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Gian Marco Iodice4b908652018-10-18 10:21:02 +01001/*
2 * Copyright (c) 2018 ARM Limited.
3 *
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#ifndef __ARM_COMPUTE_CLGEMMLOWPOFFSETCONTRIBUTIONOUTPUTSTAGEKERNEL_H__
25#define __ARM_COMPUTE_CLGEMMLOWPOFFSETCONTRIBUTIONOUTPUTSTAGEKERNEL_H__
26
27#include "arm_compute/core/CL/ICLKernel.h"
28
29namespace arm_compute
30{
31class ICLTensor;
32
33/** OpenCL kernel used to add the offset contribution after @ref CLGEMMLowpMatrixMultiplyKernel and perform the output stage.
34 *
35 * This kernel takes a final int32 accumulator value (the output of @ref CLGEMMLowpMatrixMultiplyKernel), adds to it the offset contribution
36 * of matrix A and matrix B and performs the output stage defined by the output_stage argument
37 *
38 */
39class CLGEMMLowpOffsetContributionOutputStageKernel : public ICLKernel
40{
41public:
42 /** Constructor */
43 CLGEMMLowpOffsetContributionOutputStageKernel();
44 /** Prevent instances of this class from being copied (As this class contains pointers)*/
45 CLGEMMLowpOffsetContributionOutputStageKernel(const CLGEMMLowpOffsetContributionOutputStageKernel &) = delete;
46 /** Prevent instances of this class from being copied (As this class contains pointers)*/
47 CLGEMMLowpOffsetContributionOutputStageKernel &operator=(const CLGEMMLowpOffsetContributionOutputStageKernel &) = delete;
48 /** Allow instances of this class to be moved */
49 CLGEMMLowpOffsetContributionOutputStageKernel(CLGEMMLowpOffsetContributionOutputStageKernel &&) = default;
50 /** Allow instances of this class to be moved */
51 CLGEMMLowpOffsetContributionOutputStageKernel &operator=(CLGEMMLowpOffsetContributionOutputStageKernel &&) = default;
52 /** Initialise the kernel's input and output.
53 *
54 * @param[in] mm_result Input tensor containing the result of @ref CLGEMMLowpMatrixMultiplyKernel. Data type supported: S32
55 * @param[in] vector_sum_col Input row-vector of sums of all the entries in each column of matrix B.
56 * Note: vector_sum_col can be a nullptr in case a_offset = 0. Data type supported: same as @p mm_result
57 * @param[in] vector_sum_row Input row-vector of sums of all the entries in each row of matrix A.
58 * Note: vector_sum_row can be a nullptr in case b_offset = 0. Data type supported: same as @p mm_result
59 * @param[in] bias Biases tensor. Only shared biases supported and it can be a nullptr if the addition of biases is not required.
60 * Biases are 1D tensor with dimensions [OFM]. Data type supported: Same as @p input.
61 * @param[out] output Output tensor. Data type supported: QASYMM8
62 * @param[in] k Number of matrix A columns or Matrix B rows
63 * @param[in] a_offset Offset to be added to each element of the matrix A.
64 * @param[in] b_offset Offset to be added to each element of the matrix B.
65 * @param[in] output_stage GEMMLowp output stage info
66 */
67 void configure(const ICLTensor *mm_result, const ICLTensor *vector_sum_col, const ICLTensor *vector_sum_row, const ICLTensor *bias, ICLTensor *output, int32_t k, int32_t a_offset, int32_t b_offset,
68 const GEMMLowpOutputStageInfo &output_stage);
69 /** Static function to check if given info will lead to a valid configuration of @ref CLGEMMLowpOffsetContributionKernel
70 *
71 * @param[in] mm_result Input tensor containing the result of @ref CLGEMMLowpOffsetContributionKernel. Data type supported: S32 or QASYMM8 if output_stage != NONE
72 * @param[in] vector_sum_col Input row-vector of sums of all the entries in each column of matrix B.
73 * Note: vector_sum_col can be a nullptr in case a_offset = 0. Data type supported: same as @p mm_result
74 * @param[in] vector_sum_row Input row-vector of sums of all the entries in each row of matrix A.
75 * Note: vector_sum_row can be a nullptr in case b_offset = 0. Data type supported: same as @p mm_result
76 * @param[in] bias Biases tensor. Only shared biases supported and it can be a nullptr if the addition of biases is not required.
77 * Biases are 1D tensor with dimensions [OFM]. Data type supported: Same as @p input.
78 * @param[in] output Output tensor. Data type supported: QASYMM8
79 * @param[in] a_offset Offset to be added to each element of the matrix A.
80 * @param[in] b_offset Offset to be added to each element of the matrix B.
81 * @param[in] output_stage GEMMLowp output stage info
82 *
83 * @return a status
84 */
85 static Status validate(const ITensorInfo *mm_result, const ITensorInfo *vector_sum_col, const ITensorInfo *vector_sum_row, const ITensorInfo *bias, const ITensorInfo *output, int32_t a_offset,
86 int32_t b_offset, const GEMMLowpOutputStageInfo &output_stage);
87
88 // Inherited methods overridden:
89 void run(const Window &window, cl::CommandQueue &queue) override;
90
91private:
92 const ICLTensor *_mm_result;
93 const ICLTensor *_vector_sum_col;
94 const ICLTensor *_vector_sum_row;
95 const ICLTensor *_bias;
96 ICLTensor *_output;
97};
98} // namespace arm_compute
99
100#endif /* __ARM_COMPUTE_CLGEMMLOWPOFFSETCONTRIBUTIONOUTPUTSTAGEKERNEL_H__ */