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d015fa76fa
This fix is a workaround for current 2.4 branch without introducing an additional oclMat buffer into CannyBuf object. Test case is cleaned up. Volatile keywords in kernels are removed for performance concern.
408 lines
17 KiB
C++
408 lines
17 KiB
C++
/*M///////////////////////////////////////////////////////////////////////////////////////
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//
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// IMPORTANT: READ BEFORE DOWNLOADING, COPYING, INSTALLING OR USING.
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//
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// By downloading, copying, installing or using the software you agree to this license.
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// If you do not agree to this license, do not download, install,
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// copy or use the software.
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//
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//
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// License Agreement
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// For Open Source Computer Vision Library
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//
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// Copyright (C) 2010-2012, Multicoreware, Inc., all rights reserved.
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// Copyright (C) 2010-2012, Advanced Micro Devices, Inc., all rights reserved.
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// Third party copyrights are property of their respective owners.
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//
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// @Authors
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// Peng Xiao, pengxiao@multicorewareinc.com
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//
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// Redistribution and use in source and binary forms, with or without modification,
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// are permitted provided that the following conditions are met:
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//
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// * Redistribution's of source code must retain the above copyright notice,
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// this list of conditions and the following disclaimer.
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//
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// * Redistribution's in binary form must reproduce the above copyright notice,
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// this list of conditions and the following disclaimer in the documentation
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// and/or other oclMaterials provided with the distribution.
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//
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// * The name of the copyright holders may not be used to endorse or promote products
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// derived from this software without specific prior written permission.
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//
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// This software is provided by the copyright holders and contributors as is and
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// any express or implied warranties, including, but not limited to, the implied
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// warranties of merchantability and fitness for a particular purpose are disclaimed.
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// In no event shall the Intel Corporation or contributors be liable for any direct,
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// indirect, incidental, special, exemplary, or consequential damages
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// (including, but not limited to, procurement of substitute goods or services;
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// loss of use, data, or profits; or business interruption) however caused
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// and on any theory of liability, whether in contract, strict liability,
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// or tort (including negligence or otherwise) arising in any way out of
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// the use of this software, even if advised of the possibility of such damage.
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//
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//M*/
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#include "precomp.hpp"
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using namespace cv;
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using namespace cv::ocl;
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using namespace std;
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namespace cv
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{
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namespace ocl
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{
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///////////////////////////OpenCL kernel strings///////////////////////////
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extern const char *imgproc_canny;
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}
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}
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cv::ocl::CannyBuf::CannyBuf(const oclMat &dx_, const oclMat &dy_) : dx(dx_), dy(dy_), counter(NULL)
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{
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CV_Assert(dx_.type() == CV_32SC1 && dy_.type() == CV_32SC1 && dx_.size() == dy_.size());
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create(dx_.size(), -1);
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}
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void cv::ocl::CannyBuf::create(const Size &image_size, int apperture_size)
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{
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ensureSizeIsEnough(image_size, CV_32SC1, dx);
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ensureSizeIsEnough(image_size, CV_32SC1, dy);
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if(apperture_size == 3)
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{
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ensureSizeIsEnough(image_size, CV_32SC1, dx_buf);
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ensureSizeIsEnough(image_size, CV_32SC1, dy_buf);
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}
