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Isabella Gottardi6acc6ad2018-02-02 17:19:18 +00001/*
Michele Di Giorgiod9eaf612020-07-08 11:12:57 +01002 * Copyright (c) 2017-2020 Arm Limited.
Isabella Gottardi6acc6ad2018-02-02 17:19:18 +00003 *
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/NEGEMMConvolutionLayer.h"
25
Isabella Gottardi6acc6ad2018-02-02 17:19:18 +000026#include "arm_compute/core/Size2D.h"
27#include "arm_compute/core/Utils.h"
28#include "arm_compute/core/Validate.h"
Gian Marco Iodice597a8562018-08-01 15:06:06 +010029#include "arm_compute/core/utils/misc/ShapeCalculator.h"
Isabella Gottardi6acc6ad2018-02-02 17:19:18 +000030#include "arm_compute/core/utils/quantization/AsymmHelpers.h"
31#include "arm_compute/runtime/NEON/NEScheduler.h"
Isabella Gottardi6acc6ad2018-02-02 17:19:18 +000032
Michalis Spyrouebcebf12020-10-21 00:04:14 +010033#include "src/core/NEON/kernels/NECol2ImKernel.h"
34#include "src/core/NEON/kernels/NEConvertQuantizedSignednessKernel.h"
35#include "src/core/NEON/kernels/NEGEMMInterleave4x4Kernel.h"
36#include "src/core/NEON/kernels/NEGEMMLowpMatrixMultiplyKernel.h"
37#include "src/core/NEON/kernels/NEGEMMLowpOffsetContributionKernel.h"
38#include "src/core/NEON/kernels/NEGEMMLowpOffsetContributionOutputStageKernel.h"
39#include "src/core/NEON/kernels/NEGEMMLowpReductionKernel.h"
40#include "src/core/NEON/kernels/NEGEMMMatrixAdditionKernel.h"
41#include "src/core/NEON/kernels/NEGEMMMatrixMultiplyKernel.h"
42#include "src/core/NEON/kernels/NEGEMMTranspose1xWKernel.h"
43#include "src/core/NEON/kernels/NEGEMMTranspose1xWKernel.h"
44#include "src/core/NEON/kernels/NEIm2ColKernel.h"
45#include "src/core/NEON/kernels/NEWeightsReshapeKernel.h"
Michalis Spyrouebcebf12020-10-21 00:04:14 +010046
Georgios Pinitas08346e92018-10-16 19:10:46 +010047#include <set>
Isabella Gottardi6acc6ad2018-02-02 17:19:18 +000048#include <tuple>
49
Michalis Spyroue7be8a02019-12-12 16:16:09 +000050namespace arm_compute
51{
Gian Marco Iodice597a8562018-08-01 15:06:06 +010052using namespace arm_compute::misc::shape_calculator;
Isabella Gottardi6acc6ad2018-02-02 17:19:18 +000053
Michalis Spyrouebcebf12020-10-21 00:04:14 +010054NEConvolutionLayerReshapeWeights::~NEConvolutionLayerReshapeWeights() = default;
Gian Marco Iodice597a8562018-08-01 15:06:06 +010055NEConvolutionLayerReshapeWeights::NEConvolutionLayerReshapeWeights()
56 : _weights_reshape_kernel()
Isabella Gottardi6acc6ad2018-02-02 17:19:18 +000057{
58}
59
Gian Marco Iodice597a8562018-08-01 15:06:06 +010060void NEConvolutionLayerReshapeWeights::configure(const ITensor *weights, const ITensor *biases, ITensor *output)
Isabella Gottardi6acc6ad2018-02-02 17:19:18 +000061{
62 // Perform validation step
63 ARM_COMPUTE_ERROR_ON_NULLPTR(weights, output);
64 ARM_COMPUTE_ERROR_THROW_ON(NEConvolutionLayerReshapeWeights::validate(weights->info(),
65 (biases != nullptr) ? biases->info() : nullptr,
Gian Marco Iodice597a8562018-08-01 15:06:06 +010066 output->info()));
Gian Marco Iodice597a8562018-08-01 15:06:06 +010067 const bool append_biases = (biases != nullptr) && !is_data_type_quantized_asymmetric(weights->info()->data_type());
Isabella Gottardi6acc6ad2018-02-02 17:19:18 +000068 const ITensor *biases_to_use = (append_biases) ? biases : nullptr;
69
Georgios Pinitas40f51a62020-11-21 03:04:18 +000070 _weights_reshape_kernel = std::make_unique<NEWeightsReshapeKernel>();
Michalis Spyrouebcebf12020-10-21 00:04:14 +010071 _weights_reshape_kernel->configure(weights, biases_to_use, output);
Isabella Gottardi6acc6ad2018-02-02 17:19:18 +000072
73 output->info()->set_quantization_info(weights->info()->quantization_info());
74}
75
Gian Marco Iodice597a8562018-08-01 15:06:06 +010076Status NEConvolutionLayerReshapeWeights::validate(const ITensorInfo *weights, const ITensorInfo *biases, const ITensorInfo *output)
Isabella Gottardi6acc6ad2018-02-02 17:19:18 +000077{
Gian Marco Iodice597a8562018-08-01 15:06:06 +010078 ARM_COMPUTE_RETURN_ERROR_ON_NULLPTR(weights);
Georgios Pinitas6e1791b2019-12-02 19:01:25 +000079 ARM_COMPUTE_RETURN_ERROR_ON_DATA_TYPE_CHANNEL_NOT_IN(weights, 1,
80 DataType::QASYMM8, DataType::QASYMM8_SIGNED, DataType::QSYMM8_PER_CHANNEL,
Georgios Pinitasc7b183a2020-03-06 18:12:09 +000081 DataType::BFLOAT16, DataType::F16, DataType::F32);
Isabella Gottardi6acc6ad2018-02-02 17:19:18 +000082 ARM_COMPUTE_RETURN_ERROR_ON(weights->num_dimensions() > 4);
Isabella Gottardi6acc6ad2018-02-02 17:19:18 +000083
Gian Marco Iodice597a8562018-08-01 15:06:06 +010084 if(biases != nullptr)
Isabella Gottardi6acc6ad2018-02-02 17:19:18 +000085 {
Gian Marco Iodice597a8562018-08-01 15:06:06 +010086 const int idx_kernels = get_data_layout_dimension_index(weights->data_layout(), DataLayoutDimension::BATCHES);
Isabella Gottardi6acc6ad2018-02-02 17:19:18 +000087 ARM_COMPUTE_RETURN_ERROR_ON(is_data_type_quantized_asymmetric(weights->data_type()));
88 ARM_COMPUTE_RETURN_ERROR_ON_MISMATCHING_DATA_TYPES(weights, biases);
Gian Marco Iodice597a8562018-08-01 15:06:06 +010089 ARM_COMPUTE_RETURN_ERROR_ON(biases->dimension(0) != weights->dimension(idx_kernels));
Isabella Gottardi6acc6ad2018-02-02 17:19:18 +000090 ARM_COMPUTE_RETURN_ERROR_ON(biases->num_dimensions() > 1);
91 }
92
Gian Marco Iodice597a8562018-08-01 15:06:06 +010093 if((output != nullptr) && (output->total_size() != 0))
Michalis Spyroue2503892018-04-23 15:17:31 +010094 {
Gian Marco Iodice597a8562018-08-01 15:06:06 +010095 ARM_COMPUTE_RETURN_ERROR_ON_MISMATCHING_DATA_TYPES(weights, output);
