ORB(Oriented FAST and BRIEF) 特征是 SLAM 中?种很常?的特征,由于其?进制特性,使得它可以?常快速地提取与计算 [1]。下?,你将按照本题的指导,??书写 ORB 的提取、描述?的计算以及匹配的代码。代码框架参照computeORB.cpp ?件,图像见 1.png ?件和 2.png。
提?:
最后,请结合实验,回答下??个问题:
- 为什么说 ORB 是?种?进制特征?
- 为什么在匹配时使? 50 作为阈值,取更?或更?值会怎么样?
- 暴?匹配在你的机器上表现如何?你能想到什么减少计算量的匹配?法吗?
我直接把1.1,1.2,1.3的代码和结果放到一起
computeORB.cpp:
#include <opencv2/opencv.hpp>
#include <string>
using namespace std;
// global variables
string first_file = "../1.png";
string second_file = "../2.png";
const double pi = 3.1415926; // pi
// TODO implement this function
/**
* compute the angle for ORB descriptor
* @param [in] image input image
* @param [in|out] detected keypoints
*/
void computeAngle(const cv::Mat &image, vector<cv::KeyPoint> &keypoints);
// TODO implement this function
/**
* compute ORB descriptor
* @param [in] image the input image
* @param [in] keypoints detected keypoints
* @param [out] desc descriptor
*/
typedef vector<bool> DescType; // type of descriptor, 256 bools
void computeORBDesc(const cv::Mat &image, vector<cv::KeyPoint> &keypoints, vector<DescType> &desc);
// TODO implement this function
/**
* brute-force match two sets of descriptors
* @param desc1 the first descriptor
* @param desc2 the second descriptor
* @param matches matches of two images
*/
void bfMatch(const vector<DescType> &desc1, const vector<DescType> &desc2, vector<cv::DMatch> &matches);
int main(int argc, char **argv) {
// load image
cv::Mat first_image = cv::imread(first_file, 0); // load grayscale image
cv::Mat second_image = cv::imread(second_file, 0); // load grayscale image
// plot the image
cv::imshow("first image", first_image);
cv::imshow("second image", second_image);
cv::waitKey(0);
// detect FAST keypoints using threshold=40
vector<cv::KeyPoint> keypoints;
cv::FAST(first_image, keypoints, 40);
cout << "keypoints: " << keypoints.size() << endl;
// compute angle for each keypoint
computeAngle(first_image, keypoints);
// compute ORB descriptors
vector<DescType> descriptors;
computeORBDesc(first_image, keypoints, descriptors);
// plot the keypoints
cv::Mat image_show;
cv::drawKeypoints(first_image, keypoints, image_show, cv::Scalar::all(-1),
cv::DrawMatchesFlags::DRAW_RICH_KEYPOINTS);
cv::imshow("features", image_show);
cv::imwrite("feat1.png", image_show);
cv::waitKey(0);
// we can also match descriptors between images
// same for the second
vector<cv::KeyPoint> keypoints2;
cv::FAST(second_image, keypoints2, 40);
cout << "keypoints: " << keypoints2.size() << endl;
// compute angle for each keypoint
computeAngle(second_image, keypoints2);
// compute ORB descriptors
vector<DescType> descriptors2;
computeORBDesc(second_image, keypoints2, descriptors2);
// find matches
vector<cv::DMatch> matches;
bfMatch(descriptors, descriptors2, matches);
cout << "matches: " << matches.size() << endl;
// plot the matches
cv::drawMatches(first_image, keypoints, second_image, keypoints2, matches, image_show);
cv::imshow("matches", image_show);
cv::imwrite("matches.png", image_show);
