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Anthony Barbier6ff3b192017-09-04 18:44:23 +01001/*
Isabella Gottardi0a1090a2019-02-14 18:07:36 +00002 * Copyright (c) 2016-2019 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 */
24#include "arm_compute/core/NEON/kernels/NEGEMMTranspose1xWKernel.h"
25
Michele Di Giorgio9d3e7f92019-08-13 14:23:21 +010026#include "arm_compute/core/AccessWindowStatic.h"
Anthony Barbier6ff3b192017-09-04 18:44:23 +010027#include "arm_compute/core/Coordinates.h"
28#include "arm_compute/core/Error.h"
29#include "arm_compute/core/Helpers.h"
30#include "arm_compute/core/ITensor.h"
31#include "arm_compute/core/NEON/INEKernel.h"
32#include "arm_compute/core/TensorInfo.h"
33#include "arm_compute/core/TensorShape.h"
34#include "arm_compute/core/Types.h"
35#include "arm_compute/core/Validate.h"
36#include "arm_compute/core/Window.h"
37
38#include <arm_neon.h>
39#include <cstddef>
40#include <cstring>
41
42using namespace arm_compute;
43
Georgios Pinitasa3b1b462017-11-16 19:24:39 +000044namespace
45{
46TensorShape get_output_shape(const ITensorInfo *input)
47{
48 TensorShape output_shape{ input->tensor_shape() };
49 const size_t transpose_w = 16 / input->element_size();
50 output_shape.set(0, input->dimension(1) * transpose_w);
51 output_shape.set(1, static_cast<size_t>(std::ceil((input->dimension(0) / static_cast<float>(transpose_w)))));
52 return output_shape;
53}
54
Georgios Pinitas631c41a2017-12-06 11:53:03 +000055Status validate_arguments(const ITensorInfo *input, const ITensorInfo *output)
Georgios Pinitasa3b1b462017-11-16 19:24:39 +000056{
Anthony Barbiereaefd002018-07-20 17:49:35 +010057 //Note: ARM_COMPUTE_RETURN_ERROR_ON_CPU_F16_UNSUPPORTED(input) is not needed here as this kernel doesn't use NEON FP16 instructions.
Vidhya Sudhan Loganathan7485d5a2018-07-04 09:34:00 +010058 ARM_COMPUTE_RETURN_ERROR_ON_DATA_TYPE_CHANNEL_NOT_IN(input, 1, DataType::QASYMM8, DataType::U8, DataType::S8,
59 DataType::U16, DataType::S16, DataType::U32, DataType::S32,
Georgios Pinitasa3b1b462017-11-16 19:24:39 +000060 DataType::F16, DataType::F32);
61 ARM_COMPUTE_RETURN_ERROR_ON_MISMATCHING_DATA_TYPES(input, output);
Georgios Pinitasa3b1b462017-11-16 19:24:39 +000062
63 if(output->total_size() != 0)
64 {
65 ARM_COMPUTE_RETURN_ERROR_ON_MISMATCHING_DIMENSIONS(output->tensor_shape(), get_output_shape(input));
66 ARM_COMPUTE_RETURN_ERROR_ON_MISMATCHING_DATA_TYPES(input, output);
Isabella Gottardi0a1090a2019-02-14 18:07:36 +000067 ARM_COMPUTE_RETURN_ERROR_ON_MISMATCHING_QUANTIZATION_INFO(input, output);
Georgios Pinitasa3b1b462017-11-16 19:24:39 +000068 }
69
Georgios Pinitas631c41a2017-12-06 11:53:03 +000070 return Status{};
Georgios Pinitasa3b1b462017-11-16 19:24:39 +000071}
72
Georgios Pinitas631c41a2017-12-06 11:53:03 +000073std::pair<Status, Window> validate_and_configure_window(ITensorInfo *input, ITensorInfo *output)
Georgios Pinitasa3b1b462017-11-16 19:24:39 +000074{
75 const unsigned int num_elems_processed_per_iteration = 16 / input->element_size();
Georgios Pinitasa3b1b462017-11-16 19:24:39 +000076
77 // Configure kernel window
78 Window win = calculate_max_window(*input, Steps(num_elems_processed_per_iteration));
79
Georgios Pinitasa3b1b462017-11-16 19:24:39 +000080 AccessWindowHorizontal input_access(input, 0, num_elems_processed_per_iteration);
Georgios Pinitasa3b1b462017-11-16 19:24:39 +000081
82 // Configure window in case of configured output
83 if(output->total_size() != 0)
84 {
Michele Di Giorgio9d3e7f92019-08-13 14:23:21 +010085 AccessWindowStatic output_access(output, 0, 0, output->dimension(0), output->dimension(1));
86 output_access.set_valid_region(win, ValidRegion(Coordinates(), output->tensor_shape()));
Georgios Pinitasa3b1b462017-11-16 19:24:39 +000087 }
88
Michele Di Giorgio9d3e7f92019-08-13 14:23:21 +010089 const bool window_changed = update_window_and_padding(win, input_access);
90
Georgios Pinitas631c41a2017-12-06 11:53:03 +000091 Status err = (window_changed) ? ARM_COMPUTE_CREATE_ERROR(ErrorCode::RUNTIME_ERROR, "Insufficient Padding!") : Status{};
Georgios Pinitasa3b1b462017-11-16 19:24:39 +000092 return std::make_pair(err, win);
93}
94} // namespace
95
Anthony Barbier6ff3b192017-09-04 18:44:23 +010096void NEGEMMTranspose1xWKernel::configure(const ITensor *input, ITensor *output)
97{
