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Michalis Spyrou542e92d2018-06-05 11:45:48 +01001/*
Michele Di Giorgiod9eaf612020-07-08 11:12:57 +01002 * Copyright (c) 2018 Arm Limited.
Michalis Spyrou542e92d2018-06-05 11:45:48 +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
20 * LIABILITY, WHETHER IN AN ACTION OF CONTRACT, TORT OR OTHERWISE, ARISING FROM,
21 * OUT OF OR IN CONNECTION WITH THE SOFTWARE OR THE USE OR OTHER DEALINGS IN THE
22 * SOFTWARE.
23 */
24#include "arm_compute/runtime/NEON/functions/NERNNLayer.h"
25#include "tests/NEON/Accessor.h"
26#include "tests/PaddingCalculator.h"
27#include "tests/datasets/RNNLayerDataset.h"
28#include "tests/framework/Asserts.h"
29#include "tests/framework/Macros.h"
30#include "tests/framework/datasets/Datasets.h"
31#include "tests/validation/Validation.h"
32#include "tests/validation/fixtures/RNNLayerFixture.h"
33
34namespace arm_compute
35{
36namespace test
37{
38namespace validation
39{
40namespace
41{
42RelativeTolerance<float> tolerance_f32(0.001f);
43RelativeTolerance<half> tolerance_f16(half(0.1));
44} // namespace
45
46TEST_SUITE(NEON)
47TEST_SUITE(RNNLayer)
48
49// *INDENT-OFF*
50// clang-format off
51DATA_TEST_CASE(Validate, framework::DatasetMode::ALL, zip(zip(zip(zip(zip(zip(zip(
Vidhya Sudhan Loganathan7485d5a2018-07-04 09:34:00 +010052 framework::dataset::make("InputInfo", { TensorInfo(TensorShape(27U, 13U), 1, DataType::U8), // Wrong data type
53 TensorInfo(TensorShape(27U, 13U, 2U), 1, DataType::F32), // Wrong input size
54 TensorInfo(TensorShape(27U, 13U), 1, DataType::F32), // Wrong weights size
55 TensorInfo(TensorShape(27U, 13U), 1, DataType::F32), // Wrong recurrent weights size
56 TensorInfo(TensorShape(27U, 13U), 1, DataType::F32), // Wrong bias size
57 TensorInfo(TensorShape(27U, 13U), 1, DataType::F32), // Wrong output size
58 TensorInfo(TensorShape(27U, 13U), 1, DataType::F32), // Wrong hidden output size
59 TensorInfo(TensorShape(32U, 32U), 1, DataType::F32),
Michalis Spyrou542e92d2018-06-05 11:45:48 +010060 }),
Vidhya Sudhan Loganathan7485d5a2018-07-04 09:34:00 +010061 framework::dataset::make("WeightsInfo", { TensorInfo(TensorShape(27U, 11U), 1, DataType::F32),
62 TensorInfo(TensorShape(27U, 11U), 1, DataType::F32),
63 TensorInfo(TensorShape(27U, 11U, 2U), 1, DataType::F32),
64 TensorInfo(TensorShape(27U, 11U), 1, DataType::F32),
65 TensorInfo(TensorShape(27U, 11U), 1, DataType::F32),
66 TensorInfo(TensorShape(27U, 11U), 1, DataType::F32),
67 TensorInfo(TensorShape(27U, 11U), 1, DataType::F32),
68 TensorInfo(TensorShape(32U, 32U), 1, DataType::F32),
Michalis Spyrou542e92d2018-06-05 11:45:48 +010069 })),
Vidhya Sudhan Loganathan7485d5a2018-07-04 09:34:00 +010070 framework::dataset::make("RecurrentWeightsInfo", { TensorInfo(TensorShape(11U, 11U), 1, DataType::F32),
71 TensorInfo(TensorShape(11U, 11U), 1, DataType::F32),
72 TensorInfo(TensorShape(11U, 11U), 1, DataType::F32),
73 TensorInfo(TensorShape(25U, 11U, 2U), 1, DataType::F32),
74 TensorInfo(TensorShape(11U, 11U), 1, DataType::F32),
75 TensorInfo(TensorShape(11U, 11U), 1, DataType::F32),
76 TensorInfo(TensorShape(11U, 11U), 1, DataType::F32),
77 TensorInfo(TensorShape(32U, 32U), 1, DataType::F32),
Michalis Spyrou542e92d2018-06-05 11:45:48 +010078 })),
Vidhya Sudhan Loganathan7485d5a2018-07-04 09:34:00 +010079 framework::dataset::make("BiasInfo", { TensorInfo(TensorShape(11U), 1, DataType::F32),
80 TensorInfo(TensorShape(11U), 1, DataType::F32),
81 TensorInfo(TensorShape(11U), 1, DataType::F32),
82 TensorInfo(TensorShape(11U), 1, DataType::F32),
83 TensorInfo(TensorShape(30U), 1, DataType::F32),
84 TensorInfo(TensorShape(11U), 1, DataType::F32),
