blob: a87588dbb33bceda3be32fddfded8988ab9fa141 [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"
Manuel Bottini7bb56c62019-06-26 15:17:09 +010033#include "arm_compute/core/NEON/NESymm.h"
giuros01154bc1c2019-03-26 17:44:40 +000034#include "arm_compute/core/NEON/wrapper/wrapper.h"
Anthony Barbier6ff3b192017-09-04 18:44:23 +010035#include "arm_compute/core/TensorInfo.h"
Manuel Bottini79fa9a22019-02-22 17:54:22 +000036#include "arm_compute/core/Types.h"
Anthony Barbier6ff3b192017-09-04 18:44:23 +010037#include "arm_compute/core/Validate.h"
Anthony Barbier6ff3b192017-09-04 18:44:23 +010038
39#include <arm_neon.h>
40#include <climits>
41#include <cmath>
42#include <cstdint>
43#include <cstdlib>
44
Ioan-Cristian Szabo5edbd1c2017-11-13 13:34:08 +000045#if __ARM_FEATURE_FP16_VECTOR_ARITHMETIC
Pablo Tellodf246182017-07-03 16:25:09 +010046#include <arm_fp16.h> // needed for float16_t
Ioan-Cristian Szabo5edbd1c2017-11-13 13:34:08 +000047#endif /* __ARM_FEATURE_FP16_VECTOR_ARITHMETIC */
Pablo Tellodf246182017-07-03 16:25:09 +010048
Anthony Barbier6ff3b192017-09-04 18:44:23 +010049namespace arm_compute
50{
51class Coordinates;
Anthony Barbier6ff3b192017-09-04 18:44:23 +010052
53namespace
54{
55const float scale255_constant = 1.f / 255.f;
56const float32x4_t scale255_constant_f32q = vdupq_n_f32(scale255_constant);
57const float32x4_t positive_round_f32q = vdupq_n_f32(0.5f);
58
Michalis Spyrou861f0db2018-02-26 16:47:58 +000059constexpr unsigned int num_elems_processed_per_iteration = 16;
60
Georgios Pinitas631c41a2017-12-06 11:53:03 +000061inline 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 +000062{
63 ARM_COMPUTE_UNUSED(overflow_policy);
64 ARM_COMPUTE_UNUSED(rounding_policy);
65
Anthony Barbiereaefd002018-07-20 17:49:35 +010066 ARM_COMPUTE_RETURN_ERROR_ON_CPU_F16_UNSUPPORTED(input1);
Pablo Tello52ea9c22019-12-10 11:28:53 +000067 ARM_COMPUTE_RETURN_ERROR_ON_DATA_TYPE_CHANNEL_NOT_IN(input1, 1, DataType::U8, DataType::QASYMM8, DataType::QASYMM8_SIGNED, DataType::S16, DataType::QSYMM16, DataType::F16, DataType::F32);
68 ARM_COMPUTE_RETURN_ERROR_ON_DATA_TYPE_CHANNEL_NOT_IN(input2, 1, DataType::U8, DataType::QASYMM8, DataType::QASYMM8_SIGNED, DataType::S16, DataType::QSYMM16, DataType::F16, DataType::F32);
69 ARM_COMPUTE_RETURN_ERROR_ON_DATA_TYPE_CHANNEL_NOT_IN(output, 1, DataType::U8, DataType::QASYMM8, DataType::QASYMM8_SIGNED, DataType::S16, DataType::QSYMM16, DataType::F16, DataType::F32);
Ioan-Cristian Szabo754e9522017-11-28 18:29:43 +000070 ARM_COMPUTE_RETURN_ERROR_ON_MSG(output->data_type() == DataType::U8 && (input1->data_type() != DataType::U8 || input2->data_type() != DataType::U8),
71 "Output can only be U8 if both inputs are U8");
72
Georgios Pinitasd7d7e902019-12-18 15:40:54 +000073 if(is_data_type_quantized(input1->data_type()) || is_data_type_quantized(input2->data_type()))
Pablo Tello52ea9c22019-12-10 11:28:53 +000074 {
75 ARM_COMPUTE_RETURN_ERROR_ON_MISMATCHING_DATA_TYPES(input1, input2);
Georgios Pinitasd7d7e902019-12-18 15:40:54 +000076 ARM_COMPUTE_RETURN_ERROR_ON_MSG(overflow_policy == ConvertPolicy::WRAP, "ConvertPolicy cannot be WRAP if datatype is quantized");
Pablo Tello52ea9c22019-12-10 11:28:53 +000077 }
Manuel Bottini79fa9a22019-02-22 17:54:22 +000078
79 if(output->total_size() > 0)
80 {
Manuel Bottini7bb56c62019-06-26 15:17:09 +010081 if(is_data_type_quantized(output->data_type()))
Manuel Bottini79fa9a22019-02-22 17:54:22 +000082 {
83 ARM_COMPUTE_RETURN_ERROR_ON_MISMATCHING_DATA_TYPES(input1, input2, output);
84 }
85
86 const TensorShape &out_shape = TensorShape::broadcast_shape(input1->tensor_shape(), input2->tensor_shape());
87 ARM_COMPUTE_RETURN_ERROR_ON_MSG(detail::have_different_dimensions(out_shape, output->tensor_shape(), 0), "Wrong shape for output");
88 ARM_COMPUTE_RETURN_ERROR_ON_MSG(out_shape.total_size() == 0, "Inputs are not broadcast compatible");
89 }
Michalis Spyrou861f0db2018-02-26 16:47:58 +000090
Ioan-Cristian Szabo754e9522017-11-28 18:29:43 +000091 if(std::abs(scale - scale255_constant) < 0.00001f)
92 {
93 ARM_COMPUTE_RETURN_ERROR_ON(rounding_policy != RoundingPolicy::TO_NEAREST_UP && rounding_policy != RoundingPolicy::TO_NEAREST_EVEN);
94 }
95 else
96 {
97 ARM_COMPUTE_RETURN_ERROR_ON(rounding_policy != RoundingPolicy::TO_ZERO);
98
99 int exponent = 0;
100 const float normalized_mantissa = std::frexp(scale, &exponent);
101
102 // Use int scaling if factor is equal to 1/2^n for 0 <= n <= 15
103 // frexp returns 0.5 as mantissa which means that the exponent will be in the range of -1 <= e <= 14
104 // Moreover, it will be negative as we deal with 1/2^n
105 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");
106 }
107
Georgios Pinitas631c41a2017-12-06 11:53:03 +0000108 return Status{};
Ioan-Cristian Szabo754e9522017-11-28 18:29:43 +0000109}
110
Georgios Pinitas631c41a2017-12-06 11:53:03 +0000111inline std::pair<Status, Window> validate_and_configure_window(ITensorInfo *input1, ITensorInfo *input2, ITensorInfo *output)
Ioan-Cristian Szabo754e9522017-11-28 18:29:43 +0000112{
Michalis Spyrou861f0db2018-02-26 16:47:58 +0000113 const std::pair<TensorShape, ValidRegion> broadcast_pair = ITensorInfo::broadcast_shape_and_valid_region(*input1, *input2);
114 const ValidRegion &valid_region = broadcast_pair.second;
115
116 // Auto initialize output if not initialized
117 {
Michalis Spyrouebdde652019-07-08 11:52:46 +0100118 ARM_COMPUTE_UNUSED(set_shape_if_empty(*output, input1->tensor_shape()));
Michalis Spyrou861f0db2018-02-26 16:47:58 +0000119
