test_imperative_framework.py 2.8 KB
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# Copyright (c) 2019 PaddlePaddle Authors. All Rights Reserved.
#
# 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 unittest
import paddle.fluid as fluid
import numpy as np
from test_imperative_base import new_program_scope
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from paddle.fluid.framework import _test_eager_guard
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class MLP(fluid.Layer):
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    def __init__(self, input_size):
        super(MLP, self).__init__()
        self._linear1 = fluid.dygraph.Linear(
            input_size,
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            3,
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            param_attr=fluid.ParamAttr(initializer=fluid.initializer.Constant(
                value=0.1)),
            bias_attr=fluid.ParamAttr(initializer=fluid.initializer.Constant(
                value=0.1)))
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        self._linear2 = fluid.dygraph.Linear(
            3,
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            4,
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            param_attr=fluid.ParamAttr(initializer=fluid.initializer.Constant(
                value=0.1)),
            bias_attr=fluid.ParamAttr(initializer=fluid.initializer.Constant(
                value=0.1)))
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    def forward(self, inputs):
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        x = self._linear1(inputs)
        x = self._linear2(x)
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        x = fluid.layers.reduce_sum(x)
        return x


class TestDygraphFramework(unittest.TestCase):
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    def func_test_dygraph_backward(self):
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        with new_program_scope():
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            mlp = MLP(input_size=2)
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            var_inp = fluid.layers.data("input",
                                        shape=[2, 2],
                                        dtype="float32",
                                        append_batch_size=False)
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            out = mlp(var_inp)
            try:
                out.backward()
                raise AssertionError(
                    "backward should not be usable in static graph mode")
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            except AssertionError as e:
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                self.assertTrue((e is not None))

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    def test_dygraph_backward(self):
        with _test_eager_guard():
            self.func_test_dygraph_backward()
        self.func_test_dygraph_backward()

    def func_test_dygraph_to_string(self):
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        np_inp = np.array([[1.0, 2.0], [3.0, 4.0]], dtype=np.float32)
        with fluid.dygraph.guard():
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            var_inp = fluid.dygraph.to_variable(np_inp)
            print(str(var_inp))
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    def test_dygraph_to_string(self):
        with _test_eager_guard():
            self.func_test_dygraph_to_string()
        self.func_test_dygraph_to_string()