Michalis Spyroue2503892018-04-23 15:17:31 +010096
Gian Marco Iodice597a8562018-08-01 15:06:06 +010097 NEWeightsReshapeKernel::validate(weights, biases, output);
Isabella Gottardi6acc6ad2018-02-02 17:19:18 +000098 }
99
100 return Status{};
101}
102
103void NEConvolutionLayerReshapeWeights::run()
104{
Michalis Spyrouebcebf12020-10-21 00:04:14 +0100105 NEScheduler::get().schedule(_weights_reshape_kernel.get(), 3);
Isabella Gottardi6acc6ad2018-02-02 17:19:18 +0000106}
107
Michalis Spyrouebcebf12020-10-21 00:04:14 +0100108NEGEMMConvolutionLayer::~NEGEMMConvolutionLayer() = default;
109
Michalis Spyrou1a569a32019-09-10 17:20:34 +0100110NEGEMMConvolutionLayer::NEGEMMConvolutionLayer(const std::shared_ptr<IMemoryManager> &memory_manager, IWeightsManager *weights_manager)
111 : _memory_group(memory_manager), _weights_manager(weights_manager), _reshape_weights(), _reshape_weights_managed(), _im2col_kernel(), _mm_gemm(memory_manager), _mm_gemmlowp(memory_manager),
Georgios Pinitas48b3ef82019-10-14 19:03:09 +0100112 _col2im_kernel(), _reshape_layer(), _original_weights(nullptr), _im2col_output(), _weights_reshaped(), _gemm_output(), _tmp_output(), _data_layout(DataLayout::NCHW), _skip_im2col(false),
113 _skip_col2im(false), _is_quantized(false), _is_prepared(false)
Isabella Gottardi6acc6ad2018-02-02 17:19:18 +0000114{
115}
116
George Wort2d7e6832019-02-22 16:37:41 +0000117void NEGEMMConvolutionLayer::configure_mm(const ITensor *input, const ITensor *weights, const ITensor *biases, ITensor *output, const ActivationLayerInfo &act_info, int gemm_3d_depth)
Isabella Gottardi6acc6ad2018-02-02 17:19:18 +0000118{
Gian Marco Iodice597a8562018-08-01 15:06:06 +0100119 ARM_COMPUTE_ERROR_ON_NULLPTR(input, weights);
Georgios Pinitas48b3ef82019-10-14 19:03:09 +0100120 ARM_COMPUTE_ERROR_THROW_ON(validate_mm(input->info(), weights->info(), biases == nullptr ? nullptr : biases->info(), output == nullptr ? nullptr : output->info(),
121 act_info, gemm_3d_depth, _skip_im2col));
Gian Marco Iodice597a8562018-08-01 15:06:06 +0100122
Georgios Pinitas48b3ef82019-10-14 19:03:09 +0100123 // Create GEMMInfo structure
Georgios Pinitasbb081ca2018-11-08 10:22:01 +0000124 const GEMMInfo &gemm_info = GEMMInfo(false, false, true /* Reshape weights only for the first run */,
Georgios Pinitas48b3ef82019-10-14 19:03:09 +0100125 gemm_3d_depth, _skip_im2col /* Reinterpret the input as 3D if im2col is skipped */,
126 false, GEMMLowpOutputStageInfo(), false, false, act_info);
127
128 // Supported activations in GEMM
129 const std::set<ActivationLayerInfo::ActivationFunction> supported_acts = { ActivationLayerInfo::ActivationFunction::RELU,
130 ActivationLayerInfo::ActivationFunction::BOUNDED_RELU,
131 ActivationLayerInfo::ActivationFunction::LU_BOUNDED_RELU
132 };
Georgios Pinitasbb081ca2018-11-08 10:22:01 +0000133
Isabella Gottardi6acc6ad2018-02-02 17:19:18 +0000134 if(_is_quantized)
135 {
136 // Since we need negative offsets for computing convolution, we need to change QuantizationInfo()
137 // Extract and negate input and weights offset
Georgios Pinitas6e1791b2019-12-02 19:01:25 +0000138 const QuantizationInfo iqinfo = input->info()->quantization_info();
139 const QuantizationInfo wqinfo = weights->info()->quantization_info();
140 const QuantizationInfo oqinfo = (output->info()->total_size() == 0) ? iqinfo : output->info()->quantization_info();
141 const UniformQuantizationInfo uiqinfo = iqinfo.uniform();
142 const UniformQuantizationInfo uoqinfo = oqinfo.uniform();
143 const DataType data_type = input->info()->data_type();
Isabella Gottardi6acc6ad2018-02-02 17:19:18 +0000144
Georgios Pinitasdbdea0d2019-10-16 19:21:40 +0100145 input->info()->set_quantization_info(QuantizationInfo(uiqinfo.scale, -uiqinfo.offset));
146 if(!is_data_type_quantized_per_channel(weights->info()->data_type()))
147 {
148 const UniformQuantizationInfo uwqinfo = wqinfo.uniform();
149 weights->info()->set_quantization_info(QuantizationInfo(uwqinfo.scale, -uwqinfo.offset));
150 }
George Wort2d7e6832019-02-22 16:37:41 +0000151
152 // Merge activation with output stage
Michalis Spyroue7be8a02019-12-12 16:16:09 +0000153 PixelValue type_min{};
154 PixelValue type_max{};
Georgios Pinitas6e1791b2019-12-02 19:01:25 +0000155 std::tie(type_min, type_max) = get_min_max(data_type);
Michalis Spyroue7be8a02019-12-12 16:16:09 +0000156 int32_t min_activation = type_min.get<int32_t>();
157 int32_t max_activation = type_max.get<int32_t>();
George Wort2d7e6832019-02-22 16:37:41 +0000158
Georgios Pinitas48b3ef82019-10-14 19:03:09 +0100159 if(supported_acts.count(act_info.activation()) != 0)
George Wort2d7e6832019-02-22 16:37:41 +0000160 {
Sang-Hoon Park4715cf92020-01-08 16:02:47 +0000161 std::tie(min_activation, max_activation) = get_quantized_activation_min_max(act_info, data_type, uoqinfo);
George Wort2d7e6832019-02-22 16:37:41 +0000162 }
163
164 GEMMLowpOutputStageInfo output_info;
Georgios Pinitas6e1791b2019-12-02 19:01:25 +0000165 output_info.type = GEMMLowpOutputStageType::QUANTIZE_DOWN_FIXEDPOINT;
166 output_info.gemmlowp_offset = uoqinfo.offset;
167 output_info.gemmlowp_min_bound = min_activation;
168 output_info.gemmlowp_max_bound = max_activation;
169 output_info.is_quantized_per_channel = (weights->info()->data_type() == DataType::QSYMM8_PER_CHANNEL);
Michele Di Giorgiof29d1b72019-10-29 10:58:13 +0000170 quantization::calculate_quantized_multipliers(iqinfo, wqinfo, oqinfo, output_info);
