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Anthony Barbier6ff3b192017-09-04 18:44:23 +01001/*
Michele Di Giorgiod9eaf612020-07-08 11:12:57 +01002 * Copyright (c) 2017-2020 Arm Limited.
Anthony Barbier6ff3b192017-09-04 18:44:23 +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 */
Michalis Spyrouf4643372019-11-29 16:17:13 +000024#ifndef ARM_COMPUTE_NEFULLYCONNECTEDLAYER_H
25#define ARM_COMPUTE_NEFULLYCONNECTEDLAYER_H
Anthony Barbier6ff3b192017-09-04 18:44:23 +010026
27#include "arm_compute/runtime/IFunction.h"
28
Georgios Pinitasbaf174e2017-09-08 19:47:30 +010029#include "arm_compute/runtime/MemoryGroup.h"
Georgios Pinitasef776a82018-07-25 17:57:49 +010030#include "arm_compute/runtime/NEON/functions/NEConvertFullyConnectedWeights.h"
Michalis Spyrouebcebf12020-10-21 00:04:14 +010031#include "arm_compute/runtime/NEON/functions/NEFlattenLayer.h"
Giorgio Arenaa855af12018-07-16 17:20:38 +010032#include "arm_compute/runtime/NEON/functions/NEGEMM.h"
33#include "arm_compute/runtime/NEON/functions/NEGEMMLowpMatrixMultiplyCore.h"
Anthony Barbier6ff3b192017-09-04 18:44:23 +010034#include "arm_compute/runtime/Tensor.h"
35
36namespace arm_compute
37{
Michalis Spyrouebcebf12020-10-21 00:04:14 +010038class NEFlattenLayerKernel;
39
Anthony Barbier6ff3b192017-09-04 18:44:23 +010040/** Basic function to reshape the weights of Fully Connected layer with NEON. This function calls the following kernels:
41 *
Anthony Barbier6ff3b192017-09-04 18:44:23 +010042 * @note The fully connected layer accepts "weights" tensors only with 2 dimensions.
43 */
Michalis Spyrou95abfdd2018-11-28 14:59:47 +000044class NEFullyConnectedLayerReshapeWeights : public INESimpleFunctionNoBorder
Anthony Barbier6ff3b192017-09-04 18:44:23 +010045{
46public:
Michalis Spyrouebcebf12020-10-21 00:04:14 +010047 /** Constructor */
48 NEFullyConnectedLayerReshapeWeights() = default;
49 /** Prevent instances of this class from being copied (As this class contains pointers) */
50 NEFullyConnectedLayerReshapeWeights(const NEFullyConnectedLayerReshapeWeights &) = delete;
51 /** Prevent instances of this class from being copied (As this class contains pointers) */
52 NEFullyConnectedLayerReshapeWeights &operator=(const NEFullyConnectedLayerReshapeWeights &) = delete;
53 /** Prevent instances of this class from being moved (As this class contains non movable objects) */
54 NEFullyConnectedLayerReshapeWeights(NEFullyConnectedLayerReshapeWeights &&) = delete;
55 /** Prevent instances of this class from being moved (As this class contains non movable objects) */
56 NEFullyConnectedLayerReshapeWeights &operator=(NEFullyConnectedLayerReshapeWeights &&) = delete;
57 /** Default destructor */
58 ~NEFullyConnectedLayerReshapeWeights() = default;
Anthony Barbier6ff3b192017-09-04 18:44:23 +010059 /** Set the input and output tensors.
60 *
Georgios Pinitas33843562019-12-10 13:33:18 +000061 * @param[in] input Weights tensor. The weights must be 2 dimensional. Data types supported: QASYMM8/QASYMM8_SIGNED/F16/F32.
Giorgio Arenaa855af12018-07-16 17:20:38 +010062 * @param[out] output Destination tensor. Data type supported: Same as @p input.
Anthony Barbier6ff3b192017-09-04 18:44:23 +010063 */
Giorgio Arenaa855af12018-07-16 17:20:38 +010064 void configure(const ITensor *input, ITensor *output);
Giorgio Arena6200fa42018-07-06 17:06:36 +010065 /** Static function to check if given info will lead to a valid configuration of @ref NEFullyConnectedLayerReshapeWeights
Ioan-Cristian Szabob4e3e1c2017-11-30 17:17:17 +000066 *
Georgios Pinitas33843562019-12-10 13:33:18 +000067 * @param[in] input Weights tensor info. The weights must be 2 dimensional. Data types supported: QASYMM8/QASYMM8_SIGNED/F16/F32.
Giorgio Arenaa855af12018-07-16 17:20:38 +010068 * @param[in] output Destination tensor info. Data type supported: Same as @p input.