120 if(input1->data_type() == DataType::S16 || input2->data_type() == DataType::S16)
121 {
122 set_format_if_unknown(*output, Format::S16);
123 }
124 else if(input1->data_type() == DataType::F32 || input2->data_type() == DataType::F32)
125 {
126 set_format_if_unknown(*output, Format::F32);
127 }
128 else if(input1->data_type() == DataType::F16 || input2->data_type() == DataType::F16)
129 {
130 set_format_if_unknown(*output, Format::F16);
131 }
Georgios Pinitasd7d7e902019-12-18 15:40:54 +0000132 else if(input1->data_type() == DataType::QASYMM8 || input2->data_type() == DataType::QASYMM8)
Manuel Bottini7bb56c62019-06-26 15:17:09 +0100133 {
134 set_data_type_if_unknown(*output, DataType::QASYMM8);
135 }
Georgios Pinitasd7d7e902019-12-18 15:40:54 +0000136 else if(input1->data_type() == DataType::QASYMM8_SIGNED || input2->data_type() == DataType::QASYMM8_SIGNED)
Pablo Tello52ea9c22019-12-10 11:28:53 +0000137 {
138 set_data_type_if_unknown(*output, DataType::QASYMM8_SIGNED);
139 }
Georgios Pinitasd7d7e902019-12-18 15:40:54 +0000140 else if(input1->data_type() == DataType::QSYMM16 || input2->data_type() == DataType::QSYMM16)
Manuel Bottini7bb56c62019-06-26 15:17:09 +0100141 {
142 set_data_type_if_unknown(*output, DataType::QSYMM16);
143 }
Michalis Spyrou861f0db2018-02-26 16:47:58 +0000144 }
Ioan-Cristian Szabo754e9522017-11-28 18:29:43 +0000145
146 // Configure kernel window
Michalis Spyrou861f0db2018-02-26 16:47:58 +0000147 Window win = calculate_max_window(valid_region, Steps(num_elems_processed_per_iteration));
148 Window win_input1 = win.broadcast_if_dimension_le_one(*input1);
149 Window win_input2 = win.broadcast_if_dimension_le_one(*input2);
150
151 AccessWindowHorizontal input1_access(input1, 0, num_elems_processed_per_iteration);
152 AccessWindowHorizontal input2_access(input2, 0, num_elems_processed_per_iteration);
Ioan-Cristian Szabo754e9522017-11-28 18:29:43 +0000153 AccessWindowHorizontal output_access(output, 0, num_elems_processed_per_iteration);
154
Michalis Spyrou861f0db2018-02-26 16:47:58 +0000155 bool window_changed = update_window_and_padding(win_input1, input1_access)
156 || update_window_and_padding(win_input2, input2_access)
157 || update_window_and_padding(win, output_access);
Ioan-Cristian Szabo754e9522017-11-28 18:29:43 +0000158
159 output_access.set_valid_region(win, valid_region);
160
Georgios Pinitas631c41a2017-12-06 11:53:03 +0000161 Status err = (window_changed) ? ARM_COMPUTE_CREATE_ERROR(ErrorCode::RUNTIME_ERROR, "Insufficient Padding!") : Status{};
Ioan-Cristian Szabo754e9522017-11-28 18:29:43 +0000162 return std::make_pair(err, win);
163}
164
Anthony Barbier6ff3b192017-09-04 18:44:23 +0100165/* Scales a given vector by 1/255.
166 *
167 * @note This does not work for all cases. e.g. for float of 0.49999999999999994 and large floats.
168 *
169 * @param in Input vector to scale.
170 * @return Scaled output rounded to nearest (round half up).
171 */
172inline int32x4_t scale255_S32_S32(int32x4_t in)
173{
174 // Scale
175 const float32x4_t tmp = vmulq_f32(vcvtq_f32_s32(in), scale255_constant_f32q);
176 // Round to nearest (round half up)
177 // Add +0.5 for all values
178 // Afterwards vcvt rounds toward zero
179 return vcvtq_s32_f32(vaddq_f32(tmp, positive_round_f32q));
180}
181
182inline uint16x8_t scale255_U16_U16(uint16x8_t in)
183{
184 const int32x4_t tmp_s1 = scale255_S32_S32(vreinterpretq_s32_u32(vmovl_u16(vget_high_u16(in))));
185 const int32x4_t tmp_s2 = scale255_S32_S32(vreinterpretq_s32_u32(vmovl_u16(vget_low_u16(in))));
186 return vreinterpretq_u16_s16(vcombine_s16(vmovn_s32(tmp_s2), vmovn_s32(tmp_s1)));
187}
188
Michalis Spyrou6bff1952019-10-02 17:22:11 +0100189inline void mul_saturate_QASYMM8_QASYMM8_QASYMM8_n_opt(const void *__restrict input1_ptr, const void *__restrict input2_ptr, void *__restrict output_ptr,
Gian Marco Iodiceb19c55d2019-08-30 17:50:15 +0100190 float32x4_t input1_vscale, int32x4_t input1_voffset, float32x4_t input2_vscale, int32x4_t input2_voffset, float32x4_t output_voffset, float32x4_t vinvscale)
Manuel Bottini79fa9a22019-02-22 17:54:22 +0000191{
192 const auto input1 = static_cast<const qasymm8_t *__restrict>(input1_ptr);
193 const auto input2 = static_cast<const qasymm8_t *__restrict>(input2_ptr);
194 const auto output = static_cast<qasymm8_t *__restrict>(output_ptr);
195
196 const qasymm8x16_t input1_q = vld1q_u8(input1);
197 const qasymm8x16_t input2_q = vld1q_u8(input2);
198
199 // Dequantitize inputs
Gian Marco Iodiceb19c55d2019-08-30 17:50:15 +0100200 float32x4x4_t in1_f32x4x4;
201 float32x4x4_t in2_f32x4x4;
202 in1_f32x4x4.val[0] = vmulq_f32(vcvtq_f32_s32(vsubq_s32(vreinterpretq_s32_u32(vmovl_u16(vget_low_u16(vmovl_u8(vget_low_u8(input1_q))))), input1_voffset)), input1_vscale);
203 in1_f32x4x4.val[1] = vmulq_f32(vcvtq_f32_s32(vsubq_s32(vreinterpretq_s32_u32(vmovl_u16(vget_high_u16(vmovl_u8(vget_low_u8(input1_q))))), input1_voffset)), input1_vscale);
204 in1_f32x4x4.val[2] = vmulq_f32(vcvtq_f32_s32(vsubq_s32(vreinterpretq_s32_u32(vmovl_u16(vget_low_u16(vmovl_u8(vget_high_u8(input1_q))))), input1_voffset)), input1_vscale);
205 in1_f32x4x4.val[3] = vmulq_f32(vcvtq_f32_s32(vsubq_s32(vreinterpretq_s32_u32(vmovl_u16(vget_high_u16(vmovl_u8(vget_high_u8(input1_q))))), input1_voffset)), input1_vscale);
Manuel Bottini79fa9a22019-02-22 17:54:22 +0000206
Gian Marco Iodiceb19c55d2019-08-30 17:50:15 +0100207 in2_f32x4x4.val[0] = vmulq_f32(vcvtq_f32_s32(vsubq_s32(vreinterpretq_s32_u32(vmovl_u16(vget_low_u16(vmovl_u8(vget_low_u8(input2_q))))), input2_voffset)), input2_vscale);