George Wort2d7e6832019-02-22 16:37:41 +0000171
SiCong Li7b481662020-12-02 09:43:12 +0000172 _mm_gemmlowp.configure(input, weights, biases, output, GEMMInfo(false, false, true, gemm_3d_depth, _skip_im2col, false, output_info, false, false, act_info));
Isabella Gottardi6acc6ad2018-02-02 17:19:18 +0000173
174 // Revert back QuantizatioInfo as input and weights could be used in other convolution layers
Georgios Pinitasdbdea0d2019-10-16 19:21:40 +0100175 input->info()->set_quantization_info(iqinfo);
176 weights->info()->set_quantization_info(wqinfo);
Isabella Gottardi6acc6ad2018-02-02 17:19:18 +0000177 }
178 else
179 {
Gian Marco Iodice597a8562018-08-01 15:06:06 +0100180 // Configure matrix multiply function
Georgios Pinitas48b3ef82019-10-14 19:03:09 +0100181 _mm_gemm.configure(input, weights, biases, output, 1.0f, 0.0f, gemm_info);
Isabella Gottardi6acc6ad2018-02-02 17:19:18 +0000182 }
183}
184
Georgios Pinitas48b3ef82019-10-14 19:03:09 +0100185Status NEGEMMConvolutionLayer::validate_mm(const ITensorInfo *input, const ITensorInfo *weights, const ITensorInfo *biases, const ITensorInfo *output,
186 const ActivationLayerInfo &act_info, int gemm_3d_depth, bool skip_im2col)
Gian Marco Iodice597a8562018-08-01 15:06:06 +0100187{
Georgios Pinitas6e1791b2019-12-02 19:01:25 +0000188 const DataType data_type = input->data_type();
189 const bool is_quantized = is_data_type_quantized_asymmetric(data_type);
190 const bool is_activation_enabled = act_info.enabled();
Gian Marco Iodice597a8562018-08-01 15:06:06 +0100191
Georgios Pinitas48b3ef82019-10-14 19:03:09 +0100192 // Create GEMMInfo structure
193 const GEMMInfo gemm_info = GEMMInfo(false, false, true /* Reshape weights only for the first run */,
194 gemm_3d_depth, skip_im2col /* Reinterpret the input as 3D if im2col is skipped */,
195 false, GEMMLowpOutputStageInfo(), false, false, act_info);
196
Gian Marco Iodice597a8562018-08-01 15:06:06 +0100197 if(is_quantized)
198 {
199 // Since we need negative offsets for computing convolution, we need to change QuantizationInfo()
200 // Extract and negate input and weights offset
Georgios Pinitasdbdea0d2019-10-16 19:21:40 +0100201 const QuantizationInfo &iqinfo = input->quantization_info();
202 const QuantizationInfo &wqinfo = weights->quantization_info();
203 const QuantizationInfo &oqinfo = (output->total_size() == 0) ? iqinfo : output->quantization_info();
204 const UniformQuantizationInfo uoqinfo = oqinfo.uniform();
George Wort2d7e6832019-02-22 16:37:41 +0000205
206 // Merge activation with output stage
Michalis Spyroue7be8a02019-12-12 16:16:09 +0000207 PixelValue type_min{};
208 PixelValue type_max{};
Georgios Pinitas6e1791b2019-12-02 19:01:25 +0000209 std::tie(type_min, type_max) = get_min_max(data_type);
Michalis Spyroue7be8a02019-12-12 16:16:09 +0000210 int32_t min_activation = type_min.get<int32_t>();
211 int32_t max_activation = type_max.get<int32_t>();
George Wort2d7e6832019-02-22 16:37:41 +0000212
213 const std::set<ActivationLayerInfo::ActivationFunction> supported_acts = { ActivationLayerInfo::ActivationFunction::RELU,
214 ActivationLayerInfo::ActivationFunction::BOUNDED_RELU,
215 ActivationLayerInfo::ActivationFunction::LU_BOUNDED_RELU
216 };
217 if(is_activation_enabled && supported_acts.count(act_info.activation()) != 0)
218 {
Sang-Hoon Park4715cf92020-01-08 16:02:47 +0000219 std::tie(min_activation, max_activation) = get_quantized_activation_min_max(act_info, data_type, uoqinfo);
George Wort2d7e6832019-02-22 16:37:41 +0000220 }
221
222 GEMMLowpOutputStageInfo output_info;
Georgios Pinitas6e1791b2019-12-02 19:01:25 +0000223 output_info.type = GEMMLowpOutputStageType::QUANTIZE_DOWN_FIXEDPOINT;
224 output_info.gemmlowp_offset = uoqinfo.offset;
225 output_info.gemmlowp_min_bound = min_activation;
226 output_info.gemmlowp_max_bound = max_activation;
227 output_info.is_quantized_per_channel = (weights->data_type() == DataType::QSYMM8_PER_CHANNEL);
Michele Di Giorgiof29d1b72019-10-29 10:58:13 +0000228 ARM_COMPUTE_RETURN_ON_ERROR(quantization::calculate_quantized_multipliers(iqinfo, wqinfo, oqinfo, output_info));
George Wort2d7e6832019-02-22 16:37:41 +0000229
Gian Marco Iodice597a8562018-08-01 15:06:06 +0100230 // Perform validation step on GEMMLowp
Georgios Pinitasdbdea0d2019-10-16 19:21:40 +0100231 std::unique_ptr<ITensorInfo> input_qa = input->clone();
232 std::unique_ptr<ITensorInfo> weights_qa = weights->clone();
233 input_qa->set_quantization_info(QuantizationInfo(iqinfo.uniform().scale, -iqinfo.uniform().offset));
234 weights_qa->set_quantization_info(QuantizationInfo(wqinfo.uniform().scale, -wqinfo.uniform().offset));
SiCong Li7b481662020-12-02 09:43:12 +0000235 return NEGEMMLowpMatrixMultiplyCore::validate(input_qa.get(), weights_qa.get(), biases, output, GEMMInfo(false, false, true, gemm_3d_depth, skip_im2col, false, output_info, false, false, act_info));
Gian Marco Iodice597a8562018-08-01 15:06:06 +0100236 }
237 else
238 {
239 // Perform validation step on Matrix multiply function
Gian Marco Iodicedb9d46d2018-08-08 12:29:38 +0100240 return NEGEMM::validate(input, weights, nullptr, output, 1.0f, 0.0f, gemm_info);
Gian Marco Iodice597a8562018-08-01 15:06:06 +0100241 }
Gian Marco Iodicedb9d46d2018-08-08 12:29:38 +0100242}
243
Giorgio Arena7a669a82019-11-13 17:07:13 +0000244Status NEGEMMConvolutionLayer::validate_gemm3d(const ITensorInfo *input_info, const ITensorInfo *weights_info, const ActivationLayerInfo &act_info, int gemm_3d_depth, bool skip_im2col)
