blob: e3166e02b6533fd7d26290ffb1a8065b9c7553c7 [file] [log] [blame]
Anthony Barbier6ff3b192017-09-04 18:44:23 +01001/*
Manuel Bottini79fa9a22019-02-22 17:54:22 +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/NEPixelWiseMultiplicationKernel.h"
25
Anthony Barbiereaefd002018-07-20 17:49:35 +010026#include "arm_compute/core/CPP/Validate.h"
Anthony Barbier6ff3b192017-09-04 18:44:23 +010027#include "arm_compute/core/Error.h"
28#include "arm_compute/core/Helpers.h"
29#include "arm_compute/core/IAccessWindow.h"
30#include "arm_compute/core/ITensor.h"
Manuel Bottini79fa9a22019-02-22 17:54:22 +000031#include "arm_compute/core/NEON/NEAsymm.h"
Anthony Barbier6ff3b192017-09-04 18:44:23 +010032#include "arm_compute/core/NEON/NEFixedPoint.h"
33#include "arm_compute/core/TensorInfo.h"
Manuel Bottini79fa9a22019-02-22 17:54:22 +000034#include "arm_compute/core/Types.h"
Anthony Barbier6ff3b192017-09-04 18:44:23 +010035#include "arm_compute/core/Validate.h"
Anthony Barbier6ff3b192017-09-04 18:44:23 +010036
37#include <arm_neon.h>
38#include <climits>
39#include <cmath>
40#include <cstdint>
41#include <cstdlib>
42
Ioan-Cristian Szabo5edbd1c2017-11-13 13:34:08 +000043#if __ARM_FEATURE_FP16_VECTOR_ARITHMETIC
Pablo Tellodf246182017-07-03 16:25:09 +010044#include <arm_fp16.h> // needed for float16_t
Ioan-Cristian Szabo5edbd1c2017-11-13 13:34:08 +000045#endif /* __ARM_FEATURE_FP16_VECTOR_ARITHMETIC */
Pablo Tellodf246182017-07-03 16:25:09 +010046
Anthony Barbier6ff3b192017-09-04 18:44:23 +010047namespace arm_compute
48{
49class Coordinates;
Anthony Barbier6ff3b192017-09-04 18:44:23 +010050
51namespace
52{
53const float scale255_constant = 1.f / 255.f;
54const float32x4_t scale255_constant_f32q = vdupq_n_f32(scale255_constant);
55const float32x4_t positive_round_f32q = vdupq_n_f32(0.5f);
56
Michalis Spyrou861f0db2018-02-26 16:47:58 +000057constexpr unsigned int num_elems_processed_per_iteration = 16;
58
Georgios Pinitas631c41a2017-12-06 11:53:03 +000059inline Status validate_arguments(const ITensorInfo *input1, const ITensorInfo *input2, const ITensorInfo *output, float scale, ConvertPolicy overflow_policy, RoundingPolicy rounding_policy)
Ioan-Cristian Szabo754e9522017-11-28 18:29:43 +000060{
61 ARM_COMPUTE_UNUSED(overflow_policy);
62 ARM_COMPUTE_UNUSED(rounding_policy);
63
Anthony Barbiereaefd002018-07-20 17:49:35 +010064 ARM_COMPUTE_RETURN_ERROR_ON_CPU_F16_UNSUPPORTED(input1);
Manuel Bottini79fa9a22019-02-22 17:54:22 +000065 ARM_COMPUTE_RETURN_ERROR_ON_DATA_TYPE_CHANNEL_NOT_IN(input1, 1, DataType::U8, DataType::QASYMM8, DataType::S16, DataType::F16, DataType::F32);
66 ARM_COMPUTE_RETURN_ERROR_ON_DATA_TYPE_CHANNEL_NOT_IN(input2, 1, DataType::U8, DataType::QASYMM8, DataType::S16, DataType::F16, DataType::F32);
67 ARM_COMPUTE_RETURN_ERROR_ON_DATA_TYPE_CHANNEL_NOT_IN(output, 1, DataType::U8, DataType::QASYMM8, DataType::S16, DataType::F16, DataType::F32);
Ioan-Cristian Szabo754e9522017-11-28 18:29:43 +000068 ARM_COMPUTE_RETURN_ERROR_ON_MSG(output->data_type() == DataType::U8 && (input1->data_type() != DataType::U8 || input2->data_type() != DataType::U8),
69 "Output can only be U8 if both inputs are U8");
70
Manuel Bottini79fa9a22019-02-22 17:54:22 +000071 ARM_COMPUTE_RETURN_ERROR_ON_MSG(input1->data_type() == DataType::QASYMM8 && input2->data_type() != DataType::QASYMM8,
72 "Input2 must be QASYMM8 if both input1 is QASYMM8");
73
74 ARM_COMPUTE_RETURN_ERROR_ON_MSG(input1->data_type() == DataType::QASYMM8 && input2->data_type() == DataType::QASYMM8 && overflow_policy == ConvertPolicy::WRAP,
75 "ConvertPolicy cannot be WRAP if datatype is QASYMM8");
76
77 if(output->total_size() > 0)
78 {
79 if(output->data_type() == DataType::QASYMM8)
80 {
81 ARM_COMPUTE_RETURN_ERROR_ON_MISMATCHING_DATA_TYPES(input1, input2, output);
82 }
83
