator(AxisConcatenator): |
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@staticmethod |
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def concatenate(arrays: Incomplete, axis: int = 0) -> Incomplete: ... |
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@classmethod |
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def makemat(cls, arr: Incomplete) -> Incomplete: ... |
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class mr_class(MAxisConcatenator): |
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def __init__(self) -> None: ... |
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mr_: mr_class |
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def ndenumerate(a, compressed=...): ... |
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def flatnotmasked_edges(a): ... |
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def notmasked_edges(a, axis=...): ... |
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def flatnotmasked_contiguous(a): ... |
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def notmasked_contiguous(a, axis=...): ... |
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def clump_unmasked(a): ... |
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def clump_masked(a): ... |
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def vander(x, n=...): ... |
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def polyfit(x, y, deg, rcond=..., full=..., w=..., cov=...): ... |
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def mask_rowcols(a: Incomplete, axis: Incomplete | None = None) -> MaskedArray[Incomplete, np.dtype[Incomplete]]: ... |
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