Gian Marco Iodicedb9d46d2018-08-08 12:29:38 +0100245{
George Wort2d7e6832019-02-22 16:37:41 +0000246 const DataType data_type = input_info->data_type();
247 const unsigned int mult_y = skip_im2col ? 1U : gemm_3d_depth;
248 const unsigned int mult_z = skip_im2col ? gemm_3d_depth : 1U;
Gian Marco Iodicedb9d46d2018-08-08 12:29:38 +0100249
250 // Set dummy tensor shapes for the validation
George Wort2d7e6832019-02-22 16:37:41 +0000251 const TensorInfo dummy_input_info(TensorShape(4U, 4U * mult_y, 1U * mult_z), 1, data_type, input_info->quantization_info());
Giorgio Arena7a669a82019-11-13 17:07:13 +0000252 const TensorInfo dummy_weights_info(TensorShape(4U, 4U), 1, data_type, weights_info->quantization_info());
George Wort2d7e6832019-02-22 16:37:41 +0000253 const TensorInfo dummy_output_info(TensorShape(4U, 4U, gemm_3d_depth), 1, data_type, input_info->quantization_info());
Gian Marco Iodicedb9d46d2018-08-08 12:29:38 +0100254
George Wort2d7e6832019-02-22 16:37:41 +0000255 return validate_mm(&dummy_input_info, &dummy_weights_info, nullptr, &dummy_output_info, act_info, gemm_3d_depth, skip_im2col);
Gian Marco Iodice597a8562018-08-01 15:06:06 +0100256}
257
Alex Gilday7da29b62018-03-23 14:16:00 +0000258void NEGEMMConvolutionLayer::configure(const ITensor *input, const ITensor *weights, const ITensor *biases, ITensor *output, const PadStrideInfo &conv_info, const WeightsInfo &weights_info,
Gian Marco Iodice916d1bc2018-08-13 11:20:41 +0100259 const Size2D &dilation, const ActivationLayerInfo &act_info, unsigned int num_groups)
Isabella Gottardi6acc6ad2018-02-02 17:19:18 +0000260{
Isabella Gottardi6acc6ad2018-02-02 17:19:18 +0000261 ARM_COMPUTE_ERROR_ON_NULLPTR(input, weights, output);
Georgios Pinitas48b3ef82019-10-14 19:03:09 +0100262 ARM_COMPUTE_UNUSED(num_groups, weights_info);
Gian Marco Iodice597a8562018-08-01 15:06:06 +0100263 ARM_COMPUTE_ERROR_THROW_ON(NEGEMMConvolutionLayer::validate(input->info(),
264 weights->info(),
265 biases != nullptr ? biases->info() : nullptr,
266 output->info(),
267 conv_info,
268 weights_info,
269 dilation,
Gian Marco Iodice916d1bc2018-08-13 11:20:41 +0100270 act_info,
271 num_groups));
Isabella Gottardi6acc6ad2018-02-02 17:19:18 +0000272
Gian Marco Iodice597a8562018-08-01 15:06:06 +0100273 const DataType data_type = input->info()->data_type();
274 const DataLayout data_layout = input->info()->data_layout();
275 const int idx_width = get_data_layout_dimension_index(data_layout, DataLayoutDimension::WIDTH);
276 const int idx_height = get_data_layout_dimension_index(data_layout, DataLayoutDimension::HEIGHT);
Gian Marco Iodice597a8562018-08-01 15:06:06 +0100277 const int idx_kernels = get_data_layout_dimension_index(data_layout, DataLayoutDimension::BATCHES);
Michalis Spyroue2503892018-04-23 15:17:31 +0100278
Gian Marco Iodice597a8562018-08-01 15:06:06 +0100279 const unsigned int kernel_width = weights->info()->dimension(idx_width);
280 const unsigned int kernel_height = weights->info()->dimension(idx_height);
Isabella Gottardi6acc6ad2018-02-02 17:19:18 +0000281
Georgios Pinitas48b3ef82019-10-14 19:03:09 +0100282 _is_prepared = weights_info.retain_internal_weights();
283 _original_weights = weights;
284 _is_quantized = is_data_type_quantized_asymmetric(input->info()->data_type());
285 _data_layout = data_layout;
286 _skip_im2col = (data_layout == DataLayout::NHWC && kernel_width == 1 && kernel_height == 1 && conv_info.stride().first == 1 && conv_info.stride().second == 1);
Isabella Gottardi6acc6ad2018-02-02 17:19:18 +0000287
George Wort2d7e6832019-02-22 16:37:41 +0000288 const ITensor *gemm_input_to_use = input;
289 ITensor *gemm_output_to_use = output;
Isabella Gottardi6acc6ad2018-02-02 17:19:18 +0000290
Gian Marco Iodice597a8562018-08-01 15:06:06 +0100291 // Get convolved dimensions
292 unsigned int conv_w = 0;
293 unsigned int conv_h = 0;
294 std::tie(conv_w, conv_h) = scaled_dimensions(input->info()->dimension(idx_width),
295 input->info()->dimension(idx_height),
296 kernel_width,
297 kernel_height,
298 conv_info,
299 dilation);
Isabella Gottardi6acc6ad2018-02-02 17:19:18 +0000300
Gian Marco Iodicedb9d46d2018-08-08 12:29:38 +0100301 // Check if GEMM3D is supported
Georgios Pinitase413d252018-11-14 18:29:58 +0000302 if(data_layout == DataLayout::NHWC)
Gian Marco Iodicedb9d46d2018-08-08 12:29:38 +0100303 {
Giorgio Arena7a669a82019-11-13 17:07:13 +0000304 _skip_col2im = bool(validate_gemm3d(input->info(), weights->info(), act_info, conv_h, true));
Gian Marco Iodicedb9d46d2018-08-08 12:29:38 +0100305 // If not supported, we need to perform im2col and col2im (or reshape layer)
Georgios Pinitase413d252018-11-14 18:29:58 +0000306 if(!_skip_col2im)
Gian Marco Iodicedb9d46d2018-08-08 12:29:38 +0100307 {
308 _skip_im2col = false;
Gian Marco Iodicedb9d46d2018-08-08 12:29:38 +0100309 }
310 }
Georgios Pinitase413d252018-11-14 18:29:58 +0000311 else
312 {
313 _skip_col2im = false;
314 }
Gian Marco Iodicedb9d46d2018-08-08 12:29:38 +0100315
Gian Marco Iodicedb9d46d2018-08-08 12:29:38 +0100316 // Get parameters from conv_info
317 unsigned int stride_x = 0;
318 unsigned int stride_y = 0;
319 std::tie(stride_x, stride_y) = conv_info.stride();
320
Gian Marco Iodice597a8562018-08-01 15:06:06 +0100321 unsigned int mat_weights_cols = weights->info()->dimension(idx_kernels);
Isabella Gottardi6acc6ad2018-02-02 17:19:18 +0000322
Gian Marco Iodice597a8562018-08-01 15:06:06 +0100323 // _weights_reshaped will be auto configured in the kernel.
