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Anthony Barbier6ff3b192017-09-04 18:44:23 +01001/*
Usama Arif8cf8c112019-03-14 15:36:54 +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/Error.h"
25#include "arm_compute/core/Validate.h"
26
27#include <cmath>
28#include <numeric>
29
30namespace arm_compute
31{
Anthony Barbier6ff3b192017-09-04 18:44:23 +010032inline uint8_t pixel_area_c1u8_clamp(const uint8_t *first_pixel_ptr, size_t stride, size_t width, size_t height, float wr, float hr, int x, int y)
33{
34 ARM_COMPUTE_ERROR_ON(first_pixel_ptr == nullptr);
35
36 // Calculate sampling position
37 float in_x = (x + 0.5f) * wr - 0.5f;
38 float in_y = (y + 0.5f) * hr - 0.5f;
39
40 // Get bounding box offsets
41 int x_from = std::floor(x * wr - 0.5f - in_x);
42 int y_from = std::floor(y * hr - 0.5f - in_y);
43 int x_to = std::ceil((x + 1) * wr - 0.5f - in_x);
44 int y_to = std::ceil((y + 1) * hr - 0.5f - in_y);
45
46 // Clamp position to borders
47 in_x = std::max(-1.f, std::min(in_x, static_cast<float>(width)));
48 in_y = std::max(-1.f, std::min(in_y, static_cast<float>(height)));
49
50 // Clamp bounding box offsets to borders
51 x_from = ((in_x + x_from) < -1) ? -1 : x_from;
52 y_from = ((in_y + y_from) < -1) ? -1 : y_from;
53 x_to = ((in_x + x_to) > width) ? (width - in_x) : x_to;
54 y_to = ((in_y + y_to) > height) ? (height - in_y) : y_to;
55
56 // Get pixel index
57 const int xi = std::floor(in_x);
58 const int yi = std::floor(in_y);
59
60 // Bounding box elements in each dimension
61 const int x_elements = (x_to - x_from + 1);
62 const int y_elements = (y_to - y_from + 1);
63 ARM_COMPUTE_ERROR_ON(x_elements == 0 || y_elements == 0);
64
65 // Sum pixels in area
66 int sum = 0;
67 for(int j = yi + y_from, je = yi + y_to; j <= je; ++j)
68 {
69 const uint8_t *ptr = first_pixel_ptr + j * stride + xi + x_from;
70 sum = std::accumulate(ptr, ptr + x_elements, sum);
71 }
72
73 // Return average
74 return sum / (x_elements * y_elements);
75}
76
77template <size_t dimension>
78struct IncrementIterators
79{
80 template <typename T, typename... Ts>
81 static void unroll(T &&it, Ts &&... iterators)
82 {
Diego Lopez Recas490b3d82017-12-19 15:42:25 +000083 auto increment = [](T && it)
84 {
85 it.increment(dimension);
86 };
87 utility::for_each(increment, std::forward<T>(it), std::forward<Ts>(iterators)...);
Anthony Barbier6ff3b192017-09-04 18:44:23 +010088 }
Anthony Barbier6ff3b192017-09-04 18:44:23 +010089 static void unroll()
90 {
91 // End of recursion
92 }
93};
94
95template <size_t dim>
96struct ForEachDimension
97{
98 template <typename L, typename... Ts>
99 static void unroll(const Window &w, Coordinates &id, L &&lambda_function, Ts &&... iterators)
100 {
101 const auto &d = w[dim - 1];
102
103 for(auto v = d.start(); v < d.end(); v += d.step(), IncrementIterators < dim - 1 >::unroll(iterators...))