208 in2_f32x4x4.val[1] = vmulq_f32(vcvtq_f32_s32(vsubq_s32(vreinterpretq_s32_u32(vmovl_u16(vget_high_u16(vmovl_u8(vget_low_u8(input2_q))))), input2_voffset)), input2_vscale);
209 in2_f32x4x4.val[2] = vmulq_f32(vcvtq_f32_s32(vsubq_s32(vreinterpretq_s32_u32(vmovl_u16(vget_low_u16(vmovl_u8(vget_high_u8(input2_q))))), input2_voffset)), input2_vscale);
210 in2_f32x4x4.val[3] = vmulq_f32(vcvtq_f32_s32(vsubq_s32(vreinterpretq_s32_u32(vmovl_u16(vget_high_u16(vmovl_u8(vget_high_u8(input2_q))))), input2_voffset)), input2_vscale);
Manuel Bottini79fa9a22019-02-22 17:54:22 +0000211
Gian Marco Iodiceb19c55d2019-08-30 17:50:15 +0100212 float32x4x4_t out_f32x4x4;
213 out_f32x4x4.val[0] = vmulq_f32(in1_f32x4x4.val[0], in2_f32x4x4.val[0]);
214 out_f32x4x4.val[1] = vmulq_f32(in1_f32x4x4.val[1], in2_f32x4x4.val[1]);
215 out_f32x4x4.val[2] = vmulq_f32(in1_f32x4x4.val[2], in2_f32x4x4.val[2]);
216 out_f32x4x4.val[3] = vmulq_f32(in1_f32x4x4.val[3], in2_f32x4x4.val[3]);
Manuel Bottini79fa9a22019-02-22 17:54:22 +0000217
Gian Marco Iodiceb19c55d2019-08-30 17:50:15 +0100218 int32x4x4_t rf;
219#ifdef __aarch64__
220 rf.val[0] = vcvtnq_s32_f32(vmlaq_f32(output_voffset, out_f32x4x4.val[0], vinvscale));
221 rf.val[1] = vcvtnq_s32_f32(vmlaq_f32(output_voffset, out_f32x4x4.val[1], vinvscale));
222 rf.val[2] = vcvtnq_s32_f32(vmlaq_f32(output_voffset, out_f32x4x4.val[2], vinvscale));
223 rf.val[3] = vcvtnq_s32_f32(vmlaq_f32(output_voffset, out_f32x4x4.val[3], vinvscale));
224#else //__aarch64__
225 rf.val[0] = vcvtq_s32_f32(vmlaq_f32(output_voffset, out_f32x4x4.val[0], vinvscale));
226 rf.val[1] = vcvtq_s32_f32(vmlaq_f32(output_voffset, out_f32x4x4.val[1], vinvscale));
227 rf.val[2] = vcvtq_s32_f32(vmlaq_f32(output_voffset, out_f32x4x4.val[2], vinvscale));
228 rf.val[3] = vcvtq_s32_f32(vmlaq_f32(output_voffset, out_f32x4x4.val[3], vinvscale));
229#endif //__aarch64__
230 const uint8x8_t pa = vqmovun_s16(vcombine_s16(vqmovn_s32(rf.val[0]), vqmovn_s32(rf.val[1])));
231 const uint8x8_t pb = vqmovun_s16(vcombine_s16(vqmovn_s32(rf.val[2]), vqmovn_s32(rf.val[3])));
232
233 vst1q_u8(output, vcombine_u8(pa, pb));
Manuel Bottini79fa9a22019-02-22 17:54:22 +0000234}
235
Pablo Tello52ea9c22019-12-10 11:28:53 +0000236inline void mul_saturate_QASYMM8_SIGNED_QASYMM8_SIGNED_QASYMM8_SIGNED_n(
237 const void *__restrict input1_ptr, const void *__restrict input2_ptr, void *__restrict output_ptr,
238 float scale, const UniformQuantizationInfo &input1_qua_info, const UniformQuantizationInfo &input2_qua_info,
239 const UniformQuantizationInfo &output_qua_info)
240
241{
242 const auto input1 = static_cast<const qasymm8_signed_t *__restrict>(input1_ptr);
243 const auto input2 = static_cast<const qasymm8_signed_t *__restrict>(input2_ptr);
244 const auto output = static_cast<qasymm8_signed_t *__restrict>(output_ptr);
245 const qasymm8x16_signed_t input1_q = vld1q_s8(input1);
246 const qasymm8x16_signed_t input2_q = vld1q_s8(input2);
247 // Dequantitize inputs
248 const float32x4x4_t in1_f32x4x4 = vdequantize(input1_q, input1_qua_info);
249 const float32x4x4_t in2_f32x4x4 = vdequantize(input2_q, input2_qua_info);
250 const UniformQuantizationInfo tmp_qua_info = { output_qua_info.scale / scale, output_qua_info.offset };
251 const float32x4x4_t out_f32x4x4 =
252 {
253 vmulq_f32(in1_f32x4x4.val[0], in2_f32x4x4.val[0]),
254 vmulq_f32(in1_f32x4x4.val[1], in2_f32x4x4.val[1]),
255 vmulq_f32(in1_f32x4x4.val[2], in2_f32x4x4.val[2]),
256 vmulq_f32(in1_f32x4x4.val[3], in2_f32x4x4.val[3]),
257 };
258 const int8x16_t result = vquantize_signed(out_f32x4x4, tmp_qua_info);
259 vst1q_s8(output, result);
260}
261
Manuel Bottini7bb56c62019-06-26 15:17:09 +0100262void mul_saturate_QSYMM16_QSYMM16_QSYMM16_n(const void *__restrict input1_ptr, const void *__restrict input2_ptr, void *__restrict output_ptr, float scale,
263 const UniformQuantizationInfo &input1_qua_info, const UniformQuantizationInfo &input2_qua_info, const UniformQuantizationInfo &output_qua_info)
264{
265 const auto input1 = static_cast<const qsymm16_t *__restrict>(input1_ptr);
266 const auto input2 = static_cast<const qsymm16_t *__restrict>(input2_ptr);
267 const auto output = static_cast<qsymm16_t *__restrict>(output_ptr);
268
269 const qsymm16x8x2_t input1_q = vld2q_s16(input1);
270 const qsymm16x8x2_t input2_q = vld2q_s16(input2);
271
272 // Dequantitize inputs
273 const float32x4x4_t in1_f32x4x4 = vdequantize(input1_q, input1_qua_info);
274 const float32x4x4_t in2_f32x4x4 = vdequantize(input2_q, input2_qua_info);
275
276 const UniformQuantizationInfo tmp_qua_info = { output_qua_info.scale / scale, output_qua_info.offset };
277
278 const float32x4x4_t out_f32x4x4 =
279 {
280 vmulq_f32(in1_f32x4x4.val[0], in2_f32x4x4.val[0]),
281 vmulq_f32(in1_f32x4x4.val[1], in2_f32x4x4.val[1]),
282 vmulq_f32(in1_f32x4x4.val[2], in2_f32x4x4.val[2]),
283 vmulq_f32(in1_f32x4x4.val[3], in2_f32x4x4.val[3]),
284 };
285
286 const qsymm16x8x2_t result = vquantize_qsymm16(out_f32x4x4, tmp_qua_info);
287 vst2q_s16(output, result);
288}
289
Anthony Barbier6ff3b192017-09-04 18:44:23 +0100290template <bool is_scale255, bool is_sat>
291void mul_U8_U8_U8_n(const void *__restrict input1_ptr, const void *__restrict input2_ptr, void *__restrict output_ptr, int n)
292{
293 const auto input1 = static_cast<const uint8_t *__restrict>(input1_ptr);
294 const auto input2 = static_cast<const uint8_t *__restrict>(input2_ptr);
295 const auto output = static_cast<uint8_t *__restrict>(output_ptr);
296
297 const uint8x16_t ta1 = vld1q_u8(input1);
298 const uint8x16_t ta2 = vld1q_u8(input2);
299