324 // Just append biases and do not transpose 1xW as it will be reshaped in NEGEMM
Michalis Spyrou1a569a32019-09-10 17:20:34 +0100325 const ITensor *weights_to_use = weights;
326
327 if(_weights_manager && _weights_manager->are_weights_managed(weights))
328 {
Georgios Pinitas48b3ef82019-10-14 19:03:09 +0100329 _reshape_weights_managed.configure(weights, nullptr);
Michalis Spyrou1a569a32019-09-10 17:20:34 +0100330 weights_to_use = _weights_manager->acquire(weights, &_reshape_weights_managed);
331 }
332 else
333 {
Georgios Pinitas48b3ef82019-10-14 19:03:09 +0100334 _reshape_weights.configure(weights, nullptr, &_weights_reshaped);
Michalis Spyrou1a569a32019-09-10 17:20:34 +0100335 weights_to_use = &_weights_reshaped;
336 }
Gian Marco Iodice597a8562018-08-01 15:06:06 +0100337
Gian Marco Iodice597a8562018-08-01 15:06:06 +0100338 // Create tensor to store im2col reshaped inputs
Michalis Spyroue2503892018-04-23 15:17:31 +0100339 if(!_skip_im2col)
Isabella Gottardi6acc6ad2018-02-02 17:19:18 +0000340 {
Gian Marco Iodice597a8562018-08-01 15:06:06 +0100341 _memory_group.manage(&_im2col_output);
Michalis Spyroue2503892018-04-23 15:17:31 +0100342
Gian Marco Iodice215b4ea2018-06-28 16:29:29 +0100343 // Configure
Georgios Pinitas40f51a62020-11-21 03:04:18 +0000344 _im2col_kernel = std::make_unique<NEIm2ColKernel>();
Michalis Spyrouebcebf12020-10-21 00:04:14 +0100345 _im2col_kernel->configure(input, &_im2col_output, Size2D(kernel_width, kernel_height), conv_info, false, dilation);
Michalis Spyroue2503892018-04-23 15:17:31 +0100346
Gian Marco Iodice597a8562018-08-01 15:06:06 +0100347 // Update GEMM input
348 gemm_input_to_use = &_im2col_output;
Isabella Gottardi6acc6ad2018-02-02 17:19:18 +0000349 }
Isabella Gottardi6acc6ad2018-02-02 17:19:18 +0000350
Gian Marco Iodicedb9d46d2018-08-08 12:29:38 +0100351 // Create temporary GEMM output tensor in case we cannot skip col2im
Georgios Pinitasc7b183a2020-03-06 18:12:09 +0000352 const DataType output_data_type = data_type == DataType::BFLOAT16 ? DataType::F32 : data_type;
George Wort2d7e6832019-02-22 16:37:41 +0000353 if(!_skip_col2im)
Isabella Gottardi6acc6ad2018-02-02 17:19:18 +0000354 {
George Wort2d7e6832019-02-22 16:37:41 +0000355 TensorShape shape_gemm;
Georgios Pinitasbb081ca2018-11-08 10:22:01 +0000356
George Wort2d7e6832019-02-22 16:37:41 +0000357 // Calculate GEMM output shape
358 shape_gemm = _im2col_output.info()->tensor_shape();
359 shape_gemm.set(0, mat_weights_cols);
360 shape_gemm.set(1, conv_w * conv_h);
Georgios Pinitasbb081ca2018-11-08 10:22:01 +0000361
Gian Marco Iodice597a8562018-08-01 15:06:06 +0100362 // FIXME: input->clone() doesn't work with subtensors for grouped convolutions.