104 {
105 id.set(dim - 1, v);
106 ForEachDimension < dim - 1 >::unroll(w, id, lambda_function, iterators...);
107 }
108 }
109};
110
111template <>
112struct ForEachDimension<0>
113{
114 template <typename L, typename... Ts>
115 static void unroll(const Window &w, Coordinates &id, L &&lambda_function, Ts &&... iterators)
116 {
Michalis Spyrou6bff1952019-10-02 17:22:11 +0100117 ARM_COMPUTE_UNUSED(w, iterators...);
Anthony Barbier6ff3b192017-09-04 18:44:23 +0100118 lambda_function(id);
119 }
120};
121
122template <typename L, typename... Ts>
123inline void execute_window_loop(const Window &w, L &&lambda_function, Ts &&... iterators)
124{
125 w.validate();
126
Diego Lopez Recas0021d752017-12-18 14:42:56 +0000127 for(unsigned int i = 0; i < Coordinates::num_max_dimensions; ++i)
128 {
129 ARM_COMPUTE_ERROR_ON(w[i].step() == 0);
130 }
131
Anthony Barbier6ff3b192017-09-04 18:44:23 +0100132 Coordinates id;
133 ForEachDimension<Coordinates::num_max_dimensions>::unroll(w, id, std::forward<L>(lambda_function), std::forward<Ts>(iterators)...);
134}
135
136inline constexpr Iterator::Iterator()
137 : _ptr(nullptr), _dims()
138{
139}
140
141inline Iterator::Iterator(const ITensor *tensor, const Window &win)
142 : Iterator()
143{
144 ARM_COMPUTE_ERROR_ON(tensor == nullptr);
Diego Lopez Recas0021d752017-12-18 14:42:56 +0000145 ARM_COMPUTE_ERROR_ON(tensor->info() == nullptr);
146
147 const ITensorInfo *info = tensor->info();
148 const Strides &strides = info->strides_in_bytes();
Anthony Barbier6ff3b192017-09-04 18:44:23 +0100149
150 _ptr = tensor->buffer() + info->offset_first_element_in_bytes();
151
152 //Initialize the stride for each dimension and calculate the position of the first element of the iteration:
153 for(unsigned int n = 0; n < info->num_dimensions(); ++n)
154 {
155 _dims[n]._stride = win[n].step() * strides[n];
156 std::get<0>(_dims)._dim_start += strides[n] * win[n].start();
157 }
158
159 //Copy the starting point to all the dimensions:
160 for(unsigned int n = 1; n < Coordinates::num_max_dimensions; ++n)
161 {
162 _dims[n]._dim_start = std::get<0>(_dims)._dim_start;
163 }
164
165 ARM_COMPUTE_ERROR_ON_WINDOW_DIMENSIONS_GTE(win, info->num_dimensions());
166}
167
168inline void Iterator::increment(const size_t dimension)
169{
170 ARM_COMPUTE_ERROR_ON(dimension >= Coordinates::num_max_dimensions);
171
172 _dims[dimension]._dim_start += _dims[dimension]._stride;
173
174 for(unsigned int n = 0; n < dimension; ++n)
175 {
176 _dims[n]._dim_start = _dims[dimension]._dim_start;
177 }
178}
179
180inline constexpr int Iterator::offset() const
181{
182 return _dims.at(0)._dim_start;
183}
184
185inline constexpr uint8_t *Iterator::ptr() const
186{
187 return _ptr + _dims.at(0)._dim_start;
188}
189
190inline void Iterator::reset(const size_t dimension)
191{
192 ARM_COMPUTE_ERROR_ON(dimension >= Coordinates::num_max_dimensions - 1);
193
194 _dims[dimension]._dim_start = _dims[dimension + 1]._dim_start;
195
196 for(unsigned int n = 0; n < dimension; ++n)
197 {
198 _dims[n]._dim_start = _dims[dimension]._dim_start;
199 }
200}
201
Georgios Pinitas05078ec2017-11-02 13:06:59 +0000202inline bool auto_init_if_empty(ITensorInfo &info,
203 const TensorShape &shape,
