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178 lines
6.8 KiB
178 lines
6.8 KiB
/* Copyright (c) 2016 PaddlePaddle Authors. All Rights Reserve.
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Licensed under the Apache License, Version 2.0 (the "License");
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you may not use this file except in compliance with the License.
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You may obtain a copy of the License at
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http://www.apache.org/licenses/LICENSE-2.0
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Unless required by applicable law or agreed to in writing, software
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distributed under the License is distributed on an "AS IS" BASIS,
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WITHOUT WARRANTIES OR CONDITIONS OF ANY KIND, either express or implied.
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See the License for the specific language governing permissions and
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limitations under the License. */
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#include "CrossMapNormalOp.h"
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#include "hl_base.h"
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namespace paddle {
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__global__ void KeCMRNormFillScale(size_t imageSize,
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const real* in,
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real* scale,
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size_t channels,
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size_t height,
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size_t width,
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size_t size,
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real alpha) {
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const int idx = threadIdx.x + blockIdx.x * blockDim.x;
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if (idx < imageSize) {
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const int w = idx % width;
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const int h = (idx / width) % height;
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const int n = idx / width / height;
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const int offset = (n * channels * height + h) * width + w;
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in += offset;
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scale += offset;
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const int step = height * width;
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const int pre_pad = (size - 1) / 2;
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const int post_pad = size - pre_pad - 1;
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real accum = 0;
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int index = 0;
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while (index < channels + post_pad) {
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if (index < channels) {
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accum += in[index * step] * in[index * step];
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}
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if (index >= size) {
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accum -= in[(index - size) * step] * in[(index - size) * step];
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}
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if (index >= post_pad) {
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scale[(index - post_pad) * step] = 1. + accum * alpha;
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}
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++index;
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}
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}
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}
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__global__ void KeCMRNormOutput(size_t inputSize,
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const real* in,
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const real* scale,
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real negative_beta,
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real* out) {
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const int index = threadIdx.x + blockIdx.x * blockDim.x;
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if (index < inputSize) {
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out[index] = in[index] * pow(scale[index], negative_beta);
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}
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}
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template <>
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void CrossMapNormal<DEVICE_TYPE_GPU>(real* outputs,
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real* denoms,
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const real* inputs,
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size_t numSamples,
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size_t channels,
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size_t height,
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size_t width,
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size_t size,
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real scale,
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real pow) {
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size_t imageSize = numSamples * height * width;
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int blockSize = 1024;
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int gridSize = (imageSize + 1024 - 1) / 1024;
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KeCMRNormFillScale<<<gridSize, blockSize, 0, STREAM_DEFAULT>>>(
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imageSize, inputs, denoms, channels, height, width, size, scale);
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size_t inputSize = numSamples * height * width * channels;
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blockSize = 1024;
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gridSize = (inputSize + 1024 - 1) / 1024;
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KeCMRNormOutput<<<gridSize, blockSize, 0, STREAM_DEFAULT>>>(
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inputSize, inputs, denoms, -pow, outputs);
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CHECK_SYNC("CrossMapNormal");
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}
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__global__ void KeCMRNormDiff(size_t imageSize,
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const real* bottom_data,
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const real* top_data,
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const real* scale,
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const real* top_diff,
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size_t channels,
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size_t height,
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size_t width,
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size_t size,
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real negative_beta,
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real cache_ratio,
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real* bottom_diff) {
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const int idx = threadIdx.x + blockIdx.x * blockDim.x;
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if (idx < imageSize) {
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const int w = idx % width;
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const int h = (idx / width) % height;
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const int n = idx / width / height;
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const int offset = (n * channels * height + h) * width + w;
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bottom_data += offset;
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top_data += offset;
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scale += offset;
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top_diff += offset;
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bottom_diff += offset;
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const int step = height * width;
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const int pre_pad = size - (size + 1) / 2;
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const int post_pad = size - pre_pad - 1;
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int index = 0;
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real accum = 0;
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while (index < channels + post_pad) {
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if (index < channels) {
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accum += top_diff[index * step] * top_data[index * step] /
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scale[index * step];
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}
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if (index >= size) {
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accum -= top_diff[(index - size) * step] *
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top_data[(index - size) * step] / scale[(index - size) * step];
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}
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if (index >= post_pad) {
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bottom_diff[(index - post_pad) * step] +=
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top_diff[(index - post_pad) * step] *
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pow(scale[(index - post_pad) * step], negative_beta) -
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cache_ratio * bottom_data[(index - post_pad) * step] * accum;
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}
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++index;
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}
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}
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}
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template <>
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void CrossMapNormalGrad<DEVICE_TYPE_GPU>(real* inputsGrad,
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const real* inputsValue,
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const real* outputsValue,
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const real* outputsGrad,
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const real* denoms,
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size_t numSamples,
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size_t channels,
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size_t height,
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size_t width,
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size_t size,
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real scale,
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real pow) {
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size_t imageSize = numSamples * height * width;
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int blockSize = 1024;
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int gridSize = (imageSize + 1024 - 1) / 1024;
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KeCMRNormDiff<<<gridSize, blockSize, 0, STREAM_DEFAULT>>>(imageSize,
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inputsValue,
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outputsValue,
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denoms,
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outputsGrad,
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channels,
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height,
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width,
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size,
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-pow,
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2.0f * pow * scale,
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inputsGrad);
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CHECK_SYNC("CrossMapNormalGrad");
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}
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} // namespace paddle
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