Georgios Pinitasc7b183a2020-03-06 18:12:09 +0000363 TensorInfo info_gemm(shape_gemm, 1, output_data_type);
Georgios Pinitas041f36d2018-09-18 18:38:37 +0100364 info_gemm.set_quantization_info(output->info()->quantization_info()).set_data_layout(input->info()->data_layout());
Gian Marco Iodice597a8562018-08-01 15:06:06 +0100365 _gemm_output.allocator()->init(info_gemm);
366 _memory_group.manage(&_gemm_output);
367
368 // Update GEMM output
369 gemm_output_to_use = &_gemm_output;
Isabella Gottardi6acc6ad2018-02-02 17:19:18 +0000370 }
371
Gian Marco Iodicedb9d46d2018-08-08 12:29:38 +0100372 // Configure GEMM
Gian Marco Iodice3139f032018-11-05 14:26:32 +0000373 // In case we need to skip col2im, GEMM3D (gemm_3d_depth != 0) must be called in order to avoid reshaping the output matrix
374 const unsigned int gemm_3d_depth = _skip_col2im ? conv_h : 0;
Michalis Spyrou1a569a32019-09-10 17:20:34 +0100375 configure_mm(gemm_input_to_use, weights_to_use, biases, gemm_output_to_use, act_info, gemm_3d_depth);
Gian Marco Iodice597a8562018-08-01 15:06:06 +0100376
Michalis Spyroue2503892018-04-23 15:17:31 +0100377 if(!_skip_im2col)
Isabella Gottardi6acc6ad2018-02-02 17:19:18 +0000378 {
Gian Marco Iodice597a8562018-08-01 15:06:06 +0100379 _im2col_output.allocator()->allocate();
380 }
Isabella Gottardi6acc6ad2018-02-02 17:19:18 +0000381
Georgios Pinitase413d252018-11-14 18:29:58 +0000382 if(!_skip_col2im)
Gian Marco Iodice597a8562018-08-01 15:06:06 +0100383 {
Georgios Pinitase413d252018-11-14 18:29:58 +0000384 if(_data_layout == DataLayout::NCHW)
385 {
386 // Configure col2im
Georgios Pinitas40f51a62020-11-21 03:04:18 +0000387 _col2im_kernel = std::make_unique<NECol2ImKernel>();
Michalis Spyrouebcebf12020-10-21 00:04:14 +0100388 _col2im_kernel->configure(gemm_output_to_use, output, Size2D(conv_w, conv_h));
Georgios Pinitase413d252018-11-14 18:29:58 +0000389 }
390 else
391 {
392 // Configure reshape layer
George Wort2d7e6832019-02-22 16:37:41 +0000393 _reshape_layer.configure(gemm_output_to_use, output);
Georgios Pinitase413d252018-11-14 18:29:58 +0000394 }
Gian Marco Iodice597a8562018-08-01 15:06:06 +0100395 }
396
Georgios Pinitase413d252018-11-14 18:29:58 +0000397 if(_is_quantized && !_skip_col2im)
Gian Marco Iodice597a8562018-08-01 15:06:06 +0100398 {
399 _tmp_output.allocator()->allocate();
Gian Marco Iodicedb9d46d2018-08-08 12:29:38 +0100400 }
401
Georgios Pinitasbb081ca2018-11-08 10:22:01 +0000402 if(!_skip_col2im || _is_quantized)
Gian Marco Iodicedb9d46d2018-08-08 12:29:38 +0100403 {
Michalis Spyroue2503892018-04-23 15:17:31 +0100404 _gemm_output.allocator()->allocate();
Isabella Gottardi6acc6ad2018-02-02 17:19:18 +0000405 }
406
Gian Marco Iodice597a8562018-08-01 15:06:06 +0100407 ARM_COMPUTE_ERROR_ON_MSG((output->info()->dimension(idx_width) != conv_w) || (output->info()->dimension(idx_height) != conv_h),
408 "Output shape does not match the expected one");
Isabella Gottardi6acc6ad2018-02-02 17:19:18 +0000409}
410
411Status NEGEMMConvolutionLayer::validate(const ITensorInfo *input, const ITensorInfo *weights, const ITensorInfo *biases, const ITensorInfo *output, const PadStrideInfo &conv_info,
Gian Marco Iodice916d1bc2018-08-13 11:20:41 +0100412 const WeightsInfo &weights_info, const Size2D &dilation, const ActivationLayerInfo &act_info, unsigned int num_groups)
Isabella Gottardi6acc6ad2018-02-02 17:19:18 +0000413{
Gian Marco Iodice597a8562018-08-01 15:06:06 +0100414 ARM_COMPUTE_RETURN_ERROR_ON_NULLPTR(input, weights, output);
415 ARM_COMPUTE_RETURN_ERROR_ON_MSG(weights_info.are_reshaped(), "Weights already reshaped are not supported!");
Georgios Pinitasc7b183a2020-03-06 18:12:09 +0000416 ARM_COMPUTE_RETURN_ERROR_ON_DATA_TYPE_CHANNEL_NOT_IN(input, 1, DataType::QASYMM8, DataType::QASYMM8_SIGNED, DataType::BFLOAT16, DataType::F16, DataType::F32);
417 ARM_COMPUTE_RETURN_ERROR_ON_DATA_TYPE_CHANNEL_NOT_IN(weights, 1, DataType::QASYMM8, DataType::QASYMM8_SIGNED, DataType::QSYMM8_PER_CHANNEL, DataType::BFLOAT16, DataType::F16, DataType::F32);
Gian Marco Iodice597a8562018-08-01 15:06:06 +0100418 ARM_COMPUTE_RETURN_ERROR_ON_MISMATCHING_DATA_LAYOUT(input, weights);
Gian Marco Iodice916d1bc2018-08-13 11:20:41 +0100419 ARM_COMPUTE_RETURN_ERROR_ON_MSG(num_groups > 1, "Grouping (num_groups != 1) is not supported on NEON");
Isabella Gottardi6acc6ad2018-02-02 17:19:18 +0000420
Michalis Spyroue2503892018-04-23 15:17:31 +0100421 const DataLayout data_layout = input->data_layout();
Gian Marco Iodice597a8562018-08-01 15:06:06 +0100422 const DataType data_type = input->data_type();
Michalis Spyroue2503892018-04-23 15:17:31 +0100423 const int idx_width = get_data_layout_dimension_index(data_layout, DataLayoutDimension::WIDTH);
424 const int idx_height = get_data_layout_dimension_index(data_layout, DataLayoutDimension::HEIGHT);
Gian Marco Iodice597a8562018-08-01 15:06:06 +0100425 const int idx_channel = get_data_layout_dimension_index(data_layout, DataLayoutDimension::CHANNEL);
426 const int idx_kernels = get_data_layout_dimension_index(data_layout, DataLayoutDimension::BATCHES);
Michalis Spyroue2503892018-04-23 15:17:31 +0100427
Gian Marco Iodice597a8562018-08-01 15:06:06 +0100428 const unsigned int kernel_width = weights->dimension(idx_width);