84 const TensorShape &out_shape = TensorShape::broadcast_shape(input1->tensor_shape(), input2->tensor_shape());
85 ARM_COMPUTE_RETURN_ERROR_ON_MSG(detail::have_different_dimensions(out_shape, output->tensor_shape(), 0), "Wrong shape for output");
86 ARM_COMPUTE_RETURN_ERROR_ON_MSG(out_shape.total_size() == 0, "Inputs are not broadcast compatible");
87 }
Michalis Spyrou861f0db2018-02-26 16:47:58 +000088
Ioan-Cristian Szabo754e9522017-11-28 18:29:43 +000089 if(std::abs(scale - scale255_constant) < 0.00001f)
90 {
91 ARM_COMPUTE_RETURN_ERROR_ON(rounding_policy != RoundingPolicy::TO_NEAREST_UP && rounding_policy != RoundingPolicy::TO_NEAREST_EVEN);
92 }
93 else
94 {
95 ARM_COMPUTE_RETURN_ERROR_ON(rounding_policy != RoundingPolicy::TO_ZERO);
96
97 int exponent = 0;
98 const float normalized_mantissa = std::frexp(scale, &exponent);
99
100 // Use int scaling if factor is equal to 1/2^n for 0 <= n <= 15
101 // frexp returns 0.5 as mantissa which means that the exponent will be in the range of -1 <= e <= 14
102 // Moreover, it will be negative as we deal with 1/2^n
103 ARM_COMPUTE_RETURN_ERROR_ON_MSG(!((normalized_mantissa == 0.5f) && (-14 <= exponent) && (exponent <= 1)), "Scale value not supported (Should be 1/(2^n) or 1/255");
104 }
105
Georgios Pinitas631c41a2017-12-06 11:53:03 +0000106 return Status{};
Ioan-Cristian Szabo754e9522017-11-28 18:29:43 +0000107}
108
Georgios Pinitas631c41a2017-12-06 11:53:03 +0000109inline std::pair<Status, Window> validate_and_configure_window(ITensorInfo *input1, ITensorInfo *input2, ITensorInfo *output)
Ioan-Cristian Szabo754e9522017-11-28 18:29:43 +0000110{
Michalis Spyrou861f0db2018-02-26 16:47:58 +0000111 const std::pair<TensorShape, ValidRegion> broadcast_pair = ITensorInfo::broadcast_shape_and_valid_region(*input1, *input2);
112 const ValidRegion &valid_region = broadcast_pair.second;
113
114 // Auto initialize output if not initialized
115 {
116 set_shape_if_empty(*output, input1->tensor_shape());
117
118 if(input1->data_type() == DataType::S16 || input2->data_type() == DataType::S16)
119 {
120 set_format_if_unknown(*output, Format::S16);
121 }
122 else if(input1->data_type() == DataType::F32 || input2->data_type() == DataType::F32)
123 {
124 set_format_if_unknown(*output, Format::F32);
125 }
126 else if(input1->data_type() == DataType::F16 || input2->data_type() == DataType::F16)
127 {
128 set_format_if_unknown(*output, Format::F16);
129 }
Michalis Spyrou861f0db2018-02-26 16:47:58 +0000130 }
Ioan-Cristian Szabo754e9522017-11-28 18:29:43 +0000131
132 // Configure kernel window
Michalis Spyrou861f0db2018-02-26 16:47:58 +0000133 Window win = calculate_max_window(valid_region, Steps(num_elems_processed_per_iteration));
134 Window win_input1 = win.broadcast_if_dimension_le_one(*input1);
135 Window win_input2 = win.broadcast_if_dimension_le_one(*input2);
136
137 AccessWindowHorizontal input1_access(input1, 0, num_elems_processed_per_iteration);
138 AccessWindowHorizontal input2_access(input2, 0, num_elems_processed_per_iteration);
Ioan-Cristian Szabo754e9522017-11-28 18:29:43 +0000139 AccessWindowHorizontal output_access(output, 0, num_elems_processed_per_iteration);
140
Michalis Spyrou861f0db2018-02-26 16:47:58 +0000141 bool window_changed = update_window_and_padding(win_input1, input1_access)
142 || update_window_and_padding(win_input2, input2_access)
143 || update_window_and_padding(win, output_access);
Ioan-Cristian Szabo754e9522017-11-28 18:29:43 +0000144
145 output_access.set_valid_region(win, valid_region);
146
Georgios Pinitas631c41a2017-12-06 11:53:03 +0000147 Status err = (window_changed) ? ARM_COMPUTE_CREATE_ERROR(ErrorCode::RUNTIME_ERROR, "Insufficient Padding!") : Status{};
Ioan-Cristian Szabo754e9522017-11-28 18:29:43 +0000148 return std::make_pair(err, win);
149}
150
Anthony Barbier6ff3b192017-09-04 18:44:23 +0100151/* Scales a given vector by 1/255.