300 uint16x8_t tmp1_high = vmovl_u8(vget_high_u8(ta1));
301 const uint16x8_t tmp2_high = vmovl_u8(vget_high_u8(ta2));
302 uint16x8_t tmp1_low = vmovl_u8(vget_low_u8(ta1));
303 const uint16x8_t tmp2_low = vmovl_u8(vget_low_u8(ta2));
304
305 tmp1_high = vmulq_u16(tmp1_high, tmp2_high);
306 tmp1_low = vmulq_u16(tmp1_low, tmp2_low);
307
308 if(is_scale255)
309 {
310 tmp1_high = scale255_U16_U16(tmp1_high);
311 tmp1_low = scale255_U16_U16(tmp1_low);
312 }
313 else
314 {
315 const int16x8_t vn = vdupq_n_s16(-n);
316
317 if(is_sat)
318 {
319 tmp1_high = vqshlq_u16(tmp1_high, vn);
320 tmp1_low = vqshlq_u16(tmp1_low, vn);
321 }
322 else
323 {
324 tmp1_high = vshlq_u16(tmp1_high, vn);
325 tmp1_low = vshlq_u16(tmp1_low, vn);
326 }
327 }
328
329 if(is_sat)
330 {
331 vst1q_u8(output, vcombine_u8(vqmovn_u16(tmp1_low), vqmovn_u16(tmp1_high)));
332 }
333 else
334 {
335 vst1q_u8(output, vcombine_u8(vmovn_u16(tmp1_low), vmovn_u16(tmp1_high)));
336 }
337}
338
339template <bool is_scale255, bool is_sat>
Anthony Barbier6ff3b192017-09-04 18:44:23 +0100340inline int16x8_t mul_S16_S16_S16_n_loop(const int16x8_t &input1, const int16x8_t &input2, int n)
341{
342 int32x4_t tmp1_high = vmovl_s16(vget_high_s16(input1));
343 const int32x4_t tmp2_high = vmovl_s16(vget_high_s16(input2));
344 int32x4_t tmp1_low = vmovl_s16(vget_low_s16(input1));
345 const int32x4_t tmp2_low = vmovl_s16(vget_low_s16(input2));
346
347 tmp1_high = vmulq_s32(tmp1_high, tmp2_high);
348 tmp1_low = vmulq_s32(tmp1_low, tmp2_low);
349
350 if(is_scale255)
351 {
352 tmp1_high = scale255_S32_S32(tmp1_high);
353 tmp1_low = scale255_S32_S32(tmp1_low);
354 }
355 else
356 {
357 // Right shift amount
358 const int32x4_t vn = vdupq_n_s32(-n);
359 // Left shift amount
360 const int32x4_t vnl = vdupq_n_s32(n);
361 // Calculate conversion bit
362 const uint32x4_t tmp1_high_u = vreinterpretq_u32_s32(tmp1_high);
363 const uint32x4_t tmp1_low_u = vreinterpretq_u32_s32(tmp1_low);
364 const uint32x4_t sign_high = vshrq_n_u32(tmp1_high_u, 31);
365 const uint32x4_t sign_low = vshrq_n_u32(tmp1_low_u, 31);
366 const int32x4_t sign_high_s = vreinterpretq_s32_u32(sign_high);
367 const int32x4_t sign_low_s = vreinterpretq_s32_u32(sign_low);
368 const int32x4_t convert_high = vsubq_s32(vshlq_s32(sign_high_s, vnl), sign_high_s);
369 const int32x4_t convert_low = vsubq_s32(vshlq_s32(sign_low_s, vnl), sign_low_s);
370 if(is_sat)
371 {
372 tmp1_high = vqshlq_s32(vaddq_s32(tmp1_high, convert_high), vn);
373 tmp1_low = vqshlq_s32(vaddq_s32(tmp1_low, convert_low), vn);
374 }
375 else
376 {
377 tmp1_high = vshlq_s32(vaddq_s32(tmp1_high, convert_high), vn);
378 tmp1_low = vshlq_s32(vaddq_s32(tmp1_low, convert_low), vn);
379 }
380 }
381
382 if(is_sat)
383 {
384 return vcombine_s16(vqmovn_s32(tmp1_low), vqmovn_s32(tmp1_high));
385 }
386 else
387 {
388 return vcombine_s16(vmovn_s32(tmp1_low), vmovn_s32(tmp1_high));
389 }
390}
391
392template <bool is_scale255, bool is_sat>
393inline int16x8x2_t mul_S16_S16_S16_n_k(const int16x8x2_t &input1, const int16x8x2_t &input2, int n)
394{
395 const int16x8x2_t result =
396 {
397 {
398 // First 8 elements
399 mul_S16_S16_S16_n_loop<is_scale255, is_sat>(input1.val[0], input2.val[0], n),
400 // Second 8 elements
401 mul_S16_S16_S16_n_loop<is_scale255, is_sat>(input1.val[1], input2.val[1], n)
402 }
403 };
404
405 return result;
406}
407
408template <bool is_scale255, bool is_sat>
409void mul_S16_S16_S16_n(const void *__restrict input1_ptr, const void *__restrict input2_ptr, void *__restrict output_ptr, int n)
410{
411 const auto input1 = static_cast<const int16_t *__restrict>(input1_ptr);
412 const auto input2 = static_cast<const int16_t *__restrict>(input2_ptr);
413 const auto output = static_cast<int16_t *__restrict>(output_ptr);
414
415 const int16x8x2_t ta1 = vld2q_s16(input1);
416 const int16x8x2_t ta2 = vld2q_s16(input2);
417 const int16x8x2_t result = mul_S16_S16_S16_n_k<is_scale255, is_sat>(ta1, ta2, n);
418
419 vst2q_s16(output, result);
420}
421
Anthony Barbier6ff3b192017-09-04 18:44:23 +0100422void mul_F32_F32_F32_n(const void *__restrict input1_ptr, const void *__restrict input2_ptr, void *__restrict output_ptr, float scale)
423{
424 const auto input1 = static_cast<const float *__restrict>(input1_ptr);
425 const auto input2 = static_cast<const float *__restrict>(input2_ptr);
426 const auto output = static_cast<float *__restrict>(output_ptr);
427
428 const float32x4x4_t ta1 = vld4q_f32(input1);
429 const float32x4x4_t ta2 = vld4q_f32(input2);
430 const float32x4_t scale_vec = vdupq_n_f32(scale);
431 const float32x4x4_t result =
432 {
433 {
434 vmulq_f32(vmulq_f32(ta1.val[0], ta2.val[0]), scale_vec),
435 vmulq_f32(vmulq_f32(ta1.val[1], ta2.val[1]), scale_vec),
436 vmulq_f32(vmulq_f32(ta1.val[2], ta2.val[2]), scale_vec),
437 vmulq_f32(vmulq_f32(ta1.val[3], ta2.val[3]), scale_vec)
438 }
439 };
440 vst4q_f32(output, result);
441}
442
giuros01154bc1c2019-03-26 17:44:40 +0000443void c_mul_F32_F32_F32_n(const void *__restrict input1_ptr, const void *__restrict input2_ptr, void *__restrict output_ptr)
444{
445 const auto input1 = static_cast<const float *__restrict>(input1_ptr);
446 const auto input2 = static_cast<const float *__restrict>(input2_ptr);
447 const auto output = static_cast<float *__restrict>(output_ptr);
448
449 const float32x4_t a = wrapper::vloadq(input1);
450 float32x4_t b = wrapper::vloadq(input2);
451
452 using ExactTagType = typename wrapper::traits::neon_vector<float, 2>::tag_type;
453
454 const float32x4_t mask = { -1.0f, 1.0f, -1.0f, 1.0f };