429 const unsigned int kernel_height = weights->dimension(idx_height);
Isabella Gottardi6acc6ad2018-02-02 17:19:18 +0000430
Michalis Spyroua4f378d2019-04-26 14:54:54 +0100431 TensorInfo im2col_reshaped_info{};
432 TensorInfo info_gemm{};
433 TensorInfo tmp_info{};
434 TensorInfo weights_reshaped_info{};
George Wort2d7e6832019-02-22 16:37:41 +0000435 const ITensorInfo *gemm_input_to_use = input;
436 const ITensorInfo *gemm_output_to_use = output;
437 const ITensorInfo *weights_to_use = weights;
Ioan-Cristian Szabob4e3e1c2017-11-30 17:17:17 +0000438
Georgios Pinitas48b3ef82019-10-14 19:03:09 +0100439 const bool append_bias = false;
440 const bool is_quantized = is_data_type_quantized_asymmetric(data_type);
Georgios Pinitasafc630f2020-03-30 14:09:27 +0100441 const bool is_bf16 = data_type == DataType::BFLOAT16;
Georgios Pinitas48b3ef82019-10-14 19:03:09 +0100442 bool skip_im2col = (data_layout == DataLayout::NHWC && kernel_width == 1 && kernel_height == 1 && conv_info.stride().first == 1 && conv_info.stride().second == 1);
Gian Marco Iodicedb9d46d2018-08-08 12:29:38 +0100443
444 // Get convolved dimensions
445 unsigned int conv_w = 0;
446 unsigned int conv_h = 0;
447
448 std::tie(conv_w, conv_h) = scaled_dimensions(input->dimension(idx_width),
449 input->dimension(idx_height),
450 kernel_width,
451 kernel_height,
452 conv_info,
453 dilation);
454
455 // Check if GEMM3D is supported
Georgios Pinitase413d252018-11-14 18:29:58 +0000456 bool skip_col2im = false;
457 if(data_layout == DataLayout::NHWC)
458 {
Giorgio Arena7a669a82019-11-13 17:07:13 +0000459 skip_col2im = bool(validate_gemm3d(input, weights, act_info, conv_h, true));
Georgios Pinitase413d252018-11-14 18:29:58 +0000460 // If not supported, we need to perform im2col and col2im (or reshape layer)
461 if(!skip_col2im)
462 {
463 skip_im2col = false;
464 }
465 }
466
Gian Marco Iodicedb9d46d2018-08-08 12:29:38 +0100467 if(skip_col2im)
468 {
469 // If not supported, we need to perform im2col and col2im (or reshape layer)
Giorgio Arena7a669a82019-11-13 17:07:13 +0000470 if(!bool(validate_gemm3d(input, weights, act_info, conv_h, skip_im2col)))
Gian Marco Iodicedb9d46d2018-08-08 12:29:38 +0100471 {
472 skip_im2col = false;
473 skip_col2im = false;
474 }
475 }
476
Gian Marco Iodice597a8562018-08-01 15:06:06 +0100477 ARM_COMPUTE_RETURN_ERROR_ON(weights->dimension(idx_channel) != input->dimension(idx_channel));
478 ARM_COMPUTE_RETURN_ERROR_ON(weights->num_dimensions() > 4);
Isabella Gottardi6acc6ad2018-02-02 17:19:18 +0000479
Gian Marco Iodice597a8562018-08-01 15:06:06 +0100480 // Validate biases
481 if(biases != nullptr)
Isabella Gottardi6acc6ad2018-02-02 17:19:18 +0000482 {
Gian Marco Iodice597a8562018-08-01 15:06:06 +0100483 if(is_quantized)
484 {
485 ARM_COMPUTE_RETURN_ERROR_ON_DATA_TYPE_CHANNEL_NOT_IN(biases, 1, DataType::S32);
486 }
Georgios Pinitasafc630f2020-03-30 14:09:27 +0100487 else if(is_bf16)
488 {
489 ARM_COMPUTE_RETURN_ERROR_ON_DATA_TYPE_CHANNEL_NOT_IN(biases, 1, DataType::F32);
490 }
Gian Marco Iodice597a8562018-08-01 15:06:06 +0100491 else
492 {
493 ARM_COMPUTE_RETURN_ERROR_ON_MISMATCHING_DATA_TYPES(input, biases);
494 }
495 ARM_COMPUTE_RETURN_ERROR_ON(biases->dimension(0) != weights->dimension(idx_kernels));
496 ARM_COMPUTE_RETURN_ERROR_ON(biases->num_dimensions() > 1);
Isabella Gottardi6acc6ad2018-02-02 17:19:18 +0000497 }
Isabella Gottardi6acc6ad2018-02-02 17:19:18 +0000498
Gian Marco Iodice597a8562018-08-01 15:06:06 +0100499 unsigned int mat_weights_cols = weights->dimension(idx_kernels);
Georgios Pinitas48b3ef82019-10-14 19:03:09 +0100500 unsigned int mat_weights_rows = weights->dimension(idx_width) * weights->dimension(idx_height) * weights->dimension(idx_channel);
Gian Marco Iodice597a8562018-08-01 15:06:06 +0100501
502 // Output tensor auto inizialization if not yet initialized
Georgios Pinitas48b3ef82019-10-14 19:03:09 +0100503 ARM_COMPUTE_RETURN_ON_ERROR(NEConvolutionLayerReshapeWeights::validate(weights, nullptr, nullptr));
504 weights_reshaped_info = TensorInfo(compute_weights_reshaped_shape(*weights, append_bias), 1, data_type);
Georgios Pinitas4d600c72019-07-30 15:09:10 +0100505 weights_reshaped_info.set_quantization_info(weights->quantization_info());
Michalis Spyrou1a569a32019-09-10 17:20:34 +0100506 weights_to_use = &weights_reshaped_info;
Gian Marco Iodice597a8562018-08-01 15:06:06 +0100507
Michalis Spyroue2503892018-04-23 15:17:31 +0100508 if(!skip_im2col)
509 {
Gian Marco Iodice597a8562018-08-01 15:06:06 +0100510 // Create tensor info for im2col reshaped inputs
511 // For NEON the batch size is on the fourth dimension
Gian Marco Iodicedb9d46d2018-08-08 12:29:38 +0100512 // TODO (giaiod01): Auto-initialize the output shape of im2col COMPMID-1482
Gian Marco Iodice597a8562018-08-01 15:06:06 +0100513 TensorShape shape_im2col = input->tensor_shape();
514 shape_im2col.set(0, mat_weights_rows);
515 shape_im2col.set(1, conv_w * conv_h);
516 shape_im2col.set(2, 1);
517
518 im2col_reshaped_info = TensorInfo(shape_im2col, 1, data_type);
519 im2col_reshaped_info.set_quantization_info(input->quantization_info());
520