152 *
153 * @note This does not work for all cases. e.g. for float of 0.49999999999999994 and large floats.
154 *
155 * @param in Input vector to scale.
156 * @return Scaled output rounded to nearest (round half up).
157 */
158inline int32x4_t scale255_S32_S32(int32x4_t in)
159{
160 // Scale
161 const float32x4_t tmp = vmulq_f32(vcvtq_f32_s32(in), scale255_constant_f32q);
162 // Round to nearest (round half up)
163 // Add +0.5 for all values
164 // Afterwards vcvt rounds toward zero
165 return vcvtq_s32_f32(vaddq_f32(tmp, positive_round_f32q));
166}
167
168inline uint16x8_t scale255_U16_U16(uint16x8_t in)
169{
170 const int32x4_t tmp_s1 = scale255_S32_S32(vreinterpretq_s32_u32(vmovl_u16(vget_high_u16(in))));
171 const int32x4_t tmp_s2 = scale255_S32_S32(vreinterpretq_s32_u32(vmovl_u16(vget_low_u16(in))));
172 return vreinterpretq_u16_s16(vcombine_s16(vmovn_s32(tmp_s2), vmovn_s32(tmp_s1)));
173}
174
Manuel Bottini79fa9a22019-02-22 17:54:22 +0000175void mul_saturate_QASYMM8_QASYMM8_QASYMM8_n(const void *__restrict input1_ptr, const void *__restrict input2_ptr, void *__restrict output_ptr, float scale,
176 const QuantizationInfo &input1_qua_info, const QuantizationInfo &input2_qua_info, const QuantizationInfo &output_qua_info)
177{
178 const auto input1 = static_cast<const qasymm8_t *__restrict>(input1_ptr);
179 const auto input2 = static_cast<const qasymm8_t *__restrict>(input2_ptr);
180 const auto output = static_cast<qasymm8_t *__restrict>(output_ptr);
181
182 const qasymm8x16_t input1_q = vld1q_u8(input1);
183 const qasymm8x16_t input2_q = vld1q_u8(input2);
184
185 // Dequantitize inputs
186 const float32x4x4_t in1_f32x4x4 = vdequantize(input1_q, input1_qua_info);
187 const float32x4x4_t in2_f32x4x4 = vdequantize(input2_q, input2_qua_info);
188
189 const QuantizationInfo tmp_qua_info = QuantizationInfo(output_qua_info.scale / scale, output_qua_info.offset);
190
191 const float32x4x4_t out_f32x4x4 =
192 {
193 vmulq_f32(in1_f32x4x4.val[0], in2_f32x4x4.val[0]),
194 vmulq_f32(in1_f32x4x4.val[1], in2_f32x4x4.val[1]),
195 vmulq_f32(in1_f32x4x4.val[2], in2_f32x4x4.val[2]),
196 vmulq_f32(in1_f32x4x4.val[3], in2_f32x4x4.val[3])
197 };
198
199 const uint8x16_t result = vquantize(out_f32x4x4, tmp_qua_info);
200 vst1q_u8(output, result);
201}
202
Anthony Barbier6ff3b192017-09-04 18:44:23 +0100203template <bool is_scale255, bool is_sat>
204void mul_U8_U8_U8_n(const void *__restrict input1_ptr, const void *__restrict input2_ptr, void *__restrict output_ptr, int n)
205{
206 const auto input1 = static_cast<const uint8_t *__restrict>(input1_ptr);
207 const auto input2 = static_cast<const uint8_t *__restrict>(input2_ptr);
208 const auto output = static_cast<uint8_t *__restrict>(output_ptr);
209
210 const uint8x16_t ta1 = vld1q_u8(input1);
211 const uint8x16_t ta2 = vld1q_u8(input2);
212
213 uint16x8_t tmp1_high = vmovl_u8(vget_high_u8(ta1));
214 const uint16x8_t tmp2_high = vmovl_u8(vget_high_u8(ta2));
215 uint16x8_t tmp1_low = vmovl_u8(vget_low_u8(ta1));
216 const uint16x8_t tmp2_low = vmovl_u8(vget_low_u8(ta2));
217
218 tmp1_high = vmulq_u16(tmp1_high, tmp2_high);
219 tmp1_low = vmulq_u16(tmp1_low, tmp2_low);
220
221 if(is_scale255)
222 {
223 tmp1_high = scale255_U16_U16(tmp1_high);
224 tmp1_low = scale255_U16_U16(tmp1_low);
225 }
226 else
227 {
228 const int16x8_t vn = vdupq_n_s16(-n);
229
230 if(is_sat)
231 {
232 tmp1_high = vqshlq_u16(tmp1_high, vn);
233 tmp1_low = vqshlq_u16(tmp1_low, vn);
234 }
235 else
236 {
237 tmp1_high = vshlq_u16(tmp1_high, vn);
238 tmp1_low = vshlq_u16(tmp1_low, vn);
239 }
240 }
241
242 if(is_sat)
243 {
244 vst1q_u8(output, vcombine_u8(vqmovn_u16(tmp1_low), vqmovn_u16(tmp1_high)));
245 }
246 else
247 {
