nms: part 1
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@ -1552,12 +1552,14 @@ public:
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enum {PEDESTRIAN = 0};
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};
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enum { NO_REJECT = 1, DOLLAR = 2, /*PASCAL = 4,*/ DEFAULT = NO_REJECT};
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// An empty cascade will be created.
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// Param minScale is a minimum scale relative to the original size of the image on which cascade will be applyed.
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// Param minScale is a maximum scale relative to the original size of the image on which cascade will be applyed.
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// Param scales is a number of scales from minScale to maxScale.
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// Param rejfactor is used for NMS.
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SCascade(const double minScale = 0.4, const double maxScale = 5., const int scales = 55, const int rejfactor = 1);
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SCascade(const double minScale = 0.4, const double maxScale = 5., const int scales = 55, const int rejCriteria = 1);
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virtual ~SCascade();
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@ -1595,7 +1597,7 @@ private:
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double maxScale;
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int scales;
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int rejfactor;
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int rejCriteria;
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};
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////////////////////////////////// SURF //////////////////////////////////////////
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@ -41,9 +41,10 @@
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//M*/
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#include <opencv2/gpu/device/common.hpp>
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#include <icf.hpp>
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#include <stdio.h>
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#include <float.h>
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#include <stdio.h>
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namespace cv { namespace gpu { namespace device {
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namespace icf {
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@ -79,6 +80,70 @@ namespace icf {
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}
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}
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__device__ __forceinline__ float overlapArea(const Detection &a, const Detection &b)
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{
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int w = ::min(a.x + a.w, b.x + b.w) - ::max(a.x, b.x);
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int h = ::min(a.y + a.h, b.y + b.h) - ::max(a.y, b.y);
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return (w < 0 || h < 0)? 0.f : (float)(w * h);
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}
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__global__ void overlap(const uint* n, const Detection* detections, uchar* overlaps)
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{
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const int idx = threadIdx.x;
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const int total = *n;
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for (int i = idx; i < total; i += 192)
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{
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const Detection& a = detections[i];
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bool excluded = false;
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for (int j = i + 1; j < total; ++j)
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{
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const Detection& b = detections[j];
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float ovl = overlapArea(a, b) / ::min(a.w * a.h, b.w * b.h);
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if (ovl > 0.65f)
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{
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int suppessed = (a.confidence > b.confidence)? j : i;
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overlaps[suppessed] = 1;
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excluded = excluded || (suppessed == i);
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}
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if (__all(excluded)) break;
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}
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}
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}
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__global__ void collect(const uint* n, const Detection* detections, uchar* overlaps)
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{
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const int idx = threadIdx.x;
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const int total = *n;
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for (int i = idx; i < total; i += 192)
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{
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if (!overlaps[i])
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{
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const Detection& det = detections[i];
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// printf("%d: %d %d %d %d %f\n", i, det.x, det.y, det.w, det.h, det.confidence );
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}
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}
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}
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void suppress(const PtrStepSzb& objects, PtrStepSzb overlaps, PtrStepSzi ndetections)
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{
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int block = 192;
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int grid = 1;
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overlap<<<grid, block>>>((uint*)ndetections.ptr(0), (Detection*)objects.ptr(0), (uchar*)overlaps.ptr(0));
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collect<<<grid, block>>>((uint*)ndetections.ptr(0), (Detection*)objects.ptr(0), (uchar*)overlaps.ptr(0));
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// if (!stream)
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{
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cudaSafeCall( cudaGetLastError());
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cudaSafeCall( cudaDeviceSynchronize());
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}
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}
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template<typename Policy>
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struct PrefixSum
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{
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@ -46,10 +46,10 @@ namespace cv { namespace gpu
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{
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CV_INIT_ALGORITHM(SCascade, "CascadeDetector.SCascade",
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obj.info()->addParam(obj, "minScale", obj.minScale);
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obj.info()->addParam(obj, "maxScale", obj.maxScale);
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obj.info()->addParam(obj, "scales", obj.scales);
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obj.info()->addParam(obj, "rejfactor", obj.rejfactor));
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obj.info()->addParam(obj, "minScale", obj.minScale);
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obj.info()->addParam(obj, "maxScale", obj.maxScale);
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obj.info()->addParam(obj, "scales", obj.scales);
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obj.info()->addParam(obj, "rejCriteria", obj.rejCriteria));
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bool initModule_gpu(void)
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{
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@ -85,6 +85,8 @@ namespace cv { namespace gpu { namespace device {
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namespace icf {
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void fillBins(cv::gpu::PtrStepSzb hogluv, const cv::gpu::PtrStepSzf& nangle,
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const int fw, const int fh, const int bins, cudaStream_t stream);
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void suppress(const PtrStepSzb& objects, PtrStepSzb overlaps, PtrStepSzi ndetections);
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}
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namespace imgproc {
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@ -309,6 +311,8 @@ struct cv::gpu::SCascade::Fields
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hogluv.create((fh / shr) * HOG_LUV_BINS + 1, fw / shr + 1, CV_32SC1);
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hogluv.setTo(cv::Scalar::all(0));
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overlaps.create(1, 5000, CV_8UC1);
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return true;
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}
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@ -437,7 +441,15 @@ private:
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}
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}
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#include <iostream>
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public:
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void suppress(GpuMat& ndetections, GpuMat& objects)
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{
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ensureSizeIsEnough(objects.rows, objects.cols, CV_8UC1, overlaps);
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overlaps.setTo(0);
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device::icf::suppress(objects, overlaps, ndetections);
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// std::cout << cv::Mat(overlaps) << std::endl;
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}
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// scales range
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float minScale;
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@ -469,6 +481,9 @@ public:
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// 161x121x10
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GpuMat hogluv;
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// used for area overlap computing during
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GpuMat overlaps;
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// Cascade from xml
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GpuMat octaves;
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GpuMat stages;
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@ -478,6 +493,8 @@ public:
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GpuMat sobelBuf;
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GpuMat collected;
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std::vector<device::icf::Octave> voctaves;
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DeviceInfo info;
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@ -494,7 +511,7 @@ public:
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};
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cv::gpu::SCascade::SCascade(const double mins, const double maxs, const int sc, const int rjf)
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: fields(0), minScale(mins), maxScale(maxs), scales(sc), rejfactor(rjf) {}
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: fields(0), minScale(mins), maxScale(maxs), scales(sc), rejCriteria(rjf) {}
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cv::gpu::SCascade::~SCascade() { delete fields; }
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@ -534,6 +551,9 @@ void cv::gpu::SCascade::detect(InputArray image, InputArray _rois, OutputArray _
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cudaStream_t stream = StreamAccessor::getStream(s);
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flds.detect(rois, tmp, objects, stream);
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// if (rejCriteria != NO_REJECT)
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flds.suppress(tmp, objects);
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}
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void cv::gpu::SCascade::genRoi(InputArray _roi, OutputArray _mask, Stream& stream) const
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