Giorgio Arena0f170392018-07-18 16:13:12 +0100521 ARM_COMPUTE_RETURN_ON_ERROR(NEIm2ColKernel::validate(input, &im2col_reshaped_info, Size2D(kernel_width, kernel_height), conv_info, append_bias, dilation));
Gian Marco Iodice597a8562018-08-01 15:06:06 +0100522 gemm_input_to_use = &im2col_reshaped_info;
Michalis Spyroue2503892018-04-23 15:17:31 +0100523 }
Isabella Gottardi6acc6ad2018-02-02 17:19:18 +0000524
Gian Marco Iodicedb9d46d2018-08-08 12:29:38 +0100525 // Create temporary GEMM output tensor in case we cannot skip col2im
Georgios Pinitasc7b183a2020-03-06 18:12:09 +0000526 const DataType output_data_type = data_type == DataType::BFLOAT16 ? DataType::F32 : data_type;
Gian Marco Iodicedb9d46d2018-08-08 12:29:38 +0100527 if(!skip_col2im)
Isabella Gottardi6acc6ad2018-02-02 17:19:18 +0000528 {
Gian Marco Iodice597a8562018-08-01 15:06:06 +0100529 TensorShape shape_gemm = gemm_input_to_use->tensor_shape();
530 shape_gemm.set(0, mat_weights_cols);
531 shape_gemm.set(1, conv_w * conv_h);
Georgios Pinitasc7b183a2020-03-06 18:12:09 +0000532 info_gemm = TensorInfo(shape_gemm, 1, output_data_type);
Michalis Spyroue2503892018-04-23 15:17:31 +0100533 }
Georgios Pinitasbb081ca2018-11-08 10:22:01 +0000534 else
535 {
Georgios Pinitasc7b183a2020-03-06 18:12:09 +0000536 info_gemm = TensorInfo(output->tensor_shape(), 1, output_data_type);
Georgios Pinitasbb081ca2018-11-08 10:22:01 +0000537 }
538 info_gemm.set_quantization_info(output->quantization_info()).set_data_layout(input->data_layout());
539 gemm_output_to_use = &info_gemm;
George Wort2d7e6832019-02-22 16:37:41 +0000540 ARM_COMPUTE_RETURN_ON_ERROR(validate_mm(gemm_input_to_use, weights_to_use, biases, gemm_output_to_use, act_info, skip_col2im ? conv_h : 0, skip_im2col));
Gian Marco Iodice597a8562018-08-01 15:06:06 +0100541
Gian Marco Iodicedb9d46d2018-08-08 12:29:38 +0100542 // Validate Col2Im/ReshapeLayer
543 if(!skip_col2im && (data_layout == DataLayout::NCHW))
Gian Marco Iodice597a8562018-08-01 15:06:06 +0100544 {
George Wort2d7e6832019-02-22 16:37:41 +0000545 ARM_COMPUTE_RETURN_ON_ERROR(NECol2ImKernel::validate(gemm_output_to_use, output, Size2D(conv_w, conv_h)));
Gian Marco Iodice597a8562018-08-01 15:06:06 +0100546 }
547
Isabella Gottardi6acc6ad2018-02-02 17:19:18 +0000548 return Status{};
549}
550
551void NEGEMMConvolutionLayer::run()
552{
Georgios Pinitas72219332018-06-05 14:56:06 +0100553 prepare();
Isabella Gottardi6acc6ad2018-02-02 17:19:18 +0000554
Georgios Pinitasda953f22019-04-02 17:27:03 +0100555 MemoryGroupResourceScope scope_mg(_memory_group);
Isabella Gottardi6acc6ad2018-02-02 17:19:18 +0000556
Michalis Spyroue2503892018-04-23 15:17:31 +0100557 if(!_skip_im2col)
558 {
559 // Run input reshaping
Gian Marco Iodice597a8562018-08-01 15:06:06 +0100560 unsigned int y_dim = get_data_layout_dimension_index(_data_layout, DataLayoutDimension::HEIGHT);
Michalis Spyrouebcebf12020-10-21 00:04:14 +0100561 NEScheduler::get().schedule(_im2col_kernel.get(), y_dim);
Michalis Spyroue2503892018-04-23 15:17:31 +0100562 }
Isabella Gottardi6acc6ad2018-02-02 17:19:18 +0000563
Gian Marco Iodice597a8562018-08-01 15:06:06 +0100564 // Runs NEGEMM or NEGEMMLowpMatrixMultiplyCore functions
565 if(_is_quantized)
Isabella Gottardi6acc6ad2018-02-02 17:19:18 +0000566 {
Gian Marco Iodice597a8562018-08-01 15:06:06 +0100567 // Run gemmlowp
568 _mm_gemmlowp.run();
Isabella Gottardi6acc6ad2018-02-02 17:19:18 +0000569 }
570 else
571 {
Gian Marco Iodice597a8562018-08-01 15:06:06 +0100572 // Run gemm
573 _mm_gemm.run();
Isabella Gottardi6acc6ad2018-02-02 17:19:18 +0000574 }
575
Isabella Gottardi6acc6ad2018-02-02 17:19:18 +0000576 // Reshape output matrix
Georgios Pinitase413d252018-11-14 18:29:58 +0000577 if(!_skip_col2im)
Michalis Spyroue2503892018-04-23 15:17:31 +0100578 {
Georgios Pinitase413d252018-11-14 18:29:58 +0000579 if(_data_layout == DataLayout::NCHW)
580 {
Michalis Spyrouebcebf12020-10-21 00:04:14 +0100581 NEScheduler::get().schedule(_col2im_kernel.get(), Window::DimY);
Georgios Pinitase413d252018-11-14 18:29:58 +0000582 }
583 else
584 {
585 _reshape_layer.run();
586 }
Michalis Spyroue2503892018-04-23 15:17:31 +0100587 }
Isabella Gottardi6acc6ad2018-02-02 17:19:18 +0000588}
Georgios Pinitas72219332018-06-05 14:56:06 +0100589
590void NEGEMMConvolutionLayer::prepare()
591{
592 if(!_is_prepared)
593 {
Michalis Spyrou1a569a32019-09-10 17:20:34 +0100594 if(_weights_manager && _weights_manager->are_weights_managed(_original_weights))
595 {
596 _weights_manager->run(_original_weights, &_reshape_weights_managed);
597 }
598 else
599 {
600 // Run weights reshaping and mark original weights tensor as unused
601 _weights_reshaped.allocator()->allocate();
602 _reshape_weights.run();
603 _original_weights->mark_as_unused();
604 }
Georgios Pinitas72219332018-06-05 14:56:06 +0100605
Gian Marco Iodice597a8562018-08-01 15:06:06 +0100606 // Prepare GEMM
607 _is_quantized ? _mm_gemmlowp.prepare() : _mm_gemm.prepare();
Georgios Pinitas72219332018-06-05 14:56:06 +0100608 if(!_weights_reshaped.is_used())
609 {
610 _weights_reshaped.allocator()->free();
611 }
612
613 _is_prepared = true;
614 }
615}
Michalis Spyroue7be8a02019-12-12 16:16:09 +0000616} // namespace arm_compute