248 vst1q_u8(output, vcombine_u8(vmovn_u16(tmp1_low), vmovn_u16(tmp1_high)));
249 }
250}
251
252template <bool is_scale255, bool is_sat>
Anthony Barbier6ff3b192017-09-04 18:44:23 +0100253inline int16x8_t mul_S16_S16_S16_n_loop(const int16x8_t &input1, const int16x8_t &input2, int n)
254{
255 int32x4_t tmp1_high = vmovl_s16(vget_high_s16(input1));
256 const int32x4_t tmp2_high = vmovl_s16(vget_high_s16(input2));
257 int32x4_t tmp1_low = vmovl_s16(vget_low_s16(input1));
258 const int32x4_t tmp2_low = vmovl_s16(vget_low_s16(input2));
259
260 tmp1_high = vmulq_s32(tmp1_high, tmp2_high);
261 tmp1_low = vmulq_s32(tmp1_low, tmp2_low);
262
263 if(is_scale255)
264 {
265 tmp1_high = scale255_S32_S32(tmp1_high);
266 tmp1_low = scale255_S32_S32(tmp1_low);
267 }
268 else
269 {
270 // Right shift amount
271 const int32x4_t vn = vdupq_n_s32(-n);
272 // Left shift amount
273 const int32x4_t vnl = vdupq_n_s32(n);
274 // Calculate conversion bit
275 const uint32x4_t tmp1_high_u = vreinterpretq_u32_s32(tmp1_high);
276 const uint32x4_t tmp1_low_u = vreinterpretq_u32_s32(tmp1_low);
277 const uint32x4_t sign_high = vshrq_n_u32(tmp1_high_u, 31);
278 const uint32x4_t sign_low = vshrq_n_u32(tmp1_low_u, 31);
279 const int32x4_t sign_high_s = vreinterpretq_s32_u32(sign_high);
280 const int32x4_t sign_low_s = vreinterpretq_s32_u32(sign_low);
281 const int32x4_t convert_high = vsubq_s32(vshlq_s32(sign_high_s, vnl), sign_high_s);
282 const int32x4_t convert_low = vsubq_s32(vshlq_s32(sign_low_s, vnl), sign_low_s);
283 if(is_sat)
284 {
285 tmp1_high = vqshlq_s32(vaddq_s32(tmp1_high, convert_high), vn);
286 tmp1_low = vqshlq_s32(vaddq_s32(tmp1_low, convert_low), vn);
287 }
288 else
289 {
290 tmp1_high = vshlq_s32(vaddq_s32(tmp1_high, convert_high), vn);
291 tmp1_low = vshlq_s32(vaddq_s32(tmp1_low, convert_low), vn);
292 }
293 }
294
295 if(is_sat)
296 {
297 return vcombine_s16(vqmovn_s32(tmp1_low), vqmovn_s32(tmp1_high));
298 }
299 else
300 {
301 return vcombine_s16(vmovn_s32(tmp1_low), vmovn_s32(tmp1_high));
302 }
303}
304
305template <bool is_scale255, bool is_sat>
306inline int16x8x2_t mul_S16_S16_S16_n_k(const int16x8x2_t &input1, const int16x8x2_t &input2, int n)
307{
308 const int16x8x2_t result =
309 {
310 {
311 // First 8 elements
312 mul_S16_S16_S16_n_loop<is_scale255, is_sat>(input1.val[0], input2.val[0], n),
313 // Second 8 elements
314 mul_S16_S16_S16_n_loop<is_scale255, is_sat>(input1.val[1], input2.val[1], n)
315 }
316 };
317
318 return result;
319}
320
321template <bool is_scale255, bool is_sat>
322void mul_S16_S16_S16_n(const void *__restrict input1_ptr, const void *__restrict input2_ptr, void *__restrict output_ptr, int n)
323{
324 const auto input1 = static_cast<const int16_t *__restrict>(input1_ptr);
325 const auto input2 = static_cast<const int16_t *__restrict>(input2_ptr);
326 const auto output = static_cast<int16_t *__restrict>(output_ptr);
327
328 const int16x8x2_t ta1 = vld2q_s16(input1);
329 const int16x8x2_t ta2 = vld2q_s16(input2);
330 const int16x8x2_t result = mul_S16_S16_S16_n_k<is_scale255, is_sat>(ta1, ta2, n);
331
332 vst2q_s16(output, result);
333}
334
Anthony Barbier6ff3b192017-09-04 18:44:23 +0100335void mul_F32_F32_F32_n(const void *__restrict input1_ptr, const void *__restrict input2_ptr, void *__restrict output_ptr, float scale)
336{
337 const auto input1 = static_cast<const float *__restrict>(input1_ptr);
338 const auto input2 = static_cast<const float *__restrict>(input2_ptr);
339 const auto output = static_cast<float *__restrict>(output_ptr);
340
341 const float32x4x4_t ta1 = vld4q_f32(input1);
342 const float32x4x4_t ta2 = vld4q_f32(input2);
343 const float32x4_t scale_vec = vdupq_n_f32(scale);
344 const float32x4x4_t result =
345 {
