reshape_layer.cpp 4.76 KB
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//
//                           License Agreement
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#include "../precomp.hpp"
#include "layers_common.hpp"
#include "reshape_layer.hpp"
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#include <opencv2/dnn/shape_utils.hpp>
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namespace cv
{
namespace dnn
{

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ReshapeLayerImpl::ReshapeLayerImpl(const BlobShape &newShape_, Range applyingRange_, bool enableReordering_) :
    enableReordering(enableReordering_)
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{
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    newShapeDesc = newShape_;
    newShapeRange = applyingRange_;
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}

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void ReshapeLayerImpl::allocate(const std::vector<Blob*> &inputs, std::vector<Blob> &outputs)
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{
    outputs.resize(inputs.size());
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    outShapes.resize(inputs.size());
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    for (size_t i = 0; i < inputs.size(); i++)
    {
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        outShapes[i] = computeShapeByReshapeMask(inputs[i]->shape(), newShapeDesc, newShapeRange);
        outputs[i].shareFrom(*inputs[i]);
        outputs[i].reshape(outShapes[i]);
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    }
}

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void ReshapeLayerImpl::forward(std::vector<Blob*> &inputs, std::vector<Blob> &outputs)
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{
    for (size_t i = 0; i < outputs.size(); i++)
    {
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        Blob& srcBlob = *inputs[i];
        BlobShape inputShape = inputs[i]->shape();
        bool channelsReduced = inputShape.dims() > outShapes[i].dims() ||
                (inputShape.dims() == 4 && inputShape[1] > outShapes[i][1]);
        bool performReordering = enableReordering && inputShape.dims() == 4 && channelsReduced;

        if (performReordering)
        {
            Blob reordered_blob(inputShape, inputs[i]->type());

            float *dstData = reordered_blob.matRef().ptr<float>();
            const float *srcData = srcBlob.matRefConst().ptr<float>();

            int num = inputShape[0], channels = inputShape[1], height = inputShape[2], width = inputShape[3];
            int total = num*channels*height*width;
            for(int i_n = 0; i_n < num; i_n++) {
                for(int i_c = 0; i_c < channels; i_c++) {
                    for(int i_h = 0; i_h < height; i_h++) {
                        for(int i_w = 0; i_w < width; i_w++) {
                           int src_i = channels*height*width*i_n + height*width*i_c + width*i_h + i_w;
                           int dst_i = channels*height*width*i_n + i_c + channels*width*i_h + channels*i_w;

                           CV_Assert(dst_i < total);
                           CV_Assert(src_i < total);

                           dstData[dst_i] = srcData[src_i];
                        }
                    }
                }
            }

            srcBlob = reordered_blob;
        }

        outputs[i].shareFrom(srcBlob);
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        outputs[i].reshape(outShapes[i]);
    }
}

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Ptr<ReshapeLayer> ReshapeLayer::create(const BlobShape &newShape, Range applyingRange /*= Range::all()*/,
                                       bool enableReordering /*= false*/)
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{
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    return Ptr<ReshapeLayer>(new ReshapeLayerImpl(newShape, applyingRange, enableReordering));
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}


}
}