cv::waitKey(0);
cout << "done." << endl;
return 0;
}
// -------------------------------------------------------------------------------------------------- //
// compute the angle
void computeAngle(const cv::Mat &image, vector<cv::KeyPoint> &keypoints) {
int half_patch_size = 8;
for (auto &kp : keypoints) {
// START YOUR CODE HERE (~7 lines)
//judge if keypoint is on edge
int x=cvRound(kp.pt.x);
int y=cvRound(kp.pt.y);
if( x-half_patch_size<0||x+half_patch_size>image.cols||
y-half_patch_size<0||y+half_patch_size>image.rows)
continue; //结束当前循环,进入到下一次循环
double m01=0,m10=0; //定义变量的时候,要初始化,不然这里第一张图片所有kp.angle=0
for(int i=-half_patch_size;i<half_patch_size;i++){ //-8<i<8,-8<j<8
for(int j=-half_patch_size;j<half_patch_size;j++){
m01 += j*image.at<uchar>(y+j,x+i); //真实坐标(j,i)+(y,x)
m10 += i*image.at<uchar>(y+j,x+i); //获得单个像素值image.at<uchar>(y,x)
}
}
kp.angle = atan(m01/m10)*180/pi;
cout<<"m10 = "<<m01<<" "<<"m01 = "<<m10<<" "<<"kp.angle = "<<kp.angle<<endl;
// END YOUR CODE HERE
}
return;
}
// -------------------------------------------------------------------------------------------------- //
// ORB pattern
int ORB_pattern[256 * 4] = {
8, -3, 9, 5/*mean (0), correlation (0)*/,
4, 2, 7, -12/*mean (1.12461e-05), correlation (0.0437584)*/,
-11, 9, -8, 2/*mean (3.37382e-05), correlation (0.0617409)*/,
7, -12, 12, -13/*mean (5.62303e-05), correlation (0.0636977)*/,
2, -13, 2, 12/*mean (0.000134953), correlation (0.085099)*/,
1, -7, 1, 6/*mean (0.000528565), correlation (0.0857175)*/,
-2, -10, -2, -4/*mean (0.0188821), correlation (0.0985774)*/,
-13, -13, -11, -8/*mean (0.0363135), correlation (0.0899616)*/,
-13, -3, -12, -9/*mean (0.121806), correlation (0.099849)*/,
10, 4, 11, 9/*mean (0.122065), correlation (0.093285)*/,
-13, -8, -8, -9/*mean (0.162787), correlation (0.0942748)*/,
-11, 7, -9, 12/*mean (0.21561), correlation (0.0974438)*/,
7, 7, 12, 6/*mean (0.160583), correlation (0.130064)*/,
-4, -5, -3, 0/*mean (0.228171), correlation (0.132998)*/,
-13, 2, -12, -3/*mean (0.00997526), correlation (0.145926)*/,
-9, 0, -7, 5/*mean (0.198234), correlation (0.143636)*/,
12, -6, 12, -1/*mean (0.0676226), correlation (0.16689)*/,
-3, 6, -2, 12/*mean (0.166847), correlation (0.171682)*/,
-6, -13, -4, -8/*mean (0.101215), correlation (0.179716)*/,
11, -13, 12, -8/*mean (0.200641), correlation (0.192279)*/,
4, 7, 5, 1/*mean (0.205106), correlation (0.186848)*/,
5, -3, 10, -3/*mean (0.234908), correlation (0.192319)*/,
3, -7, 6, 12/*mean (0.0709964), correlation (0.210872)*/,
-8, -7, -6, -2/*mean (0.0939834), correlation (0.212589)*/,
-2, 11, -1, -10/*mean (0.127778), correlation (0.20866)*/,
-13, 12, -8, 10/*mean (0.14783), correlation (0.206356)*/,
-7, 3, -5, -3/*mean (0.182141), correlation (0.198942)*/,
-4, 2, -3, 7/*mean (0.188237), correlation (0.21384)*/,
-10, -12, -6, 11/*mean (0.14865), correlation (0.23571)*/,
5, -12, 6, -7/*mean (0.222312), correlation (0.23324)*/,
5, -6, 7, -1/*mean (0.229082), correlation (0.23389)*/,
