test_soft_label_loss.py 2.7 KB
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# Copyright (c) 2020  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 sys
sys.path.append("../")
import unittest
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import paddle
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from paddleslim.dist import merge, soft_label
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from layers import conv_bn_layer
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from static_case import StaticCase
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class TestSoftLabelLoss(StaticCase):
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    def test_soft_label_loss(self):
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        input = paddle.static.data(name="image", shape=[None, 3, 224, 224])
        conv1 = conv_bn_layer(input, 8, 3, "conv1")
        conv2 = conv_bn_layer(conv1, 8, 3, "conv2")
        student_predict = conv1 + conv2
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        teacher_main = paddle.static.Program()
        teacher_startup = paddle.static.Program()
        with paddle.static.program_guard(teacher_main, teacher_startup):
            input = paddle.static.data(name="image", shape=[None, 3, 224, 224])
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            conv1 = conv_bn_layer(input, 8, 3, "conv1")
            conv2 = conv_bn_layer(conv1, 8, 3, "conv2")
            sum1 = conv1 + conv2
            conv3 = conv_bn_layer(sum1, 8, 3, "conv3")
            conv4 = conv_bn_layer(conv3, 8, 3, "conv4")
            sum2 = conv4 + sum1
            conv5 = conv_bn_layer(sum2, 8, 3, "conv5")
            teacher_predict = conv_bn_layer(conv5, 8, 3, "conv6")

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        place = paddle.CPUPlace()
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        data_name_map = {'image': 'image'}
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        merge(teacher_main,
              paddle.static.default_main_program(), data_name_map, place)
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        merged_ops = []
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        for block in paddle.static.default_main_program().blocks:
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            for op in block.ops:
                merged_ops.append(op.type)
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        distill_loss = soft_label('teacher_conv6_bn_output.tmp_2',
                                  'conv2_bn_output.tmp_2')
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        loss_ops = []
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        for block in paddle.static.default_main_program().blocks:
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            for op in block.ops:
                loss_ops.append(op.type)
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        print(f"ret: {set(loss_ops).difference(set(merged_ops))}")
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        self.assertTrue(set(merged_ops).difference(set(loss_ops)) == set())
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        self.assertTrue({
            'softmax_with_cross_entropy', 'softmax', 'reduce_mean'
        }.issubset(set(loss_ops).difference(set(merged_ops))))
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if __name__ == '__main__':
    unittest.main()