346 {
347 vmulq_f32(vmulq_f32(ta1.val[0], ta2.val[0]), scale_vec),
348 vmulq_f32(vmulq_f32(ta1.val[1], ta2.val[1]), scale_vec),
349 vmulq_f32(vmulq_f32(ta1.val[2], ta2.val[2]), scale_vec),
350 vmulq_f32(vmulq_f32(ta1.val[3], ta2.val[3]), scale_vec)
351 }
352 };
353 vst4q_f32(output, result);
354}
355
Pablo Tellodf246182017-07-03 16:25:09 +0100356void mul_F16_F16_F16_n(const void *__restrict input1_ptr, const void *__restrict input2_ptr, void *__restrict output_ptr, float scale)
357{
Ioan-Cristian Szabo5edbd1c2017-11-13 13:34:08 +0000358#ifdef __ARM_FEATURE_FP16_VECTOR_ARITHMETIC
Pablo Tellodf246182017-07-03 16:25:09 +0100359 const auto input1 = static_cast<const float16_t *__restrict>(input1_ptr);
360 const auto input2 = static_cast<const float16_t *__restrict>(input2_ptr);
361 const auto output = static_cast<float16_t *__restrict>(output_ptr);
362 const float16x8x2_t ta1 = vld2q_f16(input1);
363 const float16x8x2_t ta2 = vld2q_f16(input2);
364 const float16x8_t scale_vec = vdupq_n_f16(scale);
365 const float16x8x2_t result =
366 {
367 {
368 vmulq_f16(vmulq_f16(ta1.val[0], ta2.val[0]), scale_vec),
369 vmulq_f16(vmulq_f16(ta1.val[1], ta2.val[1]), scale_vec),
370 }
371 };
372 vst2q_f16(output, result);
Ioan-Cristian Szabo5edbd1c2017-11-13 13:34:08 +0000373#else /* __ARM_FEATURE_FP16_VECTOR_ARITHMETIC */
Georgios Pinitas30f02152017-09-27 11:20:48 +0100374 ARM_COMPUTE_UNUSED(input1_ptr);
375 ARM_COMPUTE_UNUSED(input2_ptr);
376 ARM_COMPUTE_UNUSED(output_ptr);
377 ARM_COMPUTE_UNUSED(scale);
Pablo Tellodf246182017-07-03 16:25:09 +0100378 ARM_COMPUTE_ERROR("Not supported. Recompile the library with arch=arm64-v8.2-a.");
Ioan-Cristian Szabo5edbd1c2017-11-13 13:34:08 +0000379#endif /* __ARM_FEATURE_FP16_VECTOR_ARITHMETIC */
Pablo Tellodf246182017-07-03 16:25:09 +0100380}
381
382template <bool is_scale255, bool is_sat>
Anthony Barbier6ff3b192017-09-04 18:44:23 +0100383void mul_U8_U8_S16_n(const void *__restrict input1_ptr, const void *__restrict input2_ptr, void *__restrict output_ptr, int n)
384{
385 const auto input1 = static_cast<const uint8_t *__restrict>(input1_ptr);
386 const auto input2 = static_cast<const uint8_t *__restrict>(input2_ptr);
387 const auto output = static_cast<int16_t *__restrict>(output_ptr);
388
389 const uint8x16_t bv = vld1q_u8(input2);
390 const uint8x16_t av = vld1q_u8(input1);
391
392 uint16x8_t tmp_low = vmovl_u8(vget_low_u8(av));
393 uint16x8_t tmp_high = vmovl_u8(vget_high_u8(av));
394 tmp_low = vmulq_u16(tmp_low, vmovl_u8(vget_low_u8(bv)));
395 tmp_high = vmulq_u16(tmp_high, vmovl_u8(vget_high_u8(bv)));
396
397 if(is_scale255)
398 {
399 tmp_low = scale255_U16_U16(tmp_low);
400 tmp_high = scale255_U16_U16(tmp_high);
401 }
402 else
403 {
404 const int16x8_t vn = vdupq_n_s16(-n);
405
406 if(is_sat)
407 {
408 tmp_low = vqshlq_u16(tmp_low, vn);
409 tmp_high = vqshlq_u16(tmp_high, vn);
410 }
411 else
412 {
413 tmp_low = vshlq_u16(tmp_low, vn);
414 tmp_high = vshlq_u16(tmp_high, vn);
415 }
416 }
417
418 if(is_sat)
419 {
420 static const uint16x8_t max = vdupq_n_u16(SHRT_MAX);
421
422 tmp_low = vminq_u16(tmp_low, max);
423 tmp_high = vminq_u16(tmp_high, max);
424 }
425
426 vst1q_s16(output, vreinterpretq_s16_u16(tmp_low));
427 vst1q_s16(output + 8, vreinterpretq_s16_u16(tmp_high));
428}
429
430template <bool is_scale255, bool is_sat>
431void mul_S16_U8_S16_n(const void *__restrict input1_ptr, const void *__restrict input2_ptr, void *__restrict output_ptr, int n)
432{
433 const auto input1 = static_cast<const int16_t *__restrict>(input1_ptr);
434 const auto input2 = static_cast<const uint8_t *__restrict>(input2_ptr);
435 const auto output = static_cast<int16_t *__restrict>(output_ptr);
436
437 const int16x8x2_t ta1 = vld2q_s16(input1);