1, 0, 4, -5/*mean (0.241577), correlation (0.215286)*/,
9, 11, 11, -13/*mean (0.00338507), correlation (0.251373)*/,
4, 7, 4, 12/*mean (0.131005), correlation (0.257622)*/,
2, -1, 4, 4/*mean (0.152755), correlation (0.255205)*/,
-4, -12, -2, 7/*mean (0.182771), correlation (0.244867)*/,
-8, -5, -7, -10/*mean (0.186898), correlation (0.23901)*/,
4, 11, 9, 12/*mean (0.226226), correlation (0.258255)*/,
0, -8, 1, -13/*mean (0.0897886), correlation (0.274827)*/,
-13, -2, -8, 2/*mean (0.148774), correlation (0.28065)*/,
-3, -2, -2, 3/*mean (0.153048), correlation (0.283063)*/,
-6, 9, -4, -9/*mean (0.169523), correlation (0.278248)*/,
8, 12, 10, 7/*mean (0.225337), correlation (0.282851)*/,
0, 9, 1, 3/*mean (0.226687), correlation (0.278734)*/,
7, -5, 11, -10/*mean (0.00693882), correlation (0.305161)*/,
-13, -6, -11, 0/*mean (0.0227283), correlation (0.300181)*/,
10, 7, 12, 1/*mean (0.125517), correlation (0.31089)*/,
-6, -3, -6, 12/*mean (0.131748), correlation (0.312779)*/,
10, -9, 12, -4/*mean (0.144827), correlation (0.292797)*/,
-13, 8, -8, -12/*mean (0.149202), correlation (0.308918)*/,
-13, 0, -8, -4/*mean (0.160909), correlation (0.310013)*/,
3, 3, 7, 8/*mean (0.177755), correlation (0.309394)*/,
5, 7, 10, -7/*mean (0.212337), correlation (0.310315)*/,
-1, 7, 1, -12/*mean (0.214429), correlation (0.311933)*/,
3, -10, 5, 6/*mean (0.235807), correlation (0.313104)*/,
2, -4, 3, -10/*mean (0.00494827), correlation (0.344948)*/,
-13, 0, -13, 5/*mean (0.0549145), correlation (0.344675)*/,
-13, -7, -12, 12/*mean (0.103385), correlation (0.342715)*/,
-13, 3, -11, 8/*mean (0.134222), correlation (0.322922)*/,
-7, 12, -4, 7/*mean (0.153284), correlation (0.337061)*/,
6, -10, 12, 8/*mean (0.154881), correlation (0.329257)*/,
-9, -1, -7, -6/*mean (0.200967), correlation (0.33312)*/,
-2, -5, 0, 12/*mean (0.201518), correlation (0.340635)*/,
-12, 5, -7, 5/*mean (0.207805), correlation (0.335631)*/,
3, -10, 8, -13/*mean (0.224438), correlation (0.34504)*/,
-7, -7, -4, 5/*mean (0.239361), correlation (0.338053)*/,
-3, -2, -1, -7/*mean (0.240744), correlation (0.344322)*/,
2, 9, 5, -11/*mean (0.242949), correlation (0.34145)*/,
-11, -13, -5, -13/*mean (0.244028), correlation (0.336861)*/,
-1, 6, 0, -1/*mean (0.247571), correlation (0.343684)*/,
5, -3, 5, 2/*mean (0.000697256), correlation (0.357265)*/,
-4, -13, -4, 12/*mean (0.00213675), correlation (0.373827)*/,
-9, -6, -9, 6/*mean (0.0126856), correlation (0.373938)*/,
-12, -10, -8, -4/*mean (0.0152497), correlation (0.364237)*/,
10, 2, 12, -3/*mean (0.0299933), correlation (0.345292)*/,
7, 12, 12, 12/*mean (0.0307242), correlation (0.366299)*/,
-7, -13, -6, 5/*mean (0.0534975), correlation (0.368357)*/,
-4, 9, -3, 4/*mean (0.099865), correlation (0.372276)*/,
7, -1, 12, 2/*mean (0.117083), correlation (0.364529)*/,
-7, 6, -5, 1/*mean (0.126125), correlation (0.369606)*/,
-13, 11, -12, 5/*mean (0.130364), correlation (0.358502)*/,