85 TensorInfo(TensorShape(11U), 1, DataType::F32),
86 TensorInfo(TensorShape(32U), 1, DataType::F32),
Michalis Spyrou542e92d2018-06-05 11:45:48 +010087 })),
Vidhya Sudhan Loganathan7485d5a2018-07-04 09:34:00 +010088 framework::dataset::make("OutputInfo", { TensorInfo(TensorShape(11U, 13U), 1, DataType::F32),
89 TensorInfo(TensorShape(11U, 13U), 1, DataType::F32),
90 TensorInfo(TensorShape(11U, 13U), 1, DataType::F32),
91 TensorInfo(TensorShape(11U, 13U), 1, DataType::F32),
92 TensorInfo(TensorShape(11U, 13U), 1, DataType::F32),
93 TensorInfo(TensorShape(11U), 1, DataType::F32),
94 TensorInfo(TensorShape(11U, 13U), 1, DataType::F32),
95 TensorInfo(TensorShape(32U, 32U), 1, DataType::F32),
Michalis Spyrou542e92d2018-06-05 11:45:48 +010096 })),
Vidhya Sudhan Loganathan7485d5a2018-07-04 09:34:00 +010097 framework::dataset::make("HiddenStateInfo", { TensorInfo(TensorShape(11U, 13U), 1, DataType::F32),
98 TensorInfo(TensorShape(11U, 13U), 1, DataType::F32),
99 TensorInfo(TensorShape(11U, 13U), 1, DataType::F32),
100 TensorInfo(TensorShape(11U, 13U), 1, DataType::F32),
101 TensorInfo(TensorShape(11U, 13U), 1, DataType::F32),
102 TensorInfo(TensorShape(11U, 13U), 1, DataType::F32),
103 TensorInfo(TensorShape(11U, 13U, 2U), 1, DataType::F32),
104 TensorInfo(TensorShape(32U, 32U), 1, DataType::F32),
Michalis Spyrou542e92d2018-06-05 11:45:48 +0100105 })),
106 framework::dataset::make("ActivationInfo", { ActivationLayerInfo(ActivationLayerInfo::ActivationFunction::RELU),
107 ActivationLayerInfo(ActivationLayerInfo::ActivationFunction::RELU),
108 ActivationLayerInfo(ActivationLayerInfo::ActivationFunction::RELU),
109 ActivationLayerInfo(ActivationLayerInfo::ActivationFunction::RELU),
110 ActivationLayerInfo(ActivationLayerInfo::ActivationFunction::RELU),
111 ActivationLayerInfo(ActivationLayerInfo::ActivationFunction::RELU),
112 ActivationLayerInfo(ActivationLayerInfo::ActivationFunction::RELU),
113 ActivationLayerInfo(ActivationLayerInfo::ActivationFunction::RELU),
114 })),
115 framework::dataset::make("Expected", { false, false, false, false, false, false, false, true })),
116 input_info, weights_info, recurrent_weights_info, bias_info, output_info, hidden_output_info, info, expected)
117{
118 ARM_COMPUTE_EXPECT(bool(NERNNLayer::validate(&input_info.clone()->set_is_resizable(false), &weights_info.clone()->set_is_resizable(false), &recurrent_weights_info.clone()->set_is_resizable(false), &bias_info.clone()->set_is_resizable(false), &output_info.clone()->set_is_resizable(false), &hidden_output_info.clone()->set_is_resizable(false), info)) == expected, framework::LogLevel::ERRORS);
119}
120// clang-format on
121// *INDENT-ON*
122
123template <typename T>
124using NERNNLayerFixture = RNNLayerValidationFixture<Tensor, Accessor, NERNNLayer, T>;
125
126TEST_SUITE(FP32)
127FIXTURE_DATA_TEST_CASE(RunSmall, NERNNLayerFixture<float>, framework::DatasetMode::ALL, combine(datasets::SmallRNNLayerDataset(), framework::dataset::make("DataType", DataType::F32)))
128{
129 // Validate output
130 validate(Accessor(_target), _reference, tolerance_f32);
131}
132TEST_SUITE_END() // FP32
133
134#ifdef __ARM_FEATURE_FP16_VECTOR_ARITHMETIC
135TEST_SUITE(FP16)
136FIXTURE_DATA_TEST_CASE(RunSmall, NERNNLayerFixture<half>, framework::DatasetMode::ALL, combine(datasets::SmallRNNLayerDataset(), framework::dataset::make("DataType", DataType::F16)))
137{
138 // Validate output
139 validate(Accessor(_target), _reference, tolerance_f16);
140}
141TEST_SUITE_END() // FP16
142#endif /* __ARM_FEATURE_FP16_VECTOR_ARITHMETIC */
143TEST_SUITE_END() // RNNLayer
144TEST_SUITE_END() // NEON
145} // namespace validation
146} // namespace test
147} // namespace arm_compute