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c++ - 冲浪特征提取

转载 作者:太空宇宙 更新时间:2023-11-03 22:57:06 25 4
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目标:使用Surf descriptorsopencv 2.4.9 库匹配blob。

算法:基于以下链接:Steps


#include <stdio.h>
#include <iostream>
#include "opencv2/core/core.hpp"
#include "opencv2/features2d/features2d.hpp"
#include "opencv2/nonfree/features2d.hpp"
#include "opencv2/highgui/highgui.hpp"
#include "opencv2/nonfree/nonfree.hpp"

using namespace cv;

void readme();

/** @function main */
int main( int argc, char** argv )
{
if( argc != 3 )
{ readme(); return -1; }

Mat img_1 = imread( argv[1], CV_LOAD_IMAGE_GRAYSCALE );
Mat img_2 = imread( argv[2], CV_LOAD_IMAGE_GRAYSCALE );

if( !img_1.data || !img_2.data )
{ std::cout<< " --(!) Error reading images " << std::endl; return -1; }

//-- Step 1: Detect the keypoints using SURF Detector
int minHessian = 400;

SurfFeatureDetector detector( minHessian );

std::vector<KeyPoint> keypoints_1, keypoints_2;

detector.detect( img_1, keypoints_1 );
detector.detect( img_2, keypoints_2 );

//-- Draw keypoints
Mat img_keypoints_1; Mat img_keypoints_2;

drawKeypoints( img_1, keypoints_1, img_keypoints_1, Scalar::all(-1), DrawMatchesFlags::DEFAULT );
drawKeypoints( img_2, keypoints_2, img_keypoints_2, Scalar::all(-1), DrawMatchesFlags::DEFAULT );

//-- Show detected (drawn) keypoints
imshow("Keypoints 1", img_keypoints_1 );
imshow("Keypoints 2", img_keypoints_2 );

waitKey(0);

return 0;
}

/** @function readme */
void readme()
{ std::cout << " Usage: ./SURF_detector <img1> <img2>" << std::endl; }

关键点检测结果:在下图中,关键点的数量非常多,重要的并不多。如何选择最能描述 blob 的最佳关键点子集。有没有比冲浪更好的方法?这些 Blob 是二进制的 enter image description here

最佳答案

较高的 minHessian 会产生较少的关键点。

很难从图像中分辨出您要匹配的两个输入图像是什么以及您的目标到底是什么(将“Vos..”的“Vo”与“Votre...”的匹配)是成功还是失败?

关于c++ - 冲浪特征提取,我们在Stack Overflow上找到一个类似的问题: https://stackoverflow.com/questions/27252350/

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