-3, 7, -2, -6/*mean (0.131691), correlation (0.375531)*/,
7, -8, 12, -7/*mean (0.160166), correlation (0.379508)*/,
-13, -7, -11, -12/*mean (0.167848), correlation (0.353343)*/,
1, -3, 12, 12/*mean (0.183378), correlation (0.371916)*/,
2, -6, 3, 0/*mean (0.228711), correlation (0.371761)*/,
-4, 3, -2, -13/*mean (0.247211), correlation (0.364063)*/,
-1, -13, 1, 9/*mean (0.249325), correlation (0.378139)*/,
7, 1, 8, -6/*mean (0.000652272), correlation (0.411682)*/,
1, -1, 3, 12/*mean (0.00248538), correlation (0.392988)*/,
9, 1, 12, 6/*mean (0.0206815), correlation (0.386106)*/,
-1, -9, -1, 3/*mean (0.0364485), correlation (0.410752)*/,
-13, -13, -10, 5/*mean (0.0376068), correlation (0.398374)*/,
7, 7, 10, 12/*mean (0.0424202), correlation (0.405663)*/,
12, -5, 12, 9/*mean (0.0942645), correlation (0.410422)*/,
6, 3, 7, 11/*mean (0.1074), correlation (0.413224)*/,
5, -13, 6, 10/*mean (0.109256), correlation (0.408646)*/,
2, -12, 2, 3/*mean (0.131691), correlation (0.416076)*/,
3, 8, 4, -6/*mean (0.165081), correlation (0.417569)*/,
2, 6, 12, -13/*mean (0.171874), correlation (0.408471)*/,
9, -12, 10, 3/*mean (0.175146), correlation (0.41296)*/,
-8, 4, -7, 9/*mean (0.183682), correlation (0.402956)*/,
-11, 12, -4, -6/*mean (0.184672), correlation (0.416125)*/,
1, 12, 2, -8/*mean (0.191487), correlation (0.386696)*/,
6, -9, 7, -4/*mean (0.192668), correlation (0.394771)*/,
2, 3, 3, -2/*mean (0.200157), correlation (0.408303)*/,
6, 3, 11, 0/*mean (0.204588), correlation (0.411762)*/,
3, -3, 8, -8/*mean (0.205904), correlation (0.416294)*/,
7, 8, 9, 3/*mean (0.213237), correlation (0.409306)*/,
-11, -5, -6, -4/*mean (0.243444), correlation (0.395069)*/,
-10, 11, -5, 10/*mean (0.247672), correlation (0.413392)*/,
-5, -8, -3, 12/*mean (0.24774), correlation (0.411416)*/,
-10, 5, -9, 0/*mean (0.00213675), correlation (0.454003)*/,
8, -1, 12, -6/*mean (0.0293635), correlation (0.455368)*/,
4, -6, 6, -11/*mean (0.0404971), correlation (0.457393)*/,
-10, 12, -8, 7/*mean (0.0481107), correlation (0.448364)*/,
4, -2, 6, 7/*mean (0.050641), correlation (0.455019)*/,
-2, 0, -2, 12/*mean (0.0525978), correlation (0.44338)*/,
-5, -8, -5, 2/*mean (0.0629667), correlation (0.457096)*/,
7, -6, 10, 12/*mean (0.0653846), correlation (0.445623)*/,
-9, -13, -8, -8/*mean (0.0858749), correlation (0.449789)*/,
-5, -13, -5, -2/*mean (0.122402), correlation (0.450201)*/,
8, -8, 9, -13/*mean (0.125416), correlation (0.453224)*/,
-9, -11, -9, 0/*mean (0.130128), correlation (0.458724)*/,
1, -8, 1, -2/*mean (0.132467), correlation (0.440133)*/,
7, -4, 9, 1/*mean (0.132692), correlation (0.454)*/,
-2, 1, -1, -4/*mean (0.135695), correlation (0.455739)*/,
11, -6, 12, -11/*mean (0.142904), correlation (0.446114)*/,
-12, -9, -6, 4/*mean (0.146165), correlation (0.451473)*/,
3, 7, 7, 12/*mean (0.147627), correlation (0.456643)*/,
5, 5, 10, 8/*mean (0.152901), correlation (0.455036)*/,
0, -4, 2, 8/*mean (0.167083), correlation (0.459315)*/,
-9, 12, -5, -13/*mean (0.173234), correlation (0.454706)*/,
