未验证 提交 a0e9b7b9 编写于 作者: R ruri 提交者: GitHub

add unittest for square error cost op (#19746)

* add unit test for square error cost op
上级 b34933d9
...@@ -1912,6 +1912,14 @@ class TestBook(LayerTest): ...@@ -1912,6 +1912,14 @@ class TestBook(LayerTest):
out = layers.pixel_shuffle(x, upscale_factor=3) out = layers.pixel_shuffle(x, upscale_factor=3)
return (out) return (out)
def make_square_error_cost(self):
with program_guard(fluid.default_main_program(),
fluid.default_startup_program()):
x = self._get_data(name="X", shape=[1], dtype="float32")
y = self._get_data(name="Y", shape=[1], dtype="float32")
out = layers.square_error_cost(input=x, label=y)
return (out)
def test_dynamic_lstmp(self): def test_dynamic_lstmp(self):
# TODO(minqiyang): dygraph do not support lod now # TODO(minqiyang): dygraph do not support lod now
with self.static_graph(): with self.static_graph():
......
# 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.
from __future__ import print_function
import unittest
import numpy as np
import sys
import paddle.fluid.core as core
import paddle.fluid as fluid
import paddle.fluid.layers as layers
from paddle.fluid.executor import Executor
class TestSquareErrorCost(unittest.TestCase):
def test_square_error_cost(self):
input_val = np.random.uniform(0.1, 0.5, (2, 3)).astype("float32")
label_val = np.random.uniform(0.1, 0.5, (2, 3)).astype("float32")
sub = input_val - label_val
np_result = sub * sub
input_var = layers.create_tensor(dtype="float32", name="input")
label_var = layers.create_tensor(dtype="float32", name="label")
layers.assign(input=input_val, output=input_var)
layers.assign(input=label_val, output=label_var)
output = layers.square_error_cost(input=input_var, label=label_var)
for use_cuda in ([False, True]
if core.is_compiled_with_cuda() else [False]):
place = fluid.CUDAPlace(0) if use_cuda else fluid.CPUPlace()
exe = Executor(place)
result = exe.run(fluid.default_main_program(),
feed={"input": input_var,
"label": label_var},
fetch_list=[output])
self.assertTrue(np.isclose(np_result, result).all())
if __name__ == "__main__":
unittest.main()
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