vendor: OpenCV 5.0.0 snapshot at 755e50675d97db9b7d449d8bd6b09888646f6c6e
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// This file is part of OpenCV project.
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// It is subject to the license terms in the LICENSE file found in the top-level directory
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// of this distribution and at http://opencv.org/license.html.
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#include "test_precomp.hpp"
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namespace opencv_test { namespace {
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TEST(ximgproc_fourierdescriptors,test_FD_AND_FIT)
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{
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Mat fd;
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vector<Point2f> ctr(16);
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float Rx = 100, Ry = 100;
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Point2f g(0, 0);
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float angleOri = 0;
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for (int i = 0; i < static_cast<int>(ctr.size()); i++)
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{
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float theta = static_cast<float>(2 * CV_PI / static_cast<int>(ctr.size()) * i + angleOri);
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ctr[i] = Point2f(Rx * cos(theta) + g.x, Ry * sin(theta) + g.y);
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}
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ximgproc::fourierDescriptor(ctr, fd);
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CV_Assert(cv::norm(fd.at<Vec2f>(0, 0)) < ctr.size() * FLT_EPSILON && cv::norm(fd.at<Vec2f>(0, 1) - Vec2f(Rx, 0)) < ctr.size() * FLT_EPSILON);
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Rx = 100, Ry = 50;
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g = Point2f(50, 20);
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for (int i = 0; i < static_cast<int>(ctr.size()); i++)
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{
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float theta = static_cast<float>(2 * CV_PI / static_cast<int>(ctr.size()) * i + angleOri);
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ctr[i] = Point2f(Rx * cos(theta) + g.x, Ry * sin(theta) + g.y);
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}
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ximgproc::fourierDescriptor(ctr, fd);
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CV_Assert(cv::norm(fd.at<Vec2f>(0, 0) - Vec2f(g)) < 1 &&
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fabs(fd.at<Vec2f>(0, 1)[0] + fd.at<Vec2f>(0, static_cast<int>(ctr.size()) - 1)[0] - Rx) < 1 &&
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fabs(fd.at<Vec2f>(0, 1)[0] - fd.at<Vec2f>(0, static_cast<int>(ctr.size()) - 1)[0] - Ry) < 1);
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Rx = 70, Ry = 100;
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g = Point2f(30, 100);
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angleOri = static_cast<float>(CV_PI / 4);
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for (int i = 0; i < static_cast<int>(ctr.size()); i++)
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{
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float theta = static_cast<float>(2 * CV_PI / static_cast<int>(ctr.size()) * i + CV_PI / 4);
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ctr[i] = Point2f(Rx * cos(theta) + g.x, Ry * sin(theta) + g.y);
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}
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ximgproc::fourierDescriptor(ctr, fd);
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CV_Assert(cv::norm(fd.at<Vec2f>(0, 0) - Vec2f(g)) < 1);
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CV_Assert(cv::norm(Vec2f((Rx + Ry)*cos(angleOri) / 2, (Rx + Ry)*sin(angleOri) / 2) - fd.at<Vec2f>(0, 1)) < 1);
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CV_Assert(cv::norm(Vec2f((Rx - Ry)*cos(angleOri) / 2, -(Rx - Ry)*sin(angleOri) / 2) - fd.at<Vec2f>(0, static_cast<int>(ctr.size()) - 1)) < 1);
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RNG rAlea;
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g.x = 0; g.y = 0;
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ctr.resize(256);
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for (int i = 0; i < static_cast<int>(ctr.size()); i++)
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{
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ctr[i] = Point2f(rAlea.uniform(0.0F, 1.0F), rAlea.uniform(0.0F, 1.0F));
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g += ctr[i];
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}
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g.x = g.x / ctr.size();
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g.y = g.y / ctr.size();
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double rotAngle = 35;
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double s = 0.1515;
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Mat r = getRotationMatrix2D(g, rotAngle, 0.1515);
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vector<Point2f> unknownCtr;
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vector<Point2f> ctrShift;
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int valShift = 170;
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for (int i = 0; i < static_cast<int>(ctr.size()); i++)
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ctrShift.push_back(ctr[(i + valShift) % ctr.size()]);
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cv::transform(ctrShift, unknownCtr, r);
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ximgproc::ContourFitting fit;
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fit.setFDSize(16);
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Mat t;
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double dist;
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fit.estimateTransformation(unknownCtr, ctr, t, &dist, false);
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CV_Assert(fabs(t.at<double>(0, 0)*ctr.size() + valShift) < 10 || fabs((1 - t.at<double>(0, 0))*ctr.size() - valShift) < 10);
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CV_Assert(fabs(t.at<double>(0, 1) - rotAngle / 180.*CV_PI) < 0.1);
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CV_Assert(fabs(t.at<double>(0, 2) - 1 / s) < 0.1);
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ctr.resize(4);
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ctr[0] = Point2f(0, 0);
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ctr[1] = Point2f(16, 0);
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ctr[2] = Point2f(16, 16);
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ctr[3] = Point2f(0, 16);
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double squareArea = contourArea(ctr), lengthSquare = arcLength(ctr, true);
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Mat ctrs;
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ximgproc::contourSampling(ctr, ctrs, 64);
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CV_Assert(fabs(squareArea - contourArea(ctrs)) < FLT_EPSILON);
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CV_Assert(fabs(lengthSquare - arcLength(ctrs, true)) < FLT_EPSILON);
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}
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}} // namespace
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