0, 7, 2, 12/*mean (0.18312), correlation (0.433855)*/,
-1, 2, 1, 7/*mean (0.185504), correlation (0.443838)*/,
5, 11, 7, -9/*mean (0.185706), correlation (0.451123)*/,
3, 5, 6, -8/*mean (0.188968), correlation (0.455808)*/,
-13, -4, -8, 9/*mean (0.191667), correlation (0.459128)*/,
-5, 9, -3, -3/*mean (0.193196), correlation (0.458364)*/,
-4, -7, -3, -12/*mean (0.196536), correlation (0.455782)*/,
6, 5, 8, 0/*mean (0.1972), correlation (0.450481)*/,
-7, 6, -6, 12/*mean (0.199438), correlation (0.458156)*/,
-13, 6, -5, -2/*mean (0.211224), correlation (0.449548)*/,
1, -10, 3, 10/*mean (0.211718), correlation (0.440606)*/,
4, 1, 8, -4/*mean (0.213034), correlation (0.443177)*/,
-2, -2, 2, -13/*mean (0.234334), correlation (0.455304)*/,
2, -12, 12, 12/*mean (0.235684), correlation (0.443436)*/,
-2, -13, 0, -6/*mean (0.237674), correlation (0.452525)*/,
4, 1, 9, 3/*mean (0.23962), correlation (0.444824)*/,
-6, -10, -3, -5/*mean (0.248459), correlation (0.439621)*/,
-3, -13, -1, 1/*mean (0.249505), correlation (0.456666)*/,
7, 5, 12, -11/*mean (0.00119208), correlation (0.495466)*/,
4, -2, 5, -7/*mean (0.00372245), correlation (0.484214)*/,
-13, 9, -9, -5/*mean (0.00741116), correlation (0.499854)*/,
7, 1, 8, 6/*mean (0.0208952), correlation (0.499773)*/,
7, -8, 7, 6/*mean (0.0220085), correlation (0.501609)*/,
-7, -4, -7, 1/*mean (0.0233806), correlation (0.496568)*/,
-8, 11, -7, -8/*mean (0.0236505), correlation (0.489719)*/,
-13, 6, -12, -8/*mean (0.0268781), correlation (0.503487)*/,
2, 4, 3, 9/*mean (0.0323324), correlation (0.501938)*/,
10, -5, 12, 3/*mean (0.0399235), correlation (0.494029)*/,
-6, -5, -6, 7/*mean (0.0420153), correlation (0.486579)*/,
8, -3, 9, -8/*mean (0.0548021), correlation (0.484237)*/,
2, -12, 2, 8/*mean (0.0616622), correlation (0.496642)*/,
-11, -2, -10, 3/*mean (0.0627755), correlation (0.498563)*/,
-12, -13, -7, -9/*mean (0.0829622), correlation (0.495491)*/,
-11, 0, -10, -5/*mean (0.0843342), correlation (0.487146)*/,
5, -3, 11, 8/*mean (0.0929937), correlation (0.502315)*/,
-2, -13, -1, 12/*mean (0.113327), correlation (0.48941)*/,
-1, -8, 0, 9/*mean (0.132119), correlation (0.467268)*/,
-13, -11, -12, -5/*mean (0.136269), correlation (0.498771)*/,
-10, -2, -10, 11/*mean (0.142173), correlation (0.498714)*/,
-3, 9, -2, -13/*mean (0.144141), correlation (0.491973)*/,
2, -3, 3, 2/*mean (0.14892), correlation (0.500782)*/,
-9, -13, -4, 0/*mean (0.150371), correlation (0.498211)*/,
-4, 6, -3, -10/*mean (0.152159), correlation (0.495547)*/,
-4, 12, -2, -7/*mean (0.156152), correlation (0.496925)*/,
-6, -11, -4, 9/*mean (0.15749), correlation (0.499222)*/,
6, -3, 6, 11/*mean (0.159211), correlation (0.503821)*/,
-13, 11, -5, 5/*mean (0.162427), correlation (0.501907)*/,
11, 11, 12, 6/*mean (0.16652), correlation (0.497632)*/,
7, -5, 12, -2/*mean (0.169141), correlation (0.484474)*/,
-1, 12, 0, 7/*mean (0.169456), correlation (0.495339)*/,