438 const uint8x8x2_t ta2u = vld2_u8(input2);
439 const int16x8x2_t ta2 =
440 {
441 {
442 vreinterpretq_s16_u16(vmovl_u8(ta2u.val[0])),
443 vreinterpretq_s16_u16(vmovl_u8(ta2u.val[1]))
444 }
445 };
446
447 const int16x8x2_t result = mul_S16_S16_S16_n_k<is_scale255, is_sat>(ta1, ta2, n);
448
449 vst2q_s16(output, result);
450}
451
452template <bool is_scale255, bool is_sat>
453void mul_U8_S16_S16_n(const void *__restrict input1_ptr, const void *__restrict input2_ptr, void *__restrict output_ptr, int n)
454{
455 // Simply swap the two input buffers
456 mul_S16_U8_S16_n<is_scale255, is_sat>(input2_ptr, input1_ptr, output_ptr, n);
457}
458} // namespace
459
460NEPixelWiseMultiplicationKernel::NEPixelWiseMultiplicationKernel()
Manuel Bottini79fa9a22019-02-22 17:54:22 +0000461 : _func_float(nullptr), _func_int(nullptr), _func_qasymm8(nullptr), _input1(nullptr), _input2(nullptr), _output(nullptr), _scale{ 0 }, _scale_exponent{ 0 }
Anthony Barbier6ff3b192017-09-04 18:44:23 +0100462{
463}
464
465void NEPixelWiseMultiplicationKernel::configure(const ITensor *input1, const ITensor *input2, ITensor *output, float scale, ConvertPolicy overflow_policy, RoundingPolicy rounding_policy)
466{
Ioan-Cristian Szabo754e9522017-11-28 18:29:43 +0000467 ARM_COMPUTE_UNUSED(rounding_policy);
Georgios Pinitasf0dea702017-07-03 18:17:28 +0100468 ARM_COMPUTE_ERROR_ON_NULLPTR(input1, input2, output);
469
Ioan-Cristian Szabo754e9522017-11-28 18:29:43 +0000470 ARM_COMPUTE_ERROR_THROW_ON(validate_arguments(input1->info(), input2->info(), output->info(), scale, overflow_policy, rounding_policy));
Anthony Barbier6ff3b192017-09-04 18:44:23 +0100471
Michalis Spyrou861f0db2018-02-26 16:47:58 +0000472 // Configure kernel window
473 auto win_config = validate_and_configure_window(input1->info(), input2->info(), output->info());
474 ARM_COMPUTE_ERROR_THROW_ON(win_config.first);
475
Anthony Barbier6ff3b192017-09-04 18:44:23 +0100476 _input1 = input1;
477 _input2 = input2;
478 _output = output;
479 _scale = scale;
480 _scale_exponent = 0;
Manuel Bottini79fa9a22019-02-22 17:54:22 +0000481 _func_qasymm8 = nullptr;
Anthony Barbier6ff3b192017-09-04 18:44:23 +0100482 _func_int = nullptr;
Anthony Barbier6ff3b192017-09-04 18:44:23 +0100483 _func_float = nullptr;
484
485 bool is_scale_255 = false;
486 // Check and validate scaling factor
487 if(std::abs(scale - scale255_constant) < 0.00001f)
488 {
Anthony Barbier6ff3b192017-09-04 18:44:23 +0100489 is_scale_255 = true;
490 }
491 else
492 {
Ioan-Cristian Szabo754e9522017-11-28 18:29:43 +0000493 int exponent = 0;
Anthony Barbier6ff3b192017-09-04 18:44:23 +0100494
Ioan-Cristian Szabo754e9522017-11-28 18:29:43 +0000495 std::frexp(scale, &exponent);
Anthony Barbier6ff3b192017-09-04 18:44:23 +0100496
Ioan-Cristian Szabo754e9522017-11-28 18:29:43 +0000497 // Store the positive exponent. We know that we compute 1/2^n
498 // Additionally we need to subtract 1 to compensate that frexp used a mantissa of 0.5
499 _scale_exponent = std::abs(exponent - 1);
Anthony Barbier6ff3b192017-09-04 18:44:23 +0100500 }
501
502 const DataType dt_input1 = input1->info()->data_type();
503 const DataType dt_input2 = input2->info()->data_type();
504 const DataType dt_output = output->info()->data_type();
505 const bool is_sat = (overflow_policy == ConvertPolicy::SATURATE);
506
Manuel Bottini79fa9a22019-02-22 17:54:22 +0000507 if(dt_input1 == DataType::QASYMM8 && dt_input2 == DataType::QASYMM8)
508 {
509 _func_qasymm8 = &mul_saturate_QASYMM8_QASYMM8_QASYMM8_n;
510 }
511 else if(DataType::U8 == dt_input1 && DataType::U8 == dt_input2 && DataType::U8 == dt_output)
Anthony Barbier6ff3b192017-09-04 18:44:23 +0100512 {
513 if(is_scale_255)
514 {