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else if(apperture_size > 0)
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{
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Mat kx, ky;
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if (!filterDX)
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{
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filterDX = createDerivFilter_GPU(CV_8U, CV_32S, 1, 0, apperture_size, BORDER_REPLICATE);
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}
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if (!filterDY)
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{
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filterDY = createDerivFilter_GPU(CV_8U, CV_32S, 0, 1, apperture_size, BORDER_REPLICATE);
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}
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}
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ensureSizeIsEnough(2 * (image_size.height + 2), image_size.width + 2, CV_32FC1, edgeBuf);
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ensureSizeIsEnough(1, image_size.width * image_size.height, CV_16UC2, trackBuf1);
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ensureSizeIsEnough(1, image_size.width * image_size.height, CV_16UC2, trackBuf2);
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int counter_i [1] = { 0 };
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int err = 0;
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if(counter)
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{
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openCLFree(counter);
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}
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counter = clCreateBuffer( *((cl_context*)getoclContext()), CL_MEM_COPY_HOST_PTR, sizeof(int), counter_i, &err );
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openCLSafeCall(err);
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}
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void cv::ocl::CannyBuf::release()
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{
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dx.release();
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dy.release();
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dx_buf.release();
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dy_buf.release();
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edgeBuf.release();
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trackBuf1.release();
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trackBuf2.release();
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openCLFree(counter);
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}
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namespace cv
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{
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namespace ocl
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{
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namespace canny
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{
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void calcSobelRowPass_gpu(const oclMat &src, oclMat &dx_buf, oclMat &dy_buf, int rows, int cols);
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void calcMagnitude_gpu(const oclMat &dx_buf, const oclMat &dy_buf, oclMat &dx, oclMat &dy, oclMat &mag, int rows, int cols, bool L2Grad);
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void calcMagnitude_gpu(const oclMat &dx, const oclMat &dy, oclMat &mag, int rows, int cols, bool L2Grad);
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void calcMap_gpu(oclMat &dx, oclMat &dy, oclMat &mag, oclMat &map, int rows, int cols, float low_thresh, float high_thresh);
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void edgesHysteresisLocal_gpu(oclMat &map, oclMat &st1, void *counter, int rows, int cols);
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void edgesHysteresisGlobal_gpu(oclMat &map, oclMat &st1, oclMat &st2, void *counter, int rows, int cols);
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void getEdges_gpu(oclMat &map, oclMat &dst, int rows, int cols);
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}
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}
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}// cv::ocl
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namespace
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{
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void CannyCaller(CannyBuf &buf, oclMat &dst, float low_thresh, float high_thresh)
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{
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using namespace ::cv::ocl::canny;
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oclMat magBuf = buf.edgeBuf(Rect(0, 0, buf.edgeBuf.cols, buf.edgeBuf.rows / 2));
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oclMat mapBuf = buf.edgeBuf(Rect(0, buf.edgeBuf.rows / 2, buf.edgeBuf.cols, buf.edgeBuf.rows / 2));
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calcMap_gpu(buf.dx, buf.dy, magBuf, mapBuf, dst.rows, dst.cols, low_thresh, high_thresh);
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edgesHysteresisLocal_gpu(mapBuf, buf.trackBuf1, buf.counter, dst.rows, dst.cols);
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edgesHysteresisGlobal_gpu(mapBuf, buf.trackBuf1, buf.trackBuf2, buf.counter, dst.rows, dst.cols);
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getEdges_gpu(mapBuf, dst, dst.rows, dst.cols);
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}
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}
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void cv::ocl::Canny(const oclMat &src, oclMat &dst, double low_thresh, double high_thresh, int apperture_size, bool L2gradient)
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{
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CannyBuf buf(src.size(), apperture_size);
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Canny(src, buf, dst, low_thresh, high_thresh, apperture_size, L2gradient);
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}
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void cv::ocl::Canny(const oclMat &src, CannyBuf &buf, oclMat &dst, double low_thresh, double high_thresh, int apperture_size, bool L2gradient)
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{
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using namespace ::cv::ocl::canny;
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CV_Assert(src.type() == CV_8UC1);
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if( low_thresh > high_thresh )
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std::swap( low_thresh, high_thresh );