-4, -8, -3, -2/*mean (0.171457), correlation (0.487251)*/,
-7, 1, -6, 7/*mean (0.175), correlation (0.500024)*/,
-13, -12, -8, -13/*mean (0.175866), correlation (0.497523)*/,
-7, -2, -6, -8/*mean (0.178273), correlation (0.501854)*/,
-8, 5, -6, -9/*mean (0.181107), correlation (0.494888)*/,
-5, -1, -4, 5/*mean (0.190227), correlation (0.482557)*/,
-13, 7, -8, 10/*mean (0.196739), correlation (0.496503)*/,
1, 5, 5, -13/*mean (0.19973), correlation (0.499759)*/,
1, 0, 10, -13/*mean (0.204465), correlation (0.49873)*/,
9, 12, 10, -1/*mean (0.209334), correlation (0.49063)*/,
5, -8, 10, -9/*mean (0.211134), correlation (0.503011)*/,
-1, 11, 1, -13/*mean (0.212), correlation (0.499414)*/,
-9, -3, -6, 2/*mean (0.212168), correlation (0.480739)*/,
-1, -10, 1, 12/*mean (0.212731), correlation (0.502523)*/,
-13, 1, -8, -10/*mean (0.21327), correlation (0.489786)*/,
8, -11, 10, -6/*mean (0.214159), correlation (0.488246)*/,
2, -13, 3, -6/*mean (0.216993), correlation (0.50287)*/,
7, -13, 12, -9/*mean (0.223639), correlation (0.470502)*/,
-10, -10, -5, -7/*mean (0.224089), correlation (0.500852)*/,
-10, -8, -8, -13/*mean (0.228666), correlation (0.502629)*/,
4, -6, 8, 5/*mean (0.22906), correlation (0.498305)*/,
3, 12, 8, -13/*mean (0.233378), correlation (0.503825)*/,
-4, 2, -3, -3/*mean (0.234323), correlation (0.476692)*/,
5, -13, 10, -12/*mean (0.236392), correlation (0.475462)*/,
4, -13, 5, -1/*mean (0.236842), correlation (0.504132)*/,
-9, 9, -4, 3/*mean (0.236977), correlation (0.497739)*/,
0, 3, 3, -9/*mean (0.24314), correlation (0.499398)*/,
-12, 1, -6, 1/*mean (0.243297), correlation (0.489447)*/,
3, 2, 4, -8/*mean (0.00155196), correlation (0.553496)*/,
-10, -10, -10, 9/*mean (0.00239541), correlation (0.54297)*/,
8, -13, 12, 12/*mean (0.0034413), correlation (0.544361)*/,
-8, -12, -6, -5/*mean (0.003565), correlation (0.551225)*/,
2, 2, 3, 7/*mean (0.00835583), correlation (0.55285)*/,
10, 6, 11, -8/*mean (0.00885065), correlation (0.540913)*/,
6, 8, 8, -12/*mean (0.0101552), correlation (0.551085)*/,
-7, 10, -6, 5/*mean (0.0102227), correlation (0.533635)*/,
-3, -9, -3, 9/*mean (0.0110211), correlation (0.543121)*/,
-1, -13, -1, 5/*mean (0.0113473), correlation (0.550173)*/,
-3, -7, -3, 4/*mean (0.0140913), correlation (0.554774)*/,
-8, -2, -8, 3/*mean (0.017049), correlation (0.55461)*/,
4, 2, 12, 12/*mean (0.01778), correlation (0.546921)*/,
2, -5, 3, 11/*mean (0.0224022), correlation (0.549667)*/,
6, -9, 11, -13/*mean (0.029161), correlation (0.546295)*/,
3, -1, 7, 12/*mean (0.0303081), correlation (0.548599)*/,
11, -1, 12, 4/*mean (0.0355151), correlation (0.523943)*/,
-3, 0, -3, 6/*mean (0.0417904), correlation (0.543395)*/,
4, -11, 4, 12/*mean (0.0487292), correlation (0.542818)*/,
2, -4, 2, 1/*mean (0.0575124), correlation (0.554888)*/,
-10, -6, -8, 1/*mean (0.0594242), correlation (0.544026)*/,
-13, 7, -11, 1/*mean (0.0597391), correlation (0.550524)*/,
-13, 12, -11, -13/*mean (0.0608974), correlation (0.55383)*/,