515 _func_int = is_sat ? &mul_U8_U8_U8_n<true, true> : &mul_U8_U8_U8_n<true, false>;
516 }
517 else
518 {
519 _func_int = is_sat ? &mul_U8_U8_U8_n<false, true> : &mul_U8_U8_U8_n<false, false>;
520 }
521 }
522 else if(DataType::S16 == dt_input1 && DataType::S16 == dt_input2 && DataType::S16 == dt_output)
523 {
524 if(is_scale_255)
525 {
526 _func_int = is_sat ? &mul_S16_S16_S16_n<true, true> : &mul_S16_S16_S16_n<true, false>;
527 }
528 else
529 {
530 _func_int = is_sat ? &mul_S16_S16_S16_n<false, true> : &mul_S16_S16_S16_n<false, false>;
531 }
532 }
533 else if(DataType::S16 == dt_input1 && DataType::U8 == dt_input2 && DataType::S16 == dt_output)
534 {
535 if(is_scale_255)
536 {
537 _func_int = is_sat ? &mul_S16_U8_S16_n<true, true> : &mul_S16_U8_S16_n<true, false>;
538 }
539 else
540 {
541 _func_int = is_sat ? &mul_S16_U8_S16_n<false, true> : &mul_S16_U8_S16_n<false, false>;
542 }
543 }
544 else if(DataType::U8 == dt_input1 && DataType::S16 == dt_input2 && DataType::S16 == dt_output)
545 {
546 if(is_scale_255)
547 {
548 _func_int = is_sat ? &mul_U8_S16_S16_n<true, true> : &mul_U8_S16_S16_n<true, false>;
549 }
550 else
551 {
552 _func_int = is_sat ? &mul_U8_S16_S16_n<false, true> : &mul_U8_S16_S16_n<false, false>;
553 }
554 }
555 else if(DataType::U8 == dt_input1 && DataType::U8 == dt_input2 && DataType::S16 == dt_output)
556 {
557 if(is_scale_255)
558 {
559 _func_int = is_sat ? &mul_U8_U8_S16_n<true, true> : &mul_U8_U8_S16_n<true, false>;
560 }
561 else
562 {
563 _func_int = is_sat ? &mul_U8_U8_S16_n<false, true> : &mul_U8_U8_S16_n<false, false>;
564 }
565 }
Pablo Tellodf246182017-07-03 16:25:09 +0100566 else if(DataType::F16 == dt_input1 && DataType::F16 == dt_input2 && DataType::F16 == dt_output)
567 {
Manuel Bottini79fa9a22019-02-22 17:54:22 +0000568 _func_float = &mul_F16_F16_F16_n;
Pablo Tellodf246182017-07-03 16:25:09 +0100569 _func_int = nullptr;
570 }
Anthony Barbier6ff3b192017-09-04 18:44:23 +0100571 else if(DataType::F32 == dt_input1 && DataType::F32 == dt_input2 && DataType::F32 == dt_output)
572 {
Manuel Bottini79fa9a22019-02-22 17:54:22 +0000573 _func_float = &mul_F32_F32_F32_n;
Anthony Barbier6ff3b192017-09-04 18:44:23 +0100574 _func_int = nullptr;
575 }
576 else
577 {
578 ARM_COMPUTE_ERROR("You called with the wrong img formats");
579 }
580
Ioan-Cristian Szabo754e9522017-11-28 18:29:43 +0000581 INEKernel::configure(win_config.second);
582}
Anthony Barbier6ff3b192017-09-04 18:44:23 +0100583
Georgios Pinitas631c41a2017-12-06 11:53:03 +0000584Status NEPixelWiseMultiplicationKernel::validate(const ITensorInfo *input1, const ITensorInfo *input2, const ITensorInfo *output, float scale, ConvertPolicy overflow_policy,
585 RoundingPolicy rounding_policy)
Ioan-Cristian Szabo754e9522017-11-28 18:29:43 +0000586{
Michalis Spyrou861f0db2018-02-26 16:47:58 +0000587 ARM_COMPUTE_ERROR_ON_NULLPTR(input1, input2, output);
Ioan-Cristian Szabo754e9522017-11-28 18:29:43 +0000588 ARM_COMPUTE_RETURN_ON_ERROR(validate_arguments(input1, input2, output, scale, overflow_policy, rounding_policy));
589 ARM_COMPUTE_RETURN_ON_ERROR(validate_and_configure_window(input1->clone().get(), input2->clone().get(), output->clone().get()).first);
Anthony Barbier6ff3b192017-09-04 18:44:23 +0100590
Georgios Pinitas631c41a2017-12-06 11:53:03 +0000591 return Status{};
Anthony Barbier6ff3b192017-09-04 18:44:23 +0100592}
593
Moritz Pflanzerc186b572017-09-07 09:48:04 +0100594void NEPixelWiseMultiplicationKernel::run(const Window &window, const ThreadInfo &info)
Anthony Barbier6ff3b192017-09-04 18:44:23 +0100595{
Moritz Pflanzerc186b572017-09-07 09:48:04 +0100596 ARM_COMPUTE_UNUSED(info);
Anthony Barbier6ff3b192017-09-04 18:44:23 +0100597 ARM_COMPUTE_ERROR_ON_UNCONFIGURED_KERNEL(this);
