161 lines
9.1 KiB
C++
161 lines
9.1 KiB
C++
/*
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* Copyright (c) 2019-2020 Arm Limited.
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*
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* SPDX-License-Identifier: MIT
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*
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* Permission is hereby granted, free of charge, to any person obtaining a copy
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* of this software and associated documentation files (the "Software"), to
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* deal in the Software without restriction, including without limitation the
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* rights to use, copy, modify, merge, publish, distribute, sublicense, and/or
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* sell copies of the Software, and to permit persons to whom the Software is
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* furnished to do so, subject to the following conditions:
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*
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* The above copyright notice and this permission notice shall be included in all
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* copies or substantial portions of the Software.
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*
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* THE SOFTWARE IS PROVIDED "AS IS", WITHOUT WARRANTY OF ANY KIND, EXPRESS OR
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* IMPLIED, INCLUDING BUT NOT LIMITED TO THE WARRANTIES OF MERCHANTABILITY,
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* FITNESS FOR A PARTICULAR PURPOSE AND NONINFRINGEMENT. IN NO EVENT SHALL THE
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* AUTHORS OR COPYRIGHT HOLDERS BE LIABLE FOR ANY CLAIM, DAMAGES OR OTHER
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* LIABILITY, WHETHER IN AN ACTION OF CONTRACT, TORT OR OTHERWISE, ARISING FROM,
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* OUT OF OR IN CONNECTION WITH THE SOFTWARE OR THE USE OR OTHER DEALINGS IN THE
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* SOFTWARE.
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*/
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#ifndef ARM_COMPUTE_CLGEMMDECONVOLUTIONLAYER_H
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#define ARM_COMPUTE_CLGEMMDECONVOLUTIONLAYER_H
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#include "arm_compute/runtime/CL/CLTensor.h"
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#include "arm_compute/runtime/CL/functions/CLConvolutionLayer.h"
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#include "arm_compute/runtime/CL/functions/CLGEMMLowpOutputStage.h"
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#include "arm_compute/runtime/CL/functions/CLPermute.h"
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#include "arm_compute/runtime/CL/functions/CLReshapeLayer.h"
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#include "arm_compute/runtime/CL/functions/CLSlice.h"
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#include "arm_compute/runtime/CL/functions/CLTranspose.h"
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#include "arm_compute/runtime/IFunction.h"
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#include "arm_compute/runtime/IMemoryManager.h"
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#include "arm_compute/runtime/MemoryGroup.h"
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#include <memory>
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namespace arm_compute
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{
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class CLDeconvolutionReshapeOutputKernel;
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class ICLTensor;
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/** Function to run the deconvolution layer through a call to GEMM.
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*
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* Deconvolution Layer is the backward pass of Convolution Layer. First we transform the input depending on the stride and pad info and then perform a 1x1
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* convolution pass. Input stride defines how many zeroes we should put between each element of the input, pad is the amount of padding and finally a is a user
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* specified value where a < stride - 1, that increases the padding top and right of the input image.
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*
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* The relation between input to output is as follows:
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* \f[
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* width\_output = (width\_input - 1) \cdot stride\_x - 2 \cdot padding\_x + kernel\_x
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* \f]
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* \f[
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* height\_output = (height\_input - 1) \cdot stride\_y - 2 \cdot padding\_y + kernel\_y
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* \f]
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*
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* where:
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* width_input is the size of the first input dimension.
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* height_input is the size of the second input dimension.
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* width_output is the size of the first output dimension.
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* height_output is the size of the second output dimension.
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* kernel_x and kernel_y are the convolution sizes in x and y.
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* stride_x and stride_y is the input stride of the first and second dimension.
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*
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* The weights used by Deconvolution are supposed to be the same as the ones used for Convolution.
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*
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* This function calls the following OpenCL kernels/functions:
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*
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* -# @ref CLGEMMLowpMatrixMultiplyCore
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* -# @ref CLGEMMLowpOutputStage
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* -# @ref CLPermute
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* -# @ref CLPermute
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* -# @ref CLReshapeLayer
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* -# @ref CLTranspose
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* -# @ref CLDeconvolutionReshapeOutputKernel
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* -# @ref CLSlice
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*/
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class CLGEMMDeconvolutionLayer : public IFunction
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{
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public:
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/** Constructor */
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CLGEMMDeconvolutionLayer(std::shared_ptr<IMemoryManager> memory_manager = nullptr);
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/** Prevent instances of this class from being copied (As this class contains pointers) */
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CLGEMMDeconvolutionLayer(const CLGEMMDeconvolutionLayer &) = delete;
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/** Default move constructor */
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CLGEMMDeconvolutionLayer(CLGEMMDeconvolutionLayer &&) = default;
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/** Prevent instances of this class from being copied (As this class contains pointers) */
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CLGEMMDeconvolutionLayer &operator=(const CLGEMMDeconvolutionLayer &) = delete;
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/** Default move assignment operator */
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CLGEMMDeconvolutionLayer &operator=(CLGEMMDeconvolutionLayer &&) = default;
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/** Default desctructor */
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~CLGEMMDeconvolutionLayer();
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/** Set the input, weights, biases and output tensors.