204 int num_channels,
205 DataType data_type,
Georgios Pinitas05078ec2017-11-02 13:06:59 +0000206 QuantizationInfo quantization_info)
Anthony Barbier6ff3b192017-09-04 18:44:23 +0100207{
208 if(info.tensor_shape().total_size() == 0)
209 {
210 info.set_data_type(data_type);
Anthony Barbier6ff3b192017-09-04 18:44:23 +0100211 info.set_num_channels(num_channels);
Gian Marco Iodice559d7712017-08-08 08:38:09 +0100212 info.set_tensor_shape(shape);
Georgios Pinitas05078ec2017-11-02 13:06:59 +0000213 info.set_quantization_info(quantization_info);
Anthony Barbier6ff3b192017-09-04 18:44:23 +0100214 return true;
215 }
216
217 return false;
218}
219
Pablo Palmiera2b89ca2017-10-05 15:01:34 +0100220inline bool auto_init_if_empty(ITensorInfo &info_sink, const ITensorInfo &info_source)
Georgios Pinitas283c1792017-11-10 18:14:06 +0000221{
222 if(info_sink.tensor_shape().total_size() == 0)
223 {
224 info_sink.set_data_type(info_source.data_type());
225 info_sink.set_num_channels(info_source.num_channels());
226 info_sink.set_tensor_shape(info_source.tensor_shape());
Georgios Pinitas283c1792017-11-10 18:14:06 +0000227 info_sink.set_quantization_info(info_source.quantization_info());
Isabella Gottardid17a6772018-02-27 17:41:55 +0000228 info_sink.set_data_layout(info_source.data_layout());
Georgios Pinitas283c1792017-11-10 18:14:06 +0000229 return true;
230 }
231
232 return false;
233}
234
Anthony Barbier6ff3b192017-09-04 18:44:23 +0100235inline bool set_shape_if_empty(ITensorInfo &info, const TensorShape &shape)
236{
237 if(info.tensor_shape().total_size() == 0)
238 {
239 info.set_tensor_shape(shape);
240 return true;
241 }
242
243 return false;
244}
245
246inline bool set_format_if_unknown(ITensorInfo &info, Format format)
247{
248 if(info.data_type() == DataType::UNKNOWN)
249 {
250 info.set_format(format);
251 return true;
252 }
253
254 return false;
255}
256
257inline bool set_data_type_if_unknown(ITensorInfo &info, DataType data_type)
258{
259 if(info.data_type() == DataType::UNKNOWN)
260 {
261 info.set_data_type(data_type);
262 return true;
263 }
264
265 return false;
266}
267
Isabella Gottardid17a6772018-02-27 17:41:55 +0000268inline bool set_data_layout_if_unknown(ITensorInfo &info, DataLayout data_layout)
269{
270 if(info.data_layout() == DataLayout::UNKNOWN)
271 {
272 info.set_data_layout(data_layout);
273 return true;
274 }
275
276 return false;
277}
278
Georgios Pinitas05078ec2017-11-02 13:06:59 +0000279inline bool set_quantization_info_if_empty(ITensorInfo &info, QuantizationInfo quantization_info)
280{
Anton Lokhmotovaf6204c2017-11-08 09:34:19 +0000281 if(info.quantization_info().empty() && (is_data_type_quantized_asymmetric(info.data_type())))
Georgios Pinitas05078ec2017-11-02 13:06:59 +0000282 {
283 info.set_quantization_info(quantization_info);
284 return true;
285 }
286
287 return false;
288}
289
Georgios Pinitas5ee66ea2017-09-07 17:29:16 +0100290inline Coordinates index2coords(const TensorShape &shape, int index)
291{
292 int num_elements = shape.total_size();
293
294 ARM_COMPUTE_ERROR_ON_MSG(index < 0 || index >= num_elements, "Index has to be in [0, num_elements]!");
295 ARM_COMPUTE_ERROR_ON_MSG(num_elements == 0, "Cannot create coordinate from empty shape!");