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dst.create(src.size(), CV_8U);
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dst.setTo(Scalar::all(0));
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buf.create(src.size(), apperture_size);
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buf.edgeBuf.setTo(Scalar::all(0));
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oclMat magBuf = buf.edgeBuf(Rect(0, 0, buf.edgeBuf.cols, buf.edgeBuf.rows / 2));
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if (apperture_size == 3)
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{
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calcSobelRowPass_gpu(src, buf.dx_buf, buf.dy_buf, src.rows, src.cols);
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calcMagnitude_gpu(buf.dx_buf, buf.dy_buf, buf.dx, buf.dy, magBuf, src.rows, src.cols, L2gradient);
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}
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else
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{
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buf.filterDX->apply(src, buf.dx);
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buf.filterDY->apply(src, buf.dy);
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calcMagnitude_gpu(buf.dx, buf.dy, magBuf, src.rows, src.cols, L2gradient);
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}
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CannyCaller(buf, dst, static_cast<float>(low_thresh), static_cast<float>(high_thresh));
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}
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void cv::ocl::Canny(const oclMat &dx, const oclMat &dy, oclMat &dst, double low_thresh, double high_thresh, bool L2gradient)
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{
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CannyBuf buf(dx, dy);
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Canny(dx, dy, buf, dst, low_thresh, high_thresh, L2gradient);
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}
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void cv::ocl::Canny(const oclMat &dx, const oclMat &dy, CannyBuf &buf, oclMat &dst, double low_thresh, double high_thresh, bool L2gradient)
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{
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using namespace ::cv::ocl::canny;
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CV_Assert(dx.type() == CV_32SC1 && dy.type() == CV_32SC1 && dx.size() == dy.size());
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if( low_thresh > high_thresh )
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std::swap( low_thresh, high_thresh);
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dst.create(dx.size(), CV_8U);
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dst.setTo(Scalar::all(0));
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buf.dx = dx;
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buf.dy = dy;
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buf.create(dx.size(), -1);
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buf.edgeBuf.setTo(Scalar::all(0));
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oclMat magBuf = buf.edgeBuf(Rect(0, 0, buf.edgeBuf.cols, buf.edgeBuf.rows / 2));
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calcMagnitude_gpu(buf.dx, buf.dy, magBuf, dx.rows, dx.cols, L2gradient);
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CannyCaller(buf, dst, static_cast<float>(low_thresh), static_cast<float>(high_thresh));
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}
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void canny::calcSobelRowPass_gpu(const oclMat &src, oclMat &dx_buf, oclMat &dy_buf, int rows, int cols)
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{
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Context *clCxt = src.clCxt;
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string kernelName = "calcSobelRowPass";
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vector< pair<size_t, const void *> > args;
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args.push_back( make_pair( sizeof(cl_mem), (void *)&src.data));
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args.push_back( make_pair( sizeof(cl_mem), (void *)&dx_buf.data));
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args.push_back( make_pair( sizeof(cl_mem), (void *)&dy_buf.data));
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args.push_back( make_pair( sizeof(cl_int), (void *)&rows));
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args.push_back( make_pair( sizeof(cl_int), (void *)&cols));
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args.push_back( make_pair( sizeof(cl_int), (void *)&src.step));
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args.push_back( make_pair( sizeof(cl_int), (void *)&src.offset));
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args.push_back( make_pair( sizeof(cl_int), (void *)&dx_buf.step));
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args.push_back( make_pair( sizeof(cl_int), (void *)&dx_buf.offset));
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args.push_back( make_pair( sizeof(cl_int), (void *)&dy_buf.step));
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args.push_back( make_pair( sizeof(cl_int), (void *)&dy_buf.offset));
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size_t globalThreads[3] = {cols, rows, 1};
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size_t localThreads[3] = {16, 16, 1};
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openCLExecuteKernel(clCxt, &imgproc_canny, kernelName, globalThreads, localThreads, args, -1, -1);
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}
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void canny::calcMagnitude_gpu(const oclMat &dx_buf, const oclMat &dy_buf, oclMat &dx, oclMat &dy, oclMat &mag, int rows, int cols, bool L2Grad)
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{
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Context *clCxt = dx_buf.clCxt;
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string kernelName = "calcMagnitude_buf";
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vector< pair<size_t, const void *> > args;
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args.push_back( make_pair( sizeof(cl_mem), (void *)&dx_buf.data));
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args.push_back( make_pair( sizeof(cl_mem), (void *)&dy_buf.data));
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args.push_back( make_pair( sizeof(cl_mem), (void *)&dx.data));
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args.push_back( make_pair( sizeof(cl_mem), (void *)&dy.data));