Ioan-Cristian Szabob4e3e1c2017-11-30 17:17:17 +000069 *
70 * @return a status
71 */
Giorgio Arenaa855af12018-07-16 17:20:38 +010072 static Status validate(const ITensorInfo *input, const ITensorInfo *output);
Anthony Barbier6ff3b192017-09-04 18:44:23 +010073};
74
Michalis Spyrou1a569a32019-09-10 17:20:34 +010075namespace weights_transformations
76{
77/** Basic function to manage the reshape weights generated from @ref NEFullyConnectedLayerReshapeWeights */
78class NEFullyConnectedLayerReshapeWeightsManaged : public ITransformWeights
79{
80public:
81 void run() override
82 {
83 _output.allocator()->allocate();
84 _func.run();
85 _reshape_run = true;
86 }
87
88 void release() override
89 {
90 _output.allocator()->free();
91 }
92
93 ITensor *get_weights() override
94 {
95 return &_output;
96 }
97
98 uint32_t uid() override
99 {
100 return _uid;
101 }
102
103 void configure(const ITensor *input)
104 {
105 _func.configure(input, &_output);
106 }
107
108private:
109 static constexpr uint32_t _uid = 0x0;
110 Tensor _output{};
111 NEFullyConnectedLayerReshapeWeights _func{};
112};
113} // namespace weights_transformations
114
Anthony Barbier6ff3b192017-09-04 18:44:23 +0100115/** Basic function to compute a Fully Connected layer on NEON. This function calls the following NEON kernels:
Giorgio Arenaa855af12018-07-16 17:20:38 +0100116 * -# @ref NEIm2ColKernel (called when the input comes from a convolutional layer)
117 * -# @ref NEFullyConnectedLayerReshapeWeights (if @p are_weights_reshaped is set to false and transpose_weights is set to true ) (called once)
118 * -# @ref NEGEMMMatrixMultiplyKernel or @ref NEGEMMLowpMatrixMultiplyCore (if quantized asymmetric)
SiCong Liadb32912020-02-17 16:39:27 +0000119 * -# @ref NEGEMMMatrixAdditionKernel or @ref NEGEMMLowpQuantizeDownInt32ToUint8ScaleByFixedPoint (if quantized asymmetric) (if @p biases is not equal to nullptr)
Anthony Barbier6ff3b192017-09-04 18:44:23 +0100120 *
121 * @note The fully connected layer accepts "weights" tensors only with 2 dimensions.
122 */
123class NEFullyConnectedLayer : public IFunction
124{
125public:
126 /** Constructor */
Michalis Spyrou1a569a32019-09-10 17:20:34 +0100127 NEFullyConnectedLayer(std::shared_ptr<IMemoryManager> memory_manager = nullptr, IWeightsManager *weights_manager = nullptr);
Georgios Pinitas1562be32018-03-08 19:09:19 +0000128 /** Prevent instances of this class from being copied (As this class contains pointers) */
129 NEFullyConnectedLayer(const NEFullyConnectedLayer &) = delete;
Michalis Spyrou770dfeb2020-11-04 18:55:34 +0000130 /** Prevent instances of this class from being moved (As this class contains pointers) */
131 NEFullyConnectedLayer(NEFullyConnectedLayer &&) = delete;
Georgios Pinitas1562be32018-03-08 19:09:19 +0000132 /** Prevent instances of this class from being copied (As this class contains pointers) */
133 NEFullyConnectedLayer &operator=(const NEFullyConnectedLayer &) = delete;
Michalis Spyrou770dfeb2020-11-04 18:55:34 +0000134 /** Prevent instances of this class from being moved (As this class contains pointers) */
135 NEFullyConnectedLayer &operator=(NEFullyConnectedLayer &&) = delete;
Michalis Spyrouebcebf12020-10-21 00:04:14 +0100136 /** Default destructor */
137 ~NEFullyConnectedLayer();
Anthony Barbier6ff3b192017-09-04 18:44:23 +0100138 /** Set the input and output tensors.
139 *
Michele Di Giorgio9c700372020-01-08 11:33:44 +0000140 * @param[in] input Source tensor. Data type supported: QASYMM8/QASYMM8_SIGNED/F16/F32.
Giorgio Arenaa855af12018-07-16 17:20:38 +0100141 * @param[in] weights Weights tensor. The weights must be 2 dimensional.
142 * If this function is called after a Convolution Layer, the (transposed) weights will have as many rows as the product of the first 3 input's dimensions.
143 * If it is called after another FullyConnected Layer, the (transposed) weights will have as many rows as the input's first dimension.
144 * Data type supported: Same as @p input.
Michele Di Giorgio9c700372020-01-08 11:33:44 +0000145 * @param[in] biases Bias tensor. Can be nullptr. Data type supported: Same as @p weights, S32 if @p weights is QASYMM8/QASYMM8_SIGNED.
Giorgio Arenaa855af12018-07-16 17:20:38 +0100146 * @param[out] output Destination tensor. Its shape should be equal to the output of a matrix multiplication between:
147 * - The output of im2col on the input and the (transposed) 2D weights, if the function is called after a Convolution Layer
148 * - The input tensor and the (transposed) 2D weights, if the function is called after another FullyConnected Layer.
149 * Data type supported: Same as @p input.