455 const float32x2_t tmp00 = wrapper::vdup_n(wrapper::vgetlane(a, 0), ExactTagType{});
456 const float32x2_t tmp01 = wrapper::vdup_n(wrapper::vgetlane(a, 1), ExactTagType{});
457 const float32x2_t tmp10 = wrapper::vdup_n(wrapper::vgetlane(a, 2), ExactTagType{});
458 const float32x2_t tmp11 = wrapper::vdup_n(wrapper::vgetlane(a, 3), ExactTagType{});
459
460 const float32x4_t tmp0 = wrapper::vcombine(tmp00, tmp10);
461 const float32x4_t tmp1 = wrapper::vcombine(tmp01, tmp11);
462
463 float32x4_t res = wrapper::vmul(tmp0, b);
464
465 b = wrapper::vrev64(b);
466 b = wrapper::vmul(b, mask);
467
468 res = wrapper::vmla(res, tmp1, b);
469 wrapper::vstore(output, res);
470}
471
Pablo Tellodf246182017-07-03 16:25:09 +0100472void mul_F16_F16_F16_n(const void *__restrict input1_ptr, const void *__restrict input2_ptr, void *__restrict output_ptr, float scale)
473{
Ioan-Cristian Szabo5edbd1c2017-11-13 13:34:08 +0000474#ifdef __ARM_FEATURE_FP16_VECTOR_ARITHMETIC
Pablo Tellodf246182017-07-03 16:25:09 +0100475 const auto input1 = static_cast<const float16_t *__restrict>(input1_ptr);
476 const auto input2 = static_cast<const float16_t *__restrict>(input2_ptr);
477 const auto output = static_cast<float16_t *__restrict>(output_ptr);
478 const float16x8x2_t ta1 = vld2q_f16(input1);
479 const float16x8x2_t ta2 = vld2q_f16(input2);
480 const float16x8_t scale_vec = vdupq_n_f16(scale);
481 const float16x8x2_t result =
482 {
483 {
484 vmulq_f16(vmulq_f16(ta1.val[0], ta2.val[0]), scale_vec),
485 vmulq_f16(vmulq_f16(ta1.val[1], ta2.val[1]), scale_vec),
486 }
487 };
488 vst2q_f16(output, result);
Ioan-Cristian Szabo5edbd1c2017-11-13 13:34:08 +0000489#else /* __ARM_FEATURE_FP16_VECTOR_ARITHMETIC */
Georgios Pinitas30f02152017-09-27 11:20:48 +0100490 ARM_COMPUTE_UNUSED(input1_ptr);
491 ARM_COMPUTE_UNUSED(input2_ptr);
492 ARM_COMPUTE_UNUSED(output_ptr);
493 ARM_COMPUTE_UNUSED(scale);
Pablo Tellodf246182017-07-03 16:25:09 +0100494 ARM_COMPUTE_ERROR("Not supported. Recompile the library with arch=arm64-v8.2-a.");
Ioan-Cristian Szabo5edbd1c2017-11-13 13:34:08 +0000495#endif /* __ARM_FEATURE_FP16_VECTOR_ARITHMETIC */
Pablo Tellodf246182017-07-03 16:25:09 +0100496}
497
498template <bool is_scale255, bool is_sat>
Anthony Barbier6ff3b192017-09-04 18:44:23 +0100499void mul_U8_U8_S16_n(const void *__restrict input1_ptr, const void *__restrict input2_ptr, void *__restrict output_ptr, int n)
500{
501 const auto input1 = static_cast<const uint8_t *__restrict>(input1_ptr);
502 const auto input2 = static_cast<const uint8_t *__restrict>(input2_ptr);
503 const auto output = static_cast<int16_t *__restrict>(output_ptr);
504
505 const uint8x16_t bv = vld1q_u8(input2);
506 const uint8x16_t av = vld1q_u8(input1);
507
508 uint16x8_t tmp_low = vmovl_u8(vget_low_u8(av));
509 uint16x8_t tmp_high = vmovl_u8(vget_high_u8(av));
510 tmp_low = vmulq_u16(tmp_low, vmovl_u8(vget_low_u8(bv)));
511 tmp_high = vmulq_u16(tmp_high, vmovl_u8(vget_high_u8(bv)));
512
513 if(is_scale255)
514 {
515 tmp_low = scale255_U16_U16(tmp_low);
516 tmp_high = scale255_U16_U16(tmp_high);
517 }
518 else
519 {
520 const int16x8_t vn = vdupq_n_s16(-n);
521
522 if(is_sat)
523 {
524 tmp_low = vqshlq_u16(tmp_low, vn);
525 tmp_high = vqshlq_u16(tmp_high, vn);
526 }
527 else
528 {
529 tmp_low = vshlq_u16(tmp_low, vn);
530 tmp_high = vshlq_u16(tmp_high, vn);
531 }
532 }
533
534 if(is_sat)
535 {
536 static const uint16x8_t max = vdupq_n_u16(SHRT_MAX);
537
538 tmp_low = vminq_u16(tmp_low, max);
539 tmp_high = vminq_u16(tmp_high, max);
540 }
541
542 vst1q_s16(output, vreinterpretq_s16_u16(tmp_low));
543 vst1q_s16(output + 8, vreinterpretq_s16_u16(tmp_high));
544}
545
546template <bool is_scale255, bool is_sat>
547void mul_S16_U8_S16_n(const void *__restrict input1_ptr, const void *__restrict input2_ptr, void *__restrict output_ptr, int n)
548{
549 const auto input1 = static_cast<const int16_t *__restrict>(input1_ptr);
550 const auto input2 = static_cast<const uint8_t *__restrict>(input2_ptr);
551 const auto output = static_cast<int16_t *__restrict>(output_ptr);
552
553 const int16x8x2_t ta1 = vld2q_s16(input1);
554 const uint8x8x2_t ta2u = vld2_u8(input2);
555 const int16x8x2_t ta2 =
556 {
557 {
558 vreinterpretq_s16_u16(vmovl_u8(ta2u.val[0])),
559 vreinterpretq_s16_u16(vmovl_u8(ta2u.val[1]))
560 }
561 };
562
563 const int16x8x2_t result = mul_S16_S16_S16_n_k<is_scale255, is_sat>(ta1, ta2, n);
564
565 vst2q_s16(output, result);
566}
567
568template <bool is_scale255, bool is_sat>
569void mul_U8_S16_S16_n(const void *__restrict input1_ptr, const void *__restrict input2_ptr, void *__restrict output_ptr, int n)
570{
571 // Simply swap the two input buffers
572 mul_S16_U8_S16_n<is_scale255, is_sat>(input2_ptr, input1_ptr, output_ptr, n);
573}
574} // namespace
575
576NEPixelWiseMultiplicationKernel::NEPixelWiseMultiplicationKernel()
Gian Marco Iodiceb19c55d2019-08-30 17:50:15 +0100577 : _func_float(nullptr), _func_int(nullptr), _func_quantized(nullptr), _input1(nullptr), _input2(nullptr), _output(nullptr), _scale{ 0 }, _scale_exponent{ 0 }, _run_optimized_qasymm8(false)
Anthony Barbier6ff3b192017-09-04 18:44:23 +0100578{
579}
580
581void NEPixelWiseMultiplicationKernel::configure(const ITensor *input1, const ITensor *input2, ITensor *output, float scale, ConvertPolicy overflow_policy, RoundingPolicy rounding_policy)
582{
Ioan-Cristian Szabo754e9522017-11-28 18:29:43 +0000583 ARM_COMPUTE_UNUSED(rounding_policy);
Georgios Pinitasf0dea702017-07-03 18:17:28 +0100584 ARM_COMPUTE_ERROR_ON_NULLPTR(input1, input2, output);