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*
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* @param[in,out] input Input tensor. 3 lower dimensions represent a single input, and an optional 4th dimension for batch of inputs.
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* Data types supported: QASYMM8/QASYMM8_SIGNED/F16/F32. Data layout supported: NHWC
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* @param[in] weights The 4d weights with dimensions [width, height, IFM, OFM]. Data type supported: Same as @p input. Data layout supported: same as @p input.
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* @param[in] bias (Optional) The biases have one dimension. Data type supported: Same as @p input. Data layout supported: same as @p input.
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* @param[out] output Output tensor. The output has the same number of dimensions as the @p input. Data layout supported: same as @p input.
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* @param[in] deconv_info Contains padding and policies to be used in the deconvolution, this is described in @ref PadStrideInfo. This function supports only stride_x = weights.width && stride_y = weights.height. Moreover, padding is not supported.
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*/
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void configure(const ICLTensor *input, const ICLTensor *weights, const ICLTensor *bias, ICLTensor *output, const PadStrideInfo &deconv_info);
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/** Set the input, weights, biases and output tensors.
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*
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* @param[in] compile_context The compile context to be used.
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* @param[in,out] input Input tensor. 3 lower dimensions represent a single input, and an optional 4th dimension for batch of inputs.
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* Data types supported: QASYMM8/QASYMM8_SIGNED/F16/F32. Data layout supported: NHWC
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* @param[in] weights The 4d weights with dimensions [width, height, IFM, OFM]. Data type supported: Same as @p input. Data layout supported: same as @p input.
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* @param[in] bias (Optional) The biases have one dimension. Data type supported: Same as @p input. Data layout supported: same as @p input.
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* @param[out] output Output tensor. The output has the same number of dimensions as the @p input. Data layout supported: same as @p input.
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* @param[in] deconv_info Contains padding and policies to be used in the deconvolution, this is described in @ref PadStrideInfo. This function supports only stride_x = weights.width && stride_y = weights.height. Moreover, padding is not supported.
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*/
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void configure(const CLCompileContext &compile_context, const ICLTensor *input, const ICLTensor *weights, const ICLTensor *bias, ICLTensor *output, const PadStrideInfo &deconv_info);
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/** Static function to check if given info will lead to a valid configuration of @ref CLDeconvolutionLayer
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*
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* @param[in] input Input tensor info. 3 lower dimensions represent a single input, and an optional 4th dimension for batch of inputs.
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* Data types supported: QASYMM8/QASYMM8_SIGNED/F16/F32. Data layout supported: NHWC
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* @param[in] weights The 4d weights info with dimensions [width, height, IFM, OFM]. Data type supported: Same as @p input. Data layout supported: same as @p input.
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* @param[in] bias (Optional) The biases have one dimension. Data type supported: Same as @p input. Data layout supported: same as @p input.
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* @param[in] output Output tensor info. The output has the same number of dimensions as the @p input. Data layout supported: same as @p input.
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* @param[in] deconv_info Contains padding and policies to be used in the deconvolution, this is described in @ref PadStrideInfo.
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*
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* @return a status
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*/
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static Status validate(const ITensorInfo *input, const ITensorInfo *weights, const ITensorInfo *bias, const ITensorInfo *output, const PadStrideInfo &deconv_info);
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// Inherited methods overridden:
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void run() override;
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void prepare() override;
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private:
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MemoryGroup _memory_group;
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CLGEMM _mm_gemm;
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CLGEMMLowpMatrixMultiplyCore _mm_gemmlowp;
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CLGEMMLowpOutputStage _gemmlowp_output_stage;
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CLPermute _permute_input_to_nhwc;
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CLPermute _permute_weights_to_nhwc;
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CLReshapeLayer _reshape_weights;
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CLTranspose _transpose_weights;
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std::unique_ptr<CLDeconvolutionReshapeOutputKernel> _deconv_reshape;
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CLSlice _slice_gemm;
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CLTensor _gemmlowp_final;
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CLTensor _reshaped_weights;
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CLTensor _reshaped_weights_t;
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CLTensor _permuted_input;
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CLTensor _permuted_weights;
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CLTensor _gemm_output;
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CLTensor _slice_gemm_input;
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const ICLTensor *_original_weights;
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bool _is_prepared;
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bool _padded_input;
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bool _is_nchw;
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bool _is_quantized;
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};
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} // namespace arm_compute
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#endif /* ARM_COMPUTE_CLGEMMDECONVOLUTIONLAYER_H */
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