Georgios Pinitas7d66a8e2018-07-17 12:28:42 +0100150 * @param[in] fc_info (Optional) Fully connected layer additional info
Anthony Barbier6ff3b192017-09-04 18:44:23 +0100151 */
Georgios Pinitas7d66a8e2018-07-17 12:28:42 +0100152 void configure(const ITensor *input, const ITensor *weights, const ITensor *biases, ITensor *output,
153 FullyConnectedLayerInfo fc_info = FullyConnectedLayerInfo());
Giorgio Arenaa855af12018-07-16 17:20:38 +0100154 /** Static function to check if given info will lead to a valid configuration of @ref NEFullyConnectedLayer
Ioan-Cristian Szabob4e3e1c2017-11-30 17:17:17 +0000155 *
Michele Di Giorgio9c700372020-01-08 11:33:44 +0000156 * @param[in] input Source tensor info. Data type supported: QASYMM8/QASYMM8_SIGNED/F16/F32.
Michele Di Giorgiof29d1b72019-10-29 10:58:13 +0000157 * @param[in] weights Weights tensor info. The weights must be 2 dimensional.
158 * If this function is called after a Convolution Layer, the (transposed) weights will have as many rows as the product of the first 3 input's dimensions.
159 * If it is called after another FullyConnected Layer, the (transposed) weights will have as many rows as the input's first dimension.
160 * Data type supported: Same as @p input.
Michele Di Giorgio9c700372020-01-08 11:33:44 +0000161 * @param[in] biases Bias tensor. Can be nullptr. Data type supported: Same as @p weights, S32 if @p weights is QASYMM8/QASYMM8_SIGNED.
Michele Di Giorgiof29d1b72019-10-29 10:58:13 +0000162 * @param[in] output Destination tensor info. Its shape should be equal to the output of a matrix multiplication between:
163 * - The output of im2col on the input and the (transposed) 2D weights, if the function is called after a Convolution Layer
164 * - The input tensor and the (transposed) 2D weights, if the function is called after another FullyConnected Layer.
165 * Data type supported: Same as @p input.
166 * @param[in] fc_info (Optional) Fully connected layer additional info
Ioan-Cristian Szabob4e3e1c2017-11-30 17:17:17 +0000167 *
168 * @return a status
169 */
Georgios Pinitas7d66a8e2018-07-17 12:28:42 +0100170 static Status validate(const ITensorInfo *input, const ITensorInfo *weights, const ITensorInfo *biases, const ITensorInfo *output,
171 FullyConnectedLayerInfo fc_info = FullyConnectedLayerInfo());
Anthony Barbier6ff3b192017-09-04 18:44:23 +0100172
173 //Inherited methods override
174 void run() override;
Georgios Pinitas72219332018-06-05 14:56:06 +0100175 void prepare() override;
Anthony Barbier6ff3b192017-09-04 18:44:23 +0100176
177private:
SiCongLi2e5fd632020-03-02 15:39:15 +0000178 void configure_fc_fc(const ITensor *input, const ITensor *weights, const ITensor *biases, ITensor *output, const ActivationLayerInfo &act);
179 void configure_conv_fc(const ITensor *input, const ITensor *weights, const ITensor *biases, ITensor *output, const ActivationLayerInfo &act);
180 void configure_mm(const ITensor *input, const ITensor *weights, const ITensor *biases, ITensor *output, const ActivationLayerInfo &act);
Giorgio Arenaa855af12018-07-16 17:20:38 +0100181
Michalis Spyrou1a569a32019-09-10 17:20:34 +0100182 MemoryGroup _memory_group;
183 IWeightsManager *_weights_manager;
Michalis Spyrouebcebf12020-10-21 00:04:14 +0100184 std::unique_ptr<NEFlattenLayerKernel> _flatten_kernel;
Michalis Spyrou1a569a32019-09-10 17:20:34 +0100185 NEConvertFullyConnectedWeights _convert_weights;
186 weights_transformations::NEConvertFullyConnectedWeightsManaged _convert_weights_managed;
187 NEFullyConnectedLayerReshapeWeights _reshape_weights_function;
188 weights_transformations::NEFullyConnectedLayerReshapeWeightsManaged _reshape_weights_managed_function;
189 NEGEMM _mm_gemm;
190 NEGEMMLowpMatrixMultiplyCore _mm_gemmlowp;
Michalis Spyrou1a569a32019-09-10 17:20:34 +0100191 Tensor _flatten_output;
Michalis Spyrou1a569a32019-09-10 17:20:34 +0100192 Tensor _converted_weights_output;
193 Tensor _reshape_weights_output;
194 const ITensor *_original_weights;
195 bool _are_weights_converted;
196 bool _are_weights_reshaped;
197 bool _is_fc_after_conv;
SiCongLi2e5fd632020-03-02 15:39:15 +0000198 bool _is_quantized_asymmetric;
Michalis Spyrou1a569a32019-09-10 17:20:34 +0100199 bool _is_prepared;
Anthony Barbier6ff3b192017-09-04 18:44:23 +0100200};
Georgios Pinitas1562be32018-03-08 19:09:19 +0000201} // namespace arm_compute
Michalis Spyrouf4643372019-11-29 16:17:13 +0000202#endif /* ARM_COMPUTE_NEFULLYCONNECTEDLAYER_H */