585
Ioan-Cristian Szabo754e9522017-11-28 18:29:43 +0000586 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 +0100587
Michalis Spyrou861f0db2018-02-26 16:47:58 +0000588 // Configure kernel window
589 auto win_config = validate_and_configure_window(input1->info(), input2->info(), output->info());
590 ARM_COMPUTE_ERROR_THROW_ON(win_config.first);
591
Gian Marco Iodiceb19c55d2019-08-30 17:50:15 +0100592 _input1 = input1;
593 _input2 = input2;
594 _output = output;
595 _scale = scale;
596 _scale_exponent = 0;
597 _func_quantized = nullptr;
598 _func_int = nullptr;
599 _func_float = nullptr;
600 _run_optimized_qasymm8 = false;
Anthony Barbier6ff3b192017-09-04 18:44:23 +0100601
602 bool is_scale_255 = false;
603 // Check and validate scaling factor
604 if(std::abs(scale - scale255_constant) < 0.00001f)
605 {
Anthony Barbier6ff3b192017-09-04 18:44:23 +0100606 is_scale_255 = true;
607 }
608 else
609 {
Ioan-Cristian Szabo754e9522017-11-28 18:29:43 +0000610 int exponent = 0;
Anthony Barbier6ff3b192017-09-04 18:44:23 +0100611
Ioan-Cristian Szabo754e9522017-11-28 18:29:43 +0000612 std::frexp(scale, &exponent);
Anthony Barbier6ff3b192017-09-04 18:44:23 +0100613
Ioan-Cristian Szabo754e9522017-11-28 18:29:43 +0000614 // Store the positive exponent. We know that we compute 1/2^n
615 // Additionally we need to subtract 1 to compensate that frexp used a mantissa of 0.5
616 _scale_exponent = std::abs(exponent - 1);
Anthony Barbier6ff3b192017-09-04 18:44:23 +0100617 }
618
619 const DataType dt_input1 = input1->info()->data_type();
620 const DataType dt_input2 = input2->info()->data_type();
621 const DataType dt_output = output->info()->data_type();
622 const bool is_sat = (overflow_policy == ConvertPolicy::SATURATE);
623
Manuel Bottini79fa9a22019-02-22 17:54:22 +0000624 if(dt_input1 == DataType::QASYMM8 && dt_input2 == DataType::QASYMM8)
625 {
Gian Marco Iodiceb19c55d2019-08-30 17:50:15 +0100626 _run_optimized_qasymm8 = true;
Manuel Bottini7bb56c62019-06-26 15:17:09 +0100627 }
Pablo Tello52ea9c22019-12-10 11:28:53 +0000628 else if(dt_input1 == DataType::QASYMM8_SIGNED && dt_input2 == DataType::QASYMM8_SIGNED)
629 {
630 _func_quantized = &mul_saturate_QASYMM8_SIGNED_QASYMM8_SIGNED_QASYMM8_SIGNED_n;
631 }
Manuel Bottini7bb56c62019-06-26 15:17:09 +0100632 else if(dt_input1 == DataType::QSYMM16 && dt_input2 == DataType::QSYMM16)
633 {
634 _func_quantized = &mul_saturate_QSYMM16_QSYMM16_QSYMM16_n;
Manuel Bottini79fa9a22019-02-22 17:54:22 +0000635 }
636 else if(DataType::U8 == dt_input1 && DataType::U8 == dt_input2 && DataType::U8 == dt_output)
Anthony Barbier6ff3b192017-09-04 18:44:23 +0100637 {
638 if(is_scale_255)
639 {
640 _func_int = is_sat ? &mul_U8_U8_U8_n<true, true> : &mul_U8_U8_U8_n<true, false>;
641 }
642 else
643 {
644 _func_int = is_sat ? &mul_U8_U8_U8_n<false, true> : &mul_U8_U8_U8_n<false, false>;
645 }
646 }
647 else if(DataType::S16 == dt_input1 && DataType::S16 == dt_input2 && DataType::S16 == dt_output)
648 {
649 if(is_scale_255)
650 {
651 _func_int = is_sat ? &mul_S16_S16_S16_n<true, true> : &mul_S16_S16_S16_n<true, false>;
652 }
653 else
654 {
655 _func_int = is_sat ? &mul_S16_S16_S16_n<false, true> : &mul_S16_S16_S16_n<false, false>;
656 }
657 }
658 else if(DataType::S16 == dt_input1 && DataType::U8 == dt_input2 && DataType::S16 == dt_output)
659 {
660 if(is_scale_255)
661 {
662 _func_int = is_sat ? &mul_S16_U8_S16_n<true, true> : &mul_S16_U8_S16_n<true, false>;
663 }
664 else
665 {
666 _func_int = is_sat ? &mul_S16_U8_S16_n<false, true> : &mul_S16_U8_S16_n<false, false>;
667 }
668 }
669 else if(DataType::U8 == dt_input1 && DataType::S16 == dt_input2 && DataType::S16 == dt_output)
670 {
671 if(is_scale_255)
672 {
673 _func_int = is_sat ? &mul_U8_S16_S16_n<true, true> : &mul_U8_S16_S16_n<true, false>;
674 }
675 else
676 {
677 _func_int = is_sat ? &mul_U8_S16_S16_n<false, true> : &mul_U8_S16_S16_n<false, false>;
678 }
679 }
680 else if(DataType::U8 == dt_input1 && DataType::U8 == dt_input2 && DataType::S16 == dt_output)
681 {
682 if(is_scale_255)
683 {
684 _func_int = is_sat ? &mul_U8_U8_S16_n<true, true> : &mul_U8_U8_S16_n<true, false>;
685 }
686 else
687 {
688 _func_int = is_sat ? &mul_U8_U8_S16_n<false, true> : &mul_U8_U8_S16_n<false, false>;
689 }
690 }
Pablo Tellodf246182017-07-03 16:25:09 +0100691 else if(DataType::F16 == dt_input1 && DataType::F16 == dt_input2 && DataType::F16 == dt_output)
692 {
Manuel Bottini79fa9a22019-02-22 17:54:22 +0000693 _func_float = &mul_F16_F16_F16_n;
Pablo Tellodf246182017-07-03 16:25:09 +0100694 _func_int = nullptr;
695 }
Anthony Barbier6ff3b192017-09-04 18:44:23 +0100696 else if(DataType::F32 == dt_input1 && DataType::F32 == dt_input2 && DataType::F32 == dt_output)
697 {
Manuel Bottini79fa9a22019-02-22 17:54:22 +0000698 _func_float = &mul_F32_F32_F32_n;
Anthony Barbier6ff3b192017-09-04 18:44:23 +0100699 _func_int = nullptr;
700 }
701 else
702 {
703 ARM_COMPUTE_ERROR("You called with the wrong img formats");
704 }
705
Ioan-Cristian Szabo754e9522017-11-28 18:29:43 +0000706 INEKernel::configure(win_config.second);
707}
Anthony Barbier6ff3b192017-09-04 18:44:23 +0100708
Georgios Pinitas631c41a2017-12-06 11:53:03 +0000709Status NEPixelWiseMultiplicationKernel::validate(const ITensorInfo *input1, const ITensorInfo *input2, const ITensorInfo *output, float scale, ConvertPolicy overflow_policy,
710 RoundingPolicy rounding_policy)
Ioan-Cristian Szabo754e9522017-11-28 18:29:43 +0000711{
Michalis Spyrou861f0db2018-02-26 16:47:58 +0000712 ARM_COMPUTE_ERROR_ON_NULLPTR(input1, input2, output);