598 ARM_COMPUTE_ERROR_ON_INVALID_SUBWINDOW(INEKernel::window(), window);
599
Michalis Spyrou861f0db2018-02-26 16:47:58 +0000600 const TensorShape &in_shape1 = _input1->info()->tensor_shape();
601 const TensorShape &in_shape2 = _input2->info()->tensor_shape();
602 const TensorShape &out_shape = _output->info()->tensor_shape();
603
604 bool can_collapse = true;
605 if(std::min(in_shape1.total_size(), in_shape2.total_size()) > 1)
606 {
607 can_collapse = (std::min(in_shape1.num_dimensions(), in_shape2.num_dimensions()) > Window::DimZ);
608 for(size_t d = Window::DimZ; can_collapse && (d < out_shape.num_dimensions()); ++d)
609 {
610 can_collapse = (in_shape1[d] == in_shape2[d]);
611 }
612 }
613
614 bool has_collapsed = false;
615 Window collapsed = can_collapse ? window.collapse_if_possible(INEKernel::window(), Window::DimZ, &has_collapsed) : window;
616
617 const TensorShape &in_shape1_collapsed = has_collapsed ? in_shape1.collapsed_from(Window::DimZ) : in_shape1;
618 const TensorShape &in_shape2_collapsed = has_collapsed ? in_shape2.collapsed_from(Window::DimZ) : in_shape2;
619
620 Window slice = collapsed.first_slice_window_3D();
621 Window slice_input1 = slice.broadcast_if_dimension_le_one(in_shape1_collapsed);
622 Window slice_input2 = slice.broadcast_if_dimension_le_one(in_shape2_collapsed);
623
624 Iterator input1(_input1, slice_input1);
625 Iterator input2(_input2, slice_input2);
626 Iterator output(_output, slice);
Anthony Barbier6ff3b192017-09-04 18:44:23 +0100627
Manuel Bottini79fa9a22019-02-22 17:54:22 +0000628 if(_func_qasymm8 != nullptr)
629 {
630 execute_window_loop(collapsed, [&](const Coordinates & id)
631 {
632 (*_func_qasymm8)(input1.ptr(), input2.ptr(), output.ptr(), _scale,
633 _input1->info()->quantization_info(), _input2->info()->quantization_info(), _output->info()->quantization_info());
634 collapsed.slide_window_slice_3D(slice_input1);
635 collapsed.slide_window_slice_3D(slice_input2);
636 },
637 input1, input2, output);
638 }
639 else if(_func_int != nullptr)
Anthony Barbier6ff3b192017-09-04 18:44:23 +0100640 {
Michalis Spyrou861f0db2018-02-26 16:47:58 +0000641 execute_window_loop(collapsed, [&](const Coordinates & id)
Anthony Barbier6ff3b192017-09-04 18:44:23 +0100642 {
643 (*_func_int)(input1.ptr(), input2.ptr(), output.ptr(), _scale_exponent);
Michalis Spyrou861f0db2018-02-26 16:47:58 +0000644 collapsed.slide_window_slice_3D(slice_input1);
645 collapsed.slide_window_slice_3D(slice_input2);
Anthony Barbier6ff3b192017-09-04 18:44:23 +0100646 },
647 input1, input2, output);
648 }
Anthony Barbier6ff3b192017-09-04 18:44:23 +0100649 else
650 {
651 ARM_COMPUTE_ERROR_ON(_func_float == nullptr);
Michalis Spyrou861f0db2018-02-26 16:47:58 +0000652 execute_window_loop(collapsed, [&](const Coordinates & id)
Anthony Barbier6ff3b192017-09-04 18:44:23 +0100653 {
654 (*_func_float)(input1.ptr(), input2.ptr(), output.ptr(), _scale);
Michalis Spyrou861f0db2018-02-26 16:47:58 +0000655 collapsed.slide_window_slice_3D(slice_input1);
656 collapsed.slide_window_slice_3D(slice_input2);
Anthony Barbier6ff3b192017-09-04 18:44:23 +0100657 },
658 input1, input2, output);
659 }
660}
Michalis Spyrou861f0db2018-02-26 16:47:58 +0000661
662BorderSize NEPixelWiseMultiplicationKernel::border_size() const
663{
664 const unsigned int replicateSize = _output->info()->dimension(0) - std::min(_input1->info()->dimension(0), _input2->info()->dimension(0));
665 const unsigned int border = std::min<unsigned int>(num_elems_processed_per_iteration - 1U, replicateSize);
666 return BorderSize(0, border, 0, 0);
Anthony Barbiereaefd002018-07-20 17:49:35 +0100667}
Manuel Bottini79fa9a22019-02-22 17:54:22 +0000668} // namespace arm_compute