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args.push_back( make_pair( sizeof(cl_mem), (void *)&mag.data));
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args.push_back( make_pair( sizeof(cl_int), (void *)&rows));
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args.push_back( make_pair( sizeof(cl_int), (void *)&cols));
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args.push_back( make_pair( sizeof(cl_int), (void *)&dx_buf.step));
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args.push_back( make_pair( sizeof(cl_int), (void *)&dx_buf.offset));
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args.push_back( make_pair( sizeof(cl_int), (void *)&dy_buf.step));
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args.push_back( make_pair( sizeof(cl_int), (void *)&dy_buf.offset));
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args.push_back( make_pair( sizeof(cl_int), (void *)&dx.step));
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args.push_back( make_pair( sizeof(cl_int), (void *)&dx.offset));
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args.push_back( make_pair( sizeof(cl_int), (void *)&dy.step));
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args.push_back( make_pair( sizeof(cl_int), (void *)&dy.offset));
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args.push_back( make_pair( sizeof(cl_int), (void *)&mag.step));
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args.push_back( make_pair( sizeof(cl_int), (void *)&mag.offset));
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size_t globalThreads[3] = {cols, rows, 1};
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size_t localThreads[3] = {16, 16, 1};
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const char * build_options = L2Grad ? "-D L2GRAD":"";
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openCLExecuteKernel(clCxt, &imgproc_canny, kernelName, globalThreads, localThreads, args, -1, -1, build_options);
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}
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void canny::calcMagnitude_gpu(const oclMat &dx, const oclMat &dy, oclMat &mag, int rows, int cols, bool L2Grad)
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{
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Context *clCxt = dx.clCxt;
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string kernelName = "calcMagnitude";
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vector< pair<size_t, const void *> > args;
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args.push_back( make_pair( sizeof(cl_mem), (void *)&dx.data));
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args.push_back( make_pair( sizeof(cl_mem), (void *)&dy.data));
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args.push_back( make_pair( sizeof(cl_mem), (void *)&mag.data));
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args.push_back( make_pair( sizeof(cl_int), (void *)&rows));
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args.push_back( make_pair( sizeof(cl_int), (void *)&cols));
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args.push_back( make_pair( sizeof(cl_int), (void *)&dx.step));
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args.push_back( make_pair( sizeof(cl_int), (void *)&dx.offset));
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args.push_back( make_pair( sizeof(cl_int), (void *)&dy.step));
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args.push_back( make_pair( sizeof(cl_int), (void *)&dy.offset));
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args.push_back( make_pair( sizeof(cl_int), (void *)&mag.step));
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args.push_back( make_pair( sizeof(cl_int), (void *)&mag.offset));
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size_t globalThreads[3] = {cols, rows, 1};
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size_t localThreads[3] = {16, 16, 1};
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const char * build_options = L2Grad ? "-D L2GRAD":"";
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openCLExecuteKernel(clCxt, &imgproc_canny, kernelName, globalThreads, localThreads, args, -1, -1, build_options);
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}
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void canny::calcMap_gpu(oclMat &dx, oclMat &dy, oclMat &mag, oclMat &map, int rows, int cols, float low_thresh, float high_thresh)
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{
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Context *clCxt = dx.clCxt;
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vector< pair<size_t, const void *> > args;
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args.push_back( make_pair( sizeof(cl_mem), (void *)&dx.data));
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args.push_back( make_pair( sizeof(cl_mem), (void *)&dy.data));
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args.push_back( make_pair( sizeof(cl_mem), (void *)&mag.data));
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args.push_back( make_pair( sizeof(cl_mem), (void *)&map.data));
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args.push_back( make_pair( sizeof(cl_int), (void *)&rows));
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args.push_back( make_pair( sizeof(cl_int), (void *)&cols));
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args.push_back( make_pair( sizeof(cl_float), (void *)&low_thresh));
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args.push_back( make_pair( sizeof(cl_float), (void *)&high_thresh));
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args.push_back( make_pair( sizeof(cl_int), (void *)&dx.step));
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args.push_back( make_pair( sizeof(cl_int), (void *)&dx.offset));
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args.push_back( make_pair( sizeof(cl_int), (void *)&dy.step));
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args.push_back( make_pair( sizeof(cl_int), (void *)&dy.offset));
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args.push_back( make_pair( sizeof(cl_int), (void *)&mag.step));
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args.push_back( make_pair( sizeof(cl_int), (void *)&mag.offset));
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args.push_back( make_pair( sizeof(cl_int), (void *)&map.step));
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args.push_back( make_pair( sizeof(cl_int), (void *)&map.offset));
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size_t globalThreads[3] = {cols, rows, 1};
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string kernelName = "calcMap";
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size_t localThreads[3] = {16, 16, 1};