Georgios Pinitasa3b1b462017-11-16 19:24:39 +000098 ARM_COMPUTE_ERROR_ON_NULLPTR(input, output);
Anthony Barbier6ff3b192017-09-04 18:44:23 +010099
100 // Output tensor auto inizialitation if not yet initialized
Vidhya Sudhan Loganathan7485d5a2018-07-04 09:34:00 +0100101 auto_init_if_empty(*output->info(), get_output_shape(input->info()), 1, input->info()->data_type());
Anthony Barbier6ff3b192017-09-04 18:44:23 +0100102
Georgios Pinitasa3b1b462017-11-16 19:24:39 +0000103 // Perform validate step
104 ARM_COMPUTE_ERROR_THROW_ON(validate_arguments(input->info(), output->info()));
Anthony Barbier6ff3b192017-09-04 18:44:23 +0100105
106 _input = input;
107 _output = output;
108
109 // Configure kernel window
Georgios Pinitasa3b1b462017-11-16 19:24:39 +0000110 auto win_config = validate_and_configure_window(input->info(), output->info());
111 ARM_COMPUTE_ERROR_THROW_ON(win_config.first);
112 INEKernel::configure(win_config.second);
113}
Moritz Pflanzer0745a982017-07-05 16:34:28 +0100114
Georgios Pinitas631c41a2017-12-06 11:53:03 +0000115Status NEGEMMTranspose1xWKernel::validate(const ITensorInfo *input, const ITensorInfo *output)
Georgios Pinitasa3b1b462017-11-16 19:24:39 +0000116{
117 ARM_COMPUTE_RETURN_ON_ERROR(validate_arguments(input, output));
118 ARM_COMPUTE_RETURN_ON_ERROR(validate_and_configure_window(input->clone().get(), output->clone().get()).first);
Moritz Pflanzer0745a982017-07-05 16:34:28 +0100119
Georgios Pinitas631c41a2017-12-06 11:53:03 +0000120 return Status{};
Anthony Barbier6ff3b192017-09-04 18:44:23 +0100121}
122
Moritz Pflanzerc186b572017-09-07 09:48:04 +0100123void NEGEMMTranspose1xWKernel::run(const Window &window, const ThreadInfo &info)
Anthony Barbier6ff3b192017-09-04 18:44:23 +0100124{
Moritz Pflanzerc186b572017-09-07 09:48:04 +0100125 ARM_COMPUTE_UNUSED(info);
Anthony Barbier6ff3b192017-09-04 18:44:23 +0100126 ARM_COMPUTE_ERROR_ON_UNCONFIGURED_KERNEL(this);
127 ARM_COMPUTE_ERROR_ON_INVALID_SUBWINDOW(INESimpleKernel::window(), window);
128
129 /*
130 * Following an example of how the transposition1xW works when the input data type is F32
131 *
132 * |a00 a01 a02 a03|
133 * |a10 a11 a12 a13|
134 * |a20 a21 a22 a23| = | a00 a01 a02 a03 || a10 a11 a12 a13 || a20 a21 a22 a23 || a30 a31 a32 a33 |
135 * |a30 a31 a32 a33|
136 *
137 * The output matrix will have the following shape: [ height * W, ceil(width / W) ], where W = (16 / element size of the tensor)
138 */
139
140 // Set window for output tensor. Set to 0 the X and Y dimensions in order to allow multi-threading implementation and future batched matrix multiplications
141 Window win_out(window);
142 win_out.set(Window::DimX, Window::Dimension(0, 0, 0));
143 win_out.set(Window::DimY, Window::Dimension(0, 0, 0));
144
145 Iterator in(_input, window);
146 Iterator out(_output, win_out);
147
148 switch(_input->info()->element_size())
149 {
150 case 1:
151 {
152 const size_t out_stride = _output->info()->strides_in_bytes()[1];
153 execute_window_loop(window, [&](const Coordinates & id)
154 {
155 // Output address = base addr + (y * 16) + (x / 16 ) * stride
156 const uint8_t *in_ptr = in.ptr();
157 uint8_t *const out_ptr = out.ptr() + (id.y() << 4) + (id.x() >> 4) * out_stride;
158 vst1q_u8(out_ptr, vld1q_u8(in_ptr));
159 },
160 in, out);
161 break;
162 }
163 case 2:
164 {
165 const size_t out_stride = _output->info()->strides_in_bytes()[1] / sizeof(int16_t);
166 execute_window_loop(window, [&](const Coordinates & id)
167 {
168 // Output address = base addr + (y * 8) + (x / 8 ) * stride
169 const auto in_ptr = reinterpret_cast<const uint16_t *>(in.ptr());
170 const auto out_ptr = reinterpret_cast<uint16_t *>(out.ptr()) + (id.y() << 3) + (id.x() >> 3) * out_stride;
171 vst1q_u16(out_ptr, vld1q_u16(in_ptr));
172 },
173 in, out);
174 break;
175 }
176 case 4:
177 {
178 const size_t out_stride = _output->info()->strides_in_bytes()[1] / sizeof(float);
179 execute_window_loop(window, [&](const Coordinates & id)
180 {
181 // Output address = base addr + (y * 4) + (x / 4 ) * stride
182 const auto in_ptr = reinterpret_cast<const uint32_t *>(in.ptr());
183 const auto out_ptr = reinterpret_cast<uint32_t *>(out.ptr()) + (id.y() << 2) + (id.x() >> 2) * out_stride;
184 vst1q_u32(out_ptr, vld1q_u32(in_ptr));
185 },
186 in, out);
187 break;
188 }
189 default:
190 {
191 ARM_COMPUTE_ERROR("Element size not supported");
192 break;
193 }
194 }
195}