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/* 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 "ROIPoolLayer.h"
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namespace paddle {
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REGISTER_LAYER(roi_pool, ROIPoolLayer);
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bool ROIPoolLayer::init(const LayerMap& layerMap,
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const ParameterMap& parameterMap) {
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Layer::init(layerMap, parameterMap);
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const ROIPoolConfig& layerConf = config_.inputs(0).roi_pool_conf();
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pooledWidth_ = layerConf.pooled_width();
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pooledHeight_ = layerConf.pooled_height();
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spatialScale_ = layerConf.spatial_scale();
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return true;
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}
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void ROIPoolLayer::forward(PassType passType) {
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Layer::forward(passType);
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const ROIPoolConfig& layerConf = config_.inputs(0).roi_pool_conf();
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height_ = getInput(0).getFrameHeight();
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if (!height_) height_ = layerConf.height();
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width_ = getInput(0).getFrameWidth();
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if (!width_) width_ = layerConf.width();
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channels_ = getInputValue(0)->getWidth() / width_ / height_;
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size_t batchSize = getInput(0).getBatchSize();
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size_t numROIs = getInput(1).getBatchSize();
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real* bottomData = getInputValue(0)->getData();
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size_t batchOffset = getInputValue(0)->getWidth();
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size_t channelOffset = height_ * width_;
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real* bottomROIs = getInputValue(1)->getData();
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size_t roiOffset = getInputValue(1)->getWidth();
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size_t poolChannelOffset = pooledHeight_ * pooledWidth_;
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resetOutput(numROIs, channels_ * pooledHeight_ * pooledWidth_);
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real* outputData = getOutputValue()->getData();
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Matrix::resizeOrCreate(maxIdxs_,
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numROIs,
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channels_ * pooledHeight_ * pooledWidth_,
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false,
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false);
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real* argmaxData = maxIdxs_->getData();
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size_t uZero = 0;
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size_t uOne = 1;
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for (size_t n = 0; n < numROIs; ++n) {
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size_t roiBatchIdx = bottomROIs[0];
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size_t roiStartW = std::round(bottomROIs[1] * spatialScale_);
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size_t roiStartH = std::round(bottomROIs[2] * spatialScale_);
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size_t roiEndW = std::round(bottomROIs[3] * spatialScale_);
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size_t roiEndH = std::round(bottomROIs[4] * spatialScale_);
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CHECK_GE(roiBatchIdx, 0);
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CHECK_LT(roiBatchIdx, batchSize);
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size_t roiHeight = std::max(roiEndH - roiStartH + 1, uOne);
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size_t roiWidth = std::max(roiEndW - roiStartW + 1, uOne);
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real binSizeH =
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static_cast<real>(roiHeight) / static_cast<real>(pooledHeight_);
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real binSizeW =
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static_cast<real>(roiWidth) / static_cast<real>(pooledWidth_);
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real* batchData = bottomData + batchOffset * roiBatchIdx;
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for (size_t c = 0; c < channels_; ++c) {
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for (size_t ph = 0; ph < pooledHeight_; ++ph) {
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for (size_t pw = 0; pw < pooledWidth_; ++pw) {
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size_t hstart = static_cast<size_t>(std::floor(ph * binSizeH));
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size_t wstart = static_cast<size_t>(std::floor(pw * binSizeW));
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size_t hend = static_cast<size_t>(std::ceil((ph + 1) * binSizeH));
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size_t wend = static_cast<size_t>(std::ceil((pw + 1) * binSizeW));
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hstart = std::min(std::max(hstart + roiStartH, uZero), height_);
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wstart = std::min(std::max(wstart + roiStartW, uZero), width_);
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hend = std::min(std::max(hend + roiStartH, uZero), height_);
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wend = std::min(std::max(wend + roiStartW, uZero), width_);
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bool isEmpty = (hend <= hstart) || (wend <= wstart);
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size_t poolIndex = ph * pooledWidth_ + pw;
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if (isEmpty) {
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outputData[poolIndex] = 0;
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argmaxData[poolIndex] = -1;
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}
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for (size_t h = hstart; h < hend; ++h) {
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for (size_t w = wstart; w < wend; ++w) {
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size_t index = h * width_ + w;
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if (batchData[index] > outputData[poolIndex]) {
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outputData[poolIndex] = batchData[index];
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argmaxData[poolIndex] = index;
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}
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}
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}
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}
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}
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batchData += channelOffset;
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outputData += poolChannelOffset;
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argmaxData += poolChannelOffset;
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}
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bottomROIs += roiOffset;
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}
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}
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void ROIPoolLayer::backward(const UpdateCallback& callback) {
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real* bottomROIs = getInputValue(1)->getData();
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size_t numROIs = getInput(1).getBatchSize();
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size_t roiOffset = getInputValue(1)->getWidth();
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MatrixPtr inGrad = getInputGrad(0);
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real* inDiffData = inGrad->getData();
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size_t batchOffset = getInputValue(0)->getWidth();
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size_t channelOffset = height_ * width_;
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MatrixPtr outGrad = getOutputGrad();
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real* outDiffData = outGrad->getData();
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size_t poolChannelOffset = pooledHeight_ * pooledWidth_;
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real* argmaxData = maxIdxs_->getData();
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for (size_t n = 0; n < numROIs; ++n) {
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size_t roiBatchIdx = bottomROIs[0];
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real* batchDiffData = inDiffData + batchOffset * roiBatchIdx;
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for (size_t c = 0; c < channels_; ++c) {
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for (size_t ph = 0; ph < pooledHeight_; ++ph) {
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for (size_t pw = 0; pw < pooledWidth_; ++pw) {
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size_t poolIndex = ph * pooledWidth_ + pw;
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if (argmaxData[poolIndex] > 0) {
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size_t index = static_cast<size_t>(argmaxData[poolIndex]);
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batchDiffData[index] += outDiffData[poolIndex];
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}
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}
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}
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batchDiffData += channelOffset;
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outDiffData += poolChannelOffset;
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argmaxData += poolChannelOffset;
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}
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bottomROIs += roiOffset;
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}
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}
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} // namespace paddle
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@ -0,0 +1,53 @@
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/* 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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#pragma once
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#include "Layer.h"
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namespace paddle {
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/**
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* A layer used by Fast R-CNN to extract feature maps of ROIs from the last
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* feature map.
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* - Input: This layer needs two input layers: The first input layer is a
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* convolution layer; The second input layer contains the ROI data which is the
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* output of ProposalLayer in Faster R-CNN. layers for generating bbox
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* location offset and the classification confidence. - Output: The
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* ROIs' feature map. Reference: Shaoqing Ren, Kaiming He, Ross Girshick, and
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* Jian Sun. Faster R-CNN: Towards Real-Time Object Detection with Region
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* Proposal
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*/
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class ROIPoolLayer : public Layer {
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protected:
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size_t channels_;
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size_t width_;
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size_t height_;
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size_t pooledWidth_;
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size_t pooledHeight_;
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real spatialScale_;
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MatrixPtr maxIdxs_;
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public:
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explicit ROIPoolLayer(const LayerConfig& config) : Layer(config) {}
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bool init(const LayerMap& layerMap,
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const ParameterMap& parameterMap) override;
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void forward(PassType passType) override;
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void backward(const UpdateCallback& callback = nullptr) override;
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};
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} // namespace paddle
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