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openCLExecuteKernel(clCxt, &imgproc_canny, kernelName, globalThreads, localThreads, args, -1, -1);
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}
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void canny::edgesHysteresisLocal_gpu(oclMat &map, oclMat &st1, void *counter, int rows, int cols)
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{
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Context *clCxt = map.clCxt;
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string kernelName = "edgesHysteresisLocal";
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vector< pair<size_t, const void *> > args;
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args.push_back( make_pair( sizeof(cl_mem), (void *)&map.data));
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args.push_back( make_pair( sizeof(cl_mem), (void *)&st1.data));
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args.push_back( make_pair( sizeof(cl_mem), (void *)&counter));
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args.push_back( make_pair( sizeof(cl_int), (void *)&rows));
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args.push_back( make_pair( sizeof(cl_int), (void *)&cols));
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args.push_back( make_pair( sizeof(cl_int), (void *)&map.step));
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args.push_back( make_pair( sizeof(cl_int), (void *)&map.offset));
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size_t globalThreads[3] = {cols, rows, 1};
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size_t localThreads[3] = {16, 16, 1};
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openCLExecuteKernel(clCxt, &imgproc_canny, kernelName, globalThreads, localThreads, args, -1, -1);
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}
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void canny::edgesHysteresisGlobal_gpu(oclMat &map, oclMat &st1, oclMat &st2, void *counter, int rows, int cols)
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{
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unsigned int count;
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openCLSafeCall(clEnqueueReadBuffer(*(cl_command_queue*)getoclCommandQueue(), (cl_mem)counter, 1, 0, sizeof(float), &count, 0, NULL, NULL));
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Context *clCxt = map.clCxt;
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string kernelName = "edgesHysteresisGlobal";
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vector< pair<size_t, const void *> > args;
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size_t localThreads[3] = {128, 1, 1};
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#define DIVUP(a, b) ((a)+(b)-1)/(b)
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int count_i[1] = {0};
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while(count > 0)
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{
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openCLSafeCall(clEnqueueWriteBuffer(*(cl_command_queue*)getoclCommandQueue(), (cl_mem)counter, 1, 0, sizeof(int), &count_i, 0, NULL, NULL));
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args.clear();
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size_t globalThreads[3] = {std::min(count, 65535u) * 128, DIVUP(count, 65535), 1};
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args.push_back( make_pair( sizeof(cl_mem), (void *)&map.data));
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args.push_back( make_pair( sizeof(cl_mem), (void *)&st1.data));
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args.push_back( make_pair( sizeof(cl_mem), (void *)&st2.data));
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args.push_back( make_pair( sizeof(cl_mem), (void *)&counter));
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args.push_back( make_pair( sizeof(cl_int), (void *)&rows));
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args.push_back( make_pair( sizeof(cl_int), (void *)&cols));
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args.push_back( make_pair( sizeof(cl_int), (void *)&count));
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args.push_back( make_pair( sizeof(cl_int), (void *)&map.step));
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args.push_back( make_pair( sizeof(cl_int), (void *)&map.offset));
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openCLExecuteKernel(clCxt, &imgproc_canny, kernelName, globalThreads, localThreads, args, -1, -1);
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openCLSafeCall(clEnqueueReadBuffer(*(cl_command_queue*)getoclCommandQueue(), (cl_mem)counter, 1, 0, sizeof(int), &count, 0, NULL, NULL));
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std::swap(st1, st2);
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}
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#undef DIVUP
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}
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void canny::getEdges_gpu(oclMat &map, oclMat &dst, int rows, int cols)
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{
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Context *clCxt = map.clCxt;
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string kernelName = "getEdges";
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vector< pair<size_t, const void *> > args;
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args.push_back( make_pair( sizeof(cl_mem), (void *)&map.data));
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args.push_back( make_pair( sizeof(cl_mem), (void *)&dst.data));
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args.push_back( make_pair( sizeof(cl_int), (void *)&rows));
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args.push_back( make_pair( sizeof(cl_int), (void *)&cols));
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args.push_back( make_pair( sizeof(cl_int), (void *)&map.step));
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args.push_back( make_pair( sizeof(cl_int), (void *)&map.offset));
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args.push_back( make_pair( sizeof(cl_int), (void *)&dst.step));
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args.push_back( make_pair( sizeof(cl_int), (void *)&dst.offset));
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size_t globalThreads[3] = {cols, rows, 1};
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size_t localThreads[3] = {16, 16, 1};
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openCLExecuteKernel(clCxt, &imgproc_canny, kernelName, globalThreads, localThreads, args, -1, -1);
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}
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