296
297 Coordinates coord{ 0 };
298
299 for(int d = shape.num_dimensions() - 1; d >= 0; --d)
300 {
301 num_elements /= shape[d];
302 coord.set(d, index / num_elements);
303 index %= num_elements;
304 }
305
306 return coord;
307}
308
309inline int coords2index(const TensorShape &shape, const Coordinates &coord)
310{
311 int num_elements = shape.total_size();
312 ARM_COMPUTE_UNUSED(num_elements);
313 ARM_COMPUTE_ERROR_ON_MSG(num_elements == 0, "Cannot create linear index from empty shape!");
314
315 int index = 0;
316 int stride = 1;
317
318 for(unsigned int d = 0; d < coord.num_dimensions(); ++d)
319 {
320 index += coord[d] * stride;
321 stride *= shape[d];
322 }
323
324 return index;
325}
Isabella Gottardid17a6772018-02-27 17:41:55 +0000326
Isabella Gottardid56e7702018-02-28 14:29:36 +0000327inline size_t get_data_layout_dimension_index(const DataLayout data_layout, const DataLayoutDimension data_layout_dimension)
Isabella Gottardid17a6772018-02-27 17:41:55 +0000328{
Isabella Gottardid56e7702018-02-28 14:29:36 +0000329 ARM_COMPUTE_ERROR_ON_MSG(data_layout == DataLayout::UNKNOWN, "Cannot retrieve the dimension index for an unknown layout!");
Isabella Gottardid17a6772018-02-27 17:41:55 +0000330
331 /* Return the index based on the data layout
332 * [N C H W]
333 * [3 2 1 0]
334 * [N H W C]
335 */
336 switch(data_layout_dimension)
337 {
338 case DataLayoutDimension::CHANNEL:
Isabella Gottardid56e7702018-02-28 14:29:36 +0000339 return (data_layout == DataLayout::NCHW) ? 2 : 0;
Isabella Gottardid17a6772018-02-27 17:41:55 +0000340 break;
341 case DataLayoutDimension::HEIGHT:
Isabella Gottardid56e7702018-02-28 14:29:36 +0000342 return (data_layout == DataLayout::NCHW) ? 1 : 2;
Isabella Gottardid17a6772018-02-27 17:41:55 +0000343 break;
344 case DataLayoutDimension::WIDTH:
Isabella Gottardid56e7702018-02-28 14:29:36 +0000345 return (data_layout == DataLayout::NCHW) ? 0 : 1;
Isabella Gottardid17a6772018-02-27 17:41:55 +0000346 break;
347 case DataLayoutDimension::BATCHES:
348 return 3;
349 break;
350 default:
351 ARM_COMPUTE_ERROR("Data layout index not supported!");
352 break;
353 }
354}
Usama Arif8cf8c112019-03-14 15:36:54 +0000355
356inline DataLayoutDimension get_index_data_layout_dimension(const DataLayout data_layout, const size_t index)
357{
358 ARM_COMPUTE_ERROR_ON_MSG(data_layout == DataLayout::UNKNOWN, "Cannot retrieve the dimension index for an unknown layout!");
359
360 /* Return the index based on the data layout
361 * [N C H W]
362 * [3 2 1 0]
363 * [N H W C]
364 */
365 switch(index)
366 {
367 case 0:
368 return (data_layout == DataLayout::NCHW) ? DataLayoutDimension::WIDTH : DataLayoutDimension::CHANNEL;
369 break;
370 case 1:
371 return (data_layout == DataLayout::NCHW) ? DataLayoutDimension::HEIGHT : DataLayoutDimension::WIDTH;
372 break;
373 case 2:
374 return (data_layout == DataLayout::NCHW) ? DataLayoutDimension::CHANNEL : DataLayoutDimension::HEIGHT;
375 break;
376 case 3:
377 return DataLayoutDimension::BATCHES;
378 break;
379 default:
380 ARM_COMPUTE_ERROR("Index value not supported!");
381 break;
382 }
383}
Anthony Barbier6ff3b192017-09-04 18:44:23 +0100384} // namespace arm_compute