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SiCong Li1e5c1572017-07-27 17:58:52 +01001/*
Anthony Barbier72856ab2018-01-11 10:45:24 +00002 * Copyright (c) 2017-2018 ARM Limited.
SiCong Li1e5c1572017-07-27 17:58:52 +01003 *
4 * SPDX-License-Identifier: MIT
5 *
6 * Permission is hereby granted, free of charge, to any person obtaining a copy
7 * of this software and associated documentation files (the "Software"), to
8 * deal in the Software without restriction, including without limitation the
9 * rights to use, copy, modify, merge, publish, distribute, sublicense, and/or
10 * sell copies of the Software, and to permit persons to whom the Software is
11 * furnished to do so, subject to the following conditions:
12 *
13 * The above copyright notice and this permission notice shall be included in all
14 * copies or substantial portions of the Software.
15 *
16 * THE SOFTWARE IS PROVIDED "AS IS", WITHOUT WARRANTY OF ANY KIND, EXPRESS OR
17 * IMPLIED, INCLUDING BUT NOT LIMITED TO THE WARRANTIES OF MERCHANTABILITY,
18 * FITNESS FOR A PARTICULAR PURPOSE AND NONINFRINGEMENT. IN NO EVENT SHALL THE
19 * AUTHORS OR COPYRIGHT HOLDERS BE LIABLE FOR ANY CLAIM, DAMAGES OR OTHER
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22 * SOFTWARE.
23 */
24#ifndef ARM_COMPUTE_TEST_BATCHNORMALIZATIONLAYERFIXTURE
25#define ARM_COMPUTE_TEST_BATCHNORMALIZATIONLAYERFIXTURE
26
27#include "arm_compute/core/TensorShape.h"
28#include "arm_compute/core/Types.h"
SiCong Li1e5c1572017-07-27 17:58:52 +010029#include "tests/Globals.h"
30#include "tests/Utils.h"
Moritz Pflanzera09de0c2017-09-01 20:41:12 +010031#include "tests/framework/Fixture.h"
SiCong Li1e5c1572017-07-27 17:58:52 +010032
33namespace arm_compute
34{
35namespace test
36{
37/** Fixture that can be used for NEON and CL */
38template <typename TensorType, typename Function, typename Accessor>
39class BatchNormalizationLayerFixture : public framework::Fixture
40{
41public:
42 template <typename...>
43 void setup(TensorShape tensor_shape, TensorShape param_shape, float epsilon, DataType data_type, int batches)
44 {
45 // Set batched in source and destination shapes
46 const unsigned int fixed_point_position = 4;
47 tensor_shape.set(tensor_shape.num_dimensions(), batches);
48
49 // Create tensors
50 src = create_tensor<TensorType>(tensor_shape, data_type, 1, fixed_point_position);
51 dst = create_tensor<TensorType>(tensor_shape, data_type, 1, fixed_point_position);
52 mean = create_tensor<TensorType>(param_shape, data_type, 1, fixed_point_position);
53 variance = create_tensor<TensorType>(param_shape, data_type, 1, fixed_point_position);
54 beta = create_tensor<TensorType>(param_shape, data_type, 1, fixed_point_position);
55 gamma = create_tensor<TensorType>(param_shape, data_type, 1, fixed_point_position);
56
57 // Create and configure function
58 batch_norm_layer.configure(&src, &dst, &mean, &variance, &beta, &gamma, epsilon);
59
60 // Allocate tensors
61 src.allocator()->allocate();
62 dst.allocator()->allocate();
63 mean.allocator()->allocate();
64 variance.allocator()->allocate();
65 beta.allocator()->allocate();
66 gamma.allocator()->allocate();
SiCong Li1e5c1572017-07-27 17:58:52 +010067 }
68
69 void run()
70 {
71 batch_norm_layer.run();
Joel Liang1c5ffd62017-12-28 10:09:51 +080072 }
73
74 void sync()
75 {
76 sync_if_necessary<TensorType>();
77 sync_tensor_if_necessary<TensorType>(dst);
SiCong Li1e5c1572017-07-27 17:58:52 +010078 }
79
80 void teardown()
81 {
82 src.allocator()->free();
83 dst.allocator()->free();
84 mean.allocator()->free();
85 variance.allocator()->free();
86 beta.allocator()->free();
87 gamma.allocator()->free();
88 }
89
90private:
91 TensorType src{};
92 TensorType dst{};
93 TensorType mean{};
94 TensorType variance{};
95 TensorType beta{};
96 TensorType gamma{};
97 Function batch_norm_layer{};
98};
99} // namespace test
100} // namespace arm_compute
101#endif /* ARM_COMPUTE_TEST_BATCHNORMALIZATIONLAYERFIXTURE */