Ioan-Cristian Szabo754e9522017-11-28 18:29:43 +0000713 ARM_COMPUTE_RETURN_ON_ERROR(validate_arguments(input1, input2, output, scale, overflow_policy, rounding_policy));
714 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 +0100715
Georgios Pinitas631c41a2017-12-06 11:53:03 +0000716 return Status{};
Anthony Barbier6ff3b192017-09-04 18:44:23 +0100717}
718
Moritz Pflanzerc186b572017-09-07 09:48:04 +0100719void NEPixelWiseMultiplicationKernel::run(const Window &window, const ThreadInfo &info)
Anthony Barbier6ff3b192017-09-04 18:44:23 +0100720{
Moritz Pflanzerc186b572017-09-07 09:48:04 +0100721 ARM_COMPUTE_UNUSED(info);
Anthony Barbier6ff3b192017-09-04 18:44:23 +0100722 ARM_COMPUTE_ERROR_ON_UNCONFIGURED_KERNEL(this);
723 ARM_COMPUTE_ERROR_ON_INVALID_SUBWINDOW(INEKernel::window(), window);
724
Michalis Spyrou861f0db2018-02-26 16:47:58 +0000725 const TensorShape &in_shape1 = _input1->info()->tensor_shape();
726 const TensorShape &in_shape2 = _input2->info()->tensor_shape();
727 const TensorShape &out_shape = _output->info()->tensor_shape();
728
729 bool can_collapse = true;
730 if(std::min(in_shape1.total_size(), in_shape2.total_size()) > 1)
731 {
732 can_collapse = (std::min(in_shape1.num_dimensions(), in_shape2.num_dimensions()) > Window::DimZ);
733 for(size_t d = Window::DimZ; can_collapse && (d < out_shape.num_dimensions()); ++d)
734 {
735 can_collapse = (in_shape1[d] == in_shape2[d]);
736 }
737 }
738
739 bool has_collapsed = false;
740 Window collapsed = can_collapse ? window.collapse_if_possible(INEKernel::window(), Window::DimZ, &has_collapsed) : window;
741
742 const TensorShape &in_shape1_collapsed = has_collapsed ? in_shape1.collapsed_from(Window::DimZ) : in_shape1;
743 const TensorShape &in_shape2_collapsed = has_collapsed ? in_shape2.collapsed_from(Window::DimZ) : in_shape2;
744
745 Window slice = collapsed.first_slice_window_3D();
746 Window slice_input1 = slice.broadcast_if_dimension_le_one(in_shape1_collapsed);
747 Window slice_input2 = slice.broadcast_if_dimension_le_one(in_shape2_collapsed);
748
749 Iterator input1(_input1, slice_input1);
750 Iterator input2(_input2, slice_input2);
751 Iterator output(_output, slice);
Anthony Barbier6ff3b192017-09-04 18:44:23 +0100752
Manuel Bottini7bb56c62019-06-26 15:17:09 +0100753 if(is_data_type_quantized(_input1->info()->data_type()))
Manuel Bottini79fa9a22019-02-22 17:54:22 +0000754 {
Gian Marco Iodiceb19c55d2019-08-30 17:50:15 +0100755 if(_run_optimized_qasymm8)
Manuel Bottini79fa9a22019-02-22 17:54:22 +0000756 {
Gian Marco Iodiceb19c55d2019-08-30 17:50:15 +0100757 const int32x4_t input1_voffset = vdupq_n_s32(_input1->info()->quantization_info().uniform().offset);
758 const float32x4_t input1_vscale = vdupq_n_f32(_input1->info()->quantization_info().uniform().scale);
759 const int32x4_t input2_voffset = vdupq_n_s32(_input2->info()->quantization_info().uniform().offset);
760 const float32x4_t input2_vscale = vdupq_n_f32(_input2->info()->quantization_info().uniform().scale);
761 const float32x4_t output_voffset = vdupq_n_f32(static_cast<float>(_output->info()->quantization_info().uniform().offset));
762 const float output_scale = _output->info()->quantization_info().uniform().scale;
763 const float32x4_t vinvscale = vdupq_n_f32(1.f / (output_scale / _scale));
764
765 execute_window_loop(collapsed, [&](const Coordinates &)
766 {
Michalis Spyrou6bff1952019-10-02 17:22:11 +0100767 mul_saturate_QASYMM8_QASYMM8_QASYMM8_n_opt(input1.ptr(), input2.ptr(), output.ptr(),
Gian Marco Iodiceb19c55d2019-08-30 17:50:15 +0100768 input1_vscale, input1_voffset, input2_vscale, input2_voffset, output_voffset, vinvscale);
769 ARM_COMPUTE_UNUSED(collapsed.slide_window_slice_3D(slice_input1));
770 ARM_COMPUTE_UNUSED(collapsed.slide_window_slice_3D(slice_input2));
771 },
772 input1, input2, output);
773 }
774 else
775 {
776 execute_window_loop(collapsed, [&](const Coordinates &)
777 {
778 (*_func_quantized)(input1.ptr(), input2.ptr(), output.ptr(), _scale,
779 _input1->info()->quantization_info().uniform(), _input2->info()->quantization_info().uniform(), _output->info()->quantization_info().uniform());
780 ARM_COMPUTE_UNUSED(collapsed.slide_window_slice_3D(slice_input1));
781 ARM_COMPUTE_UNUSED(collapsed.slide_window_slice_3D(slice_input2));
782 },
783 input1, input2, output);
784 }
Manuel Bottini79fa9a22019-02-22 17:54:22 +0000785 }
786 else if(_func_int != nullptr)
Anthony Barbier6ff3b192017-09-04 18:44:23 +0100787 {
Michalis Spyroua4f378d2019-04-26 14:54:54 +0100788 execute_window_loop(collapsed, [&](const Coordinates &)
Anthony Barbier6ff3b192017-09-04 18:44:23 +0100789 {
790 (*_func_int)(input1.ptr(), input2.ptr(), output.ptr(), _scale_exponent);
Michalis Spyrouebdde652019-07-08 11:52:46 +0100791 ARM_COMPUTE_UNUSED(collapsed.slide_window_slice_3D(slice_input1));
792 ARM_COMPUTE_UNUSED(collapsed.slide_window_slice_3D(slice_input2));
Anthony Barbier6ff3b192017-09-04 18:44:23 +0100793 },
794 input1, input2, output);
795 }
Anthony Barbier6ff3b192017-09-04 18:44:23 +0100796 else
797 {
798 ARM_COMPUTE_ERROR_ON(_func_float == nullptr);
Michalis Spyroua4f378d2019-04-26 14:54:54 +0100799 execute_window_loop(collapsed, [&](const Coordinates &)
Anthony Barbier6ff3b192017-09-04 18:44:23 +0100800 {
801 (*_func_float)(input1.ptr(), input2.ptr(), output.ptr(), _scale);
Michalis Spyrouebdde652019-07-08 11:52:46 +0100802 ARM_COMPUTE_UNUSED(collapsed.slide_window_slice_3D(slice_input1));
803 ARM_COMPUTE_UNUSED(collapsed.slide_window_slice_3D(slice_input2));
Anthony Barbier6ff3b192017-09-04 18:44:23 +0100804 },
