forked from mindspore-Ecosystem/mindspore
* fix ci error
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e71b601e65
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@ -1054,7 +1054,7 @@ def roll(a, shift, axis=None):
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Tensor, with the same shape as a.
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Supported Platforms:
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``Ascend`` ``GPU`` ``CPU``
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``GPU``
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Raises:
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TypeError: If input arguments have types not specified above.
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@ -1635,7 +1635,7 @@ def flip(m, axis=None):
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TypeError: if the input is not a tensor.
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Supported Platforms:
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``Ascend`` ``GPU`` ``CPU``
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``GPU``
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Example:
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>>> import mindspore.numpy as np
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@ -1689,7 +1689,7 @@ def flipud(m):
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TypeError: if the input is not a tensor.
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Supported Platforms:
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``Ascend`` ``GPU`` ``CPU``
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``GPU``
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Example:
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>>> import mindspore.numpy as np
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@ -1722,7 +1722,7 @@ def fliplr(m):
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TypeError: if the input is not a tensor.
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Supported Platforms:
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``Ascend`` ``GPU`` ``CPU``
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``GPU``
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Example:
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>>> import mindspore.numpy as np
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@ -1991,7 +1991,7 @@ def rot90(a, k=1, axes=(0, 1)):
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the length of `axes` is not `2`.
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Supported Platforms:
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``Ascend`` ``GPU`` ``CPU``
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``GPU``
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Examples:
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>>> import mindspore.numpy as np
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@ -590,7 +590,7 @@ def in1d(ar1, ar2, invert=False):
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# F.reduce_sum only supports float
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res = F.reduce_sum(included.astype(mstype.float32), -1).astype(mstype.bool_)
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if invert:
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res = F.equal(res, _to_tensor(False))
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res = F.logical_not(res)
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return res
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@ -2276,7 +2276,7 @@ def convolve(a, v, mode='full'):
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ValueError: if a and v are empty or have wrong dimensions
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Supported Platforms:
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``Ascend`` ``GPU`` ``CPU``
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``GPU``
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Examples:
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>>> import mindspore.numpy as np
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@ -821,10 +821,10 @@ def test_vander():
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for i in range(3):
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mnp_vander = mnp.vander(to_tensor(arrs[i]))
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onp_vander = onp.vander(arrs[i])
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match_all_arrays(mnp_vander, onp_vander)
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match_all_arrays(mnp_vander, onp_vander, error=1e-4)
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mnp_vander = mnp.vander(to_tensor(arrs[i]), N=2, increasing=True)
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onp_vander = onp.vander(arrs[i], N=2, increasing=True)
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match_all_arrays(mnp_vander, onp_vander)
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match_all_arrays(mnp_vander, onp_vander, error=1e-4)
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@pytest.mark.level1
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@ -1480,7 +1480,7 @@ def onp_rot90(input_array):
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return a, b, c, d, e, f, g, h
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@pytest.mark.level1
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@pytest.mark.level2
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@pytest.mark.platform_arm_ascend_training
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@pytest.mark.platform_x86_ascend_training
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@pytest.mark.platform_x86_gpu_training
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@ -272,8 +272,6 @@ def test_isscalar():
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@pytest.mark.level1
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@pytest.mark.platform_arm_ascend_training
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@pytest.mark.platform_x86_ascend_training
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@pytest.mark.platform_x86_gpu_training
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@pytest.mark.platform_x86_cpu
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@pytest.mark.env_onecard
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@ -1503,7 +1503,7 @@ def test_arcsin():
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arr = onp.random.uniform(-1, 1, 12).astype('float32')
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onp_asin = onp_arcsin(arr)
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mnp_asin = mnp_arcsin(to_tensor(arr))
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match_array(mnp_asin.asnumpy(), onp_asin, error=5)
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match_array(mnp_asin.asnumpy(), onp_asin, error=3)
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def mnp_arccos(x):
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@ -1524,7 +1524,7 @@ def test_arccos():
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arr = onp.random.uniform(-1, 1, 12).astype('float32')
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onp_acos = onp_arccos(arr)
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mnp_acos = mnp_arccos(to_tensor(arr))
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match_array(mnp_acos.asnumpy(), onp_acos, error=5)
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match_array(mnp_acos.asnumpy(), onp_acos, error=2)
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def mnp_arctan(x):
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@ -1685,7 +1685,7 @@ def onp_arctan2(x, y):
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@pytest.mark.platform_x86_cpu
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@pytest.mark.env_onecard
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def test_arctan2():
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run_binop_test(mnp_arctan2, onp_arctan2, test_case)
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run_binop_test(mnp_arctan2, onp_arctan2, test_case, error=5)
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def mnp_convolve(mode):
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@ -1707,10 +1707,7 @@ def onp_convolve(mode):
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@pytest.mark.level1
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@pytest.mark.platform_arm_ascend_training
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@pytest.mark.platform_x86_ascend_training
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@pytest.mark.platform_x86_gpu_training
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@pytest.mark.platform_x86_cpu
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@pytest.mark.env_onecard
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def test_convolve():
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for mode in ['full', 'same', 'valid']:
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