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- # Copyright 2020-2021 Huawei Technologies Co., Ltd
- #
- # 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.
- # ============================================================================
-
- import numpy as np
- import pytest
-
- import mindspore.context as context
- import mindspore.nn as nn
- from mindspore import Tensor
- from mindspore.ops import operations as P
-
- context.set_context(mode=context.GRAPH_MODE, device_target='CPU')
-
-
- class OpNetWrapper(nn.Cell):
- def __init__(self, op):
- super(OpNetWrapper, self).__init__()
- self.op = op
-
- def construct(self, *inputs):
- return self.op(*inputs)
-
-
- @pytest.mark.level0
- @pytest.mark.platform_x86_cpu
- @pytest.mark.env_onecard
- def test_logicaland():
- op = P.LogicalAnd()
- op_wrapper = OpNetWrapper(op)
-
- input_x = Tensor(np.array([True, False, False]))
- input_y = Tensor(np.array([True, True, False]))
- outputs = op_wrapper(input_x, input_y)
-
- assert np.allclose(outputs.asnumpy(), (True, False, False))
-
-
- @pytest.mark.level0
- @pytest.mark.platform_x86_cpu
- @pytest.mark.env_onecard
- def test_logicalor():
- op = P.LogicalOr()
- op_wrapper = OpNetWrapper(op)
-
- input_x = Tensor(np.array([True, False, False]))
- input_y = Tensor(np.array([True, True, False]))
- outputs = op_wrapper(input_x, input_y)
-
- assert np.allclose(outputs.asnumpy(), (True, True, False))
-
-
- @pytest.mark.level0
- @pytest.mark.platform_x86_cpu
- @pytest.mark.env_onecard
- def test_logicalnot():
- op = P.LogicalNot()
- op_wrapper = OpNetWrapper(op)
-
- input_x = Tensor(np.array([True, False, False]))
- outputs = op_wrapper(input_x)
-
- assert np.allclose(outputs.asnumpy(), (False, True, True))
-
-
- if __name__ == '__main__':
- test_logicaland()
- test_logicalor()
- test_logicalnot()
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