805 input1, input2, output);
806 }
807}
Michalis Spyrou861f0db2018-02-26 16:47:58 +0000808
809BorderSize NEPixelWiseMultiplicationKernel::border_size() const
810{
811 const unsigned int replicateSize = _output->info()->dimension(0) - std::min(_input1->info()->dimension(0), _input2->info()->dimension(0));
812 const unsigned int border = std::min<unsigned int>(num_elems_processed_per_iteration - 1U, replicateSize);
Michalis Spyroua4f378d2019-04-26 14:54:54 +0100813 return BorderSize{ 0, border, 0, 0 };
Anthony Barbiereaefd002018-07-20 17:49:35 +0100814}
giuros01154bc1c2019-03-26 17:44:40 +0000815
816namespace
817{
818constexpr unsigned int num_elems_processed_per_iteration_complex = 2;
819
820Status validate_arguments_complex(const ITensorInfo *input1, const ITensorInfo *input2, const ITensorInfo *output)
821{
822 ARM_COMPUTE_RETURN_ERROR_ON_DATA_TYPE_CHANNEL_NOT_IN(input1, 2, DataType::F32);
823 ARM_COMPUTE_RETURN_ERROR_ON_DATA_TYPE_CHANNEL_NOT_IN(input2, 2, DataType::F32);
824
825 const TensorShape &out_shape = TensorShape::broadcast_shape(input1->tensor_shape(), input2->tensor_shape());
826
827 ARM_COMPUTE_RETURN_ERROR_ON_MSG(out_shape.total_size() == 0, "Inputs are not broadcast compatible");
828
829 // Validate in case of configured output
830 if(output->total_size() > 0)
831 {
832 ARM_COMPUTE_RETURN_ERROR_ON_DATA_TYPE_CHANNEL_NOT_IN(output, 2, DataType::F32);
833 ARM_COMPUTE_RETURN_ERROR_ON_MSG(detail::have_different_dimensions(out_shape, output->tensor_shape(), 0), "Wrong shape for output");
834 }
835
836 return Status{};
837}
838
839std::pair<Status, Window> validate_and_configure_window_complex(ITensorInfo *input1, ITensorInfo *input2, ITensorInfo *output)
840{
841 const std::pair<TensorShape, ValidRegion> broadcast_pair = ITensorInfo::broadcast_shape_and_valid_region(*input1, *input2);
842 const TensorShape &out_shape = broadcast_pair.first;
843 const ValidRegion &valid_region = broadcast_pair.second;
844
845 // Auto initialize output if not initialized
846 const TensorInfo out_info(out_shape, input1->num_channels(), input1->data_type());
847 auto_init_if_empty(*output, out_info);
848
849 Window win = calculate_max_window(valid_region, Steps(num_elems_processed_per_iteration_complex));
850 Window win_input1 = win.broadcast_if_dimension_le_one(*input1);
851 Window win_input2 = win.broadcast_if_dimension_le_one(*input2);
852
853 AccessWindowHorizontal input1_access(input1, 0, num_elems_processed_per_iteration_complex);
854 AccessWindowHorizontal input2_access(input2, 0, num_elems_processed_per_iteration_complex);
855 AccessWindowHorizontal output_access(output, 0, num_elems_processed_per_iteration_complex);
856
857 bool window_changed = update_window_and_padding(win_input1, input1_access)
858 || update_window_and_padding(win_input2, input2_access)
859 || update_window_and_padding(win, output_access);
860
861 output_access.set_valid_region(win, valid_region);
862
863 Status err = (window_changed) ? ARM_COMPUTE_CREATE_ERROR(ErrorCode::RUNTIME_ERROR, "Insufficient Padding!") : Status{};
864 return std::make_pair(err, win);
865}
866} // namespace
867
868NEComplexPixelWiseMultiplicationKernel::NEComplexPixelWiseMultiplicationKernel()
869 : _input1(nullptr), _input2(nullptr), _output(nullptr)
870{
871}
872
873void NEComplexPixelWiseMultiplicationKernel::configure(const ITensor *input1, const ITensor *input2, ITensor *output)
874{
875 ARM_COMPUTE_ERROR_ON_NULLPTR(input1, input2, output);
876 ARM_COMPUTE_ERROR_THROW_ON(validate_arguments_complex(input1->info(), input2->info(), output->info()));
877
878 // Configure kernel window
879 auto win_config = validate_and_configure_window_complex(input1->info(), input2->info(), output->info());
880 ARM_COMPUTE_ERROR_THROW_ON(win_config.first);
881
882 _input1 = input1;
883 _input2 = input2;
884 _output = output;
885
886 // Create kernel
887 INEKernel::configure(win_config.second);
888}
889
890Status NEComplexPixelWiseMultiplicationKernel::validate(const ITensorInfo *input1, const ITensorInfo *input2, const ITensorInfo *output)
891{
892 ARM_COMPUTE_ERROR_ON_NULLPTR(input1, input2, output);
893 ARM_COMPUTE_RETURN_ON_ERROR(validate_arguments_complex(input1, input2, output));
894 ARM_COMPUTE_RETURN_ON_ERROR(validate_and_configure_window_complex(input1->clone().get(), input2->clone().get(), output->clone().get()).first);
895
896 return Status{};
897}
898
899void NEComplexPixelWiseMultiplicationKernel::run(const Window &window, const ThreadInfo &info)
900{
901 ARM_COMPUTE_UNUSED(info);
902 ARM_COMPUTE_ERROR_ON_UNCONFIGURED_KERNEL(this);
903 ARM_COMPUTE_ERROR_ON_INVALID_SUBWINDOW(INEKernel::window(), window);
904
905 Iterator input1(_input1, window.broadcast_if_dimension_le_one(_input1->info()->tensor_shape()));
906 Iterator input2(_input2, window.broadcast_if_dimension_le_one(_input2->info()->tensor_shape()));
907 Iterator output(_output, window);
908
909 execute_window_loop(window, [&](const Coordinates &)
910 {
911 c_mul_F32_F32_F32_n(input1.ptr(), input2.ptr(), output.ptr());
912 },
913 input1, input2, output);
914}
915
916BorderSize NEComplexPixelWiseMultiplicationKernel::border_size() const
917{
918 const unsigned int replicateSize = _output->info()->dimension(0) - std::min(_input1->info()->dimension(0), _input2->info()->dimension(0));
919 const unsigned int border = std::min<unsigned int>(num_elems_processed_per_iteration_complex - 1U, replicateSize);
920 return { 0, border, 0, 0 };
921}
Manuel Bottini79fa9a22019-02-22 17:54:22 +0000922} // namespace arm_compute