test_mul_op.py 5.8 KB
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#   Copyright (c) 2018 PaddlePaddle Authors. All Rights Reserved.
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#
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# 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
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#
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#     http://www.apache.org/licenses/LICENSE-2.0
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#
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# 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.

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from __future__ import print_function

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import unittest
import numpy as np
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import paddle
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import paddle.fluid.core as core
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import sys
sys.path.append("..")
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from op_test import OpTest
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import paddle.fluid as fluid
from paddle.fluid import Program, program_guard
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class TestMulOp(OpTest):
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    def setUp(self):
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        self.op_type = "mul"
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        self.dtype = np.float64
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        self.init_dtype_type()
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        self.inputs = {
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            'X': np.random.random((20, 5)).astype(self.dtype),
            'Y': np.random.random((5, 21)).astype(self.dtype)
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        }
        self.outputs = {'Out': np.dot(self.inputs['X'], self.inputs['Y'])}
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    def init_dtype_type(self):
        pass

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    def test_check_output(self):
        self.check_output()

    def test_check_grad_normal(self):
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        self.check_grad(['X', 'Y'], 'Out')
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    def test_check_grad_ingore_x(self):
        self.check_grad(
            ['Y'], 'Out', max_relative_error=0.5, no_grad_set=set("X"))
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    def test_check_grad_ingore_y(self):
        self.check_grad(
            ['X'], 'Out', max_relative_error=0.5, no_grad_set=set('Y'))


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class TestMulOpError(unittest.TestCase):
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    def test_errors(self):
        with program_guard(Program(), Program()):
            # The input type of mul_op must be Variable.
            x1 = fluid.create_lod_tensor(
                np.array([[-1]]), [[1]], fluid.CPUPlace())
            x2 = fluid.create_lod_tensor(
                np.array([[-1]]), [[1]], fluid.CPUPlace())
            self.assertRaises(TypeError, fluid.layers.mul, x1, x2)
            # The input dtype of mul_op must be float32 or float64.
            x3 = fluid.layers.data(name='x3', shape=[4], dtype="int32")
            x4 = fluid.layers.data(name='x4', shape=[4], dtype="int32")
            self.assertRaises(TypeError, fluid.layers.mul, x3, x4)


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class TestMulOp2(OpTest):
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    def setUp(self):
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        self.op_type = "mul"
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        self.dtype = np.float64
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        self.init_dtype_type()
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        self.inputs = {
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            'X': np.random.random((3, 4, 2, 9)).astype(self.dtype),
            'Y': np.random.random((3, 6, 1, 2, 3)).astype(self.dtype)
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        }
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        self.attrs = {
            'x_num_col_dims': 2,
            'y_num_col_dims': 2,
        }
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        result = np.dot(self.inputs['X'].reshape(3 * 4, 2 * 9),
                        self.inputs['Y'].reshape(3 * 6, 1 * 2 * 3))
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        result = result.reshape(3, 4, 1, 2, 3)
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        self.outputs = {'Out': result}
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    def init_dtype_type(self):
        pass

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    def test_check_output(self):
        self.check_output()
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    def test_check_grad_normal(self):
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        self.check_grad(['X', 'Y'], 'Out')
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    def test_check_grad_ingore_x(self):
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        self.check_grad(
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            ['Y'], 'Out', max_relative_error=0.5, no_grad_set=set('X'))
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    def test_check_grad_ignore_y(self):
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        self.check_grad(
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            ['X'], 'Out', max_relative_error=0.5, no_grad_set=set('Y'))
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@unittest.skipIf(not core.is_compiled_with_cuda(),
                 "core is not compiled with CUDA")
class TestFP16MulOp1(TestMulOp):
    def init_dtype_type(self):
        self.dtype = np.float16
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    def test_check_output(self):
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        place = core.CUDAPlace(0)
        if core.is_float16_supported(place):
            self.check_output_with_place(place, atol=1e-1)
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    def test_check_grad_normal(self):
        place = core.CUDAPlace(0)
        if core.is_float16_supported(place):
            self.check_grad_with_place(
                place, ['X', 'Y'], 'Out', max_relative_error=0.5)
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    def test_check_grad_ingore_x(self):
        place = core.CUDAPlace(0)
        if core.is_float16_supported(place):
            self.check_grad_with_place(
                place, ['Y'],
                'Out',
                max_relative_error=0.5,
                no_grad_set=set("X"))

    def test_check_grad_ingore_y(self):
        place = core.CUDAPlace(0)
        if core.is_float16_supported(place):
            self.check_grad_with_place(
                place, ['X'],
                'Out',
                max_relative_error=0.5,
                no_grad_set=set('Y'))


@unittest.skipIf(not core.is_compiled_with_cuda(),
                 "core is not compiled with CUDA")
class TestFP16MulOp2(TestMulOp2):
    def init_dtype_type(self):
        self.dtype = np.float16
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    def test_check_output(self):
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        place = core.CUDAPlace(0)
        if core.is_float16_supported(place):
            self.check_output_with_place(place, atol=2e-1)

    def test_check_grad_normal(self):
        place = core.CUDAPlace(0)
        if core.is_float16_supported(place):
            self.check_grad_with_place(
                place, ['X', 'Y'], 'Out', max_relative_error=0.9)

    def test_check_grad_ingore_x(self):
        place = core.CUDAPlace(0)
        if core.is_float16_supported(place):
            self.check_grad_with_place(
                place, ['Y'],
                'Out',
                max_relative_error=0.5,
                no_grad_set=set("X"))

    def test_check_grad_ingore_y(self):
        place = core.CUDAPlace(0)
        if core.is_float16_supported(place):
            self.check_grad_with_place(
                place, ['X'],
                'Out',
                max_relative_error=0.9,
                no_grad_set=set('Y'))
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if __name__ == "__main__":
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    unittest.main()