6, 0, 11, -13/*mean (0.065126), correlation (0.552006)*/,
0, -1, 1, 4/*mean (0.074224), correlation (0.546372)*/,
-13, 3, -9, -2/*mean (0.0808592), correlation (0.554875)*/,
-9, 8, -6, -3/*mean (0.0883378), correlation (0.551178)*/,
-13, -6, -8, -2/*mean (0.0901035), correlation (0.548446)*/,
5, -9, 8, 10/*mean (0.0949843), correlation (0.554694)*/,
2, 7, 3, -9/*mean (0.0994152), correlation (0.550979)*/,
-1, -6, -1, -1/*mean (0.10045), correlation (0.552714)*/,
9, 5, 11, -2/*mean (0.100686), correlation (0.552594)*/,
11, -3, 12, -8/*mean (0.101091), correlation (0.532394)*/,
3, 0, 3, 5/*mean (0.101147), correlation (0.525576)*/,
-1, 4, 0, 10/*mean (0.105263), correlation (0.531498)*/,
3, -6, 4, 5/*mean (0.110785), correlation (0.540491)*/,
-13, 0, -10, 5/*mean (0.112798), correlation (0.536582)*/,
5, 8, 12, 11/*mean (0.114181), correlation (0.555793)*/,
8, 9, 9, -6/*mean (0.117431), correlation (0.553763)*/,
7, -4, 8, -12/*mean (0.118522), correlation (0.553452)*/,
-10, 4, -10, 9/*mean (0.12094), correlation (0.554785)*/,
7, 3, 12, 4/*mean (0.122582), correlation (0.555825)*/,
9, -7, 10, -2/*mean (0.124978), correlation (0.549846)*/,
7, 0, 12, -2/*mean (0.127002), correlation (0.537452)*/,
-1, -6, 0, -11/*mean (0.127148), correlation (0.547401)*/
};
// compute the descriptor
void computeORBDesc(const cv::Mat &image, vector<cv::KeyPoint> &keypoints, vector<DescType> &desc) {
for (auto &kp: keypoints) {
DescType d(256, false);
for (int i = 0; i < 256; i++) {
// START YOUR CODE HERE (~7 lines)
auto cos_ = float(cos(kp.angle*pi/180)); //将角度转换成弧度再进行cos、sin的计算
auto sin_ = float(sin(kp.angle*pi/180));
//注意pattern中的数如何取
cv::Point2f p_r(cos_*ORB_pattern[4*i]-sin_*ORB_pattern[4*i+1],
sin_*ORB_pattern[4*i]+cos_*ORB_pattern[4*i+1]);
cv::Point2f q_r(cos_*ORB_pattern[4*i+2]-sin_*ORB_pattern[4*i+3],
sin_*ORB_pattern[4*i+2]+cos_*ORB_pattern[4*i+3]);
cv::Point2f p(kp.pt+p_r); //获取p'与q'的真实坐标,才能获得其像素值
cv::Point2f q(kp.pt+q_r);
// if kp goes outside, set d.clear()
if(p.x<0||p.y<0||p.x>image.cols||p.y>image.rows||
q.x<0||q.y<0||q.x>image.cols||q.y>image.rows){
d.clear();
break;
}
//像素值比较
d[i]=image.at<uchar>(p)>image.at<uchar>(q)?0:1;
// END YOUR CODE HERE
}
desc.push_back(d);
}
int bad = 0;
for (auto &d: desc) {
if (d.empty()) bad++;
}
cout << "bad/total: " << bad << "/" << desc.size() << endl;
return;
}
// brute-force matching
void bfMatch(const vector<DescType> &desc1, const vector<DescType> &desc2, vector<cv::DMatch> &matches) {
int d_max = 50;
// START YOUR CODE HERE (~12 lines)
// find matches between desc1 and desc2.
for(int i=0;i<desc1.size();i++){
if(desc1[i].empty())
continue;
int d_min=256 ,index=-1; //必须定义在这里,每次循环重新初始化
for(int j=0;j<desc2.size();j++){ //这个for循环,取出最小的d_min
if(desc2[j].empty())
continue;
int d=0; //必须定义在这里,每次循环重新初始化
for(int k=0;k<256;k++){
d += desc1[i][k]^desc2[j][k]; //异或:不同为1;
}
if(d<d_min){
d_min=d;
index=j;
}
}
if(d_min<=d_max){
cv::DMatch match(i,index,d_min);
matches.push_back(match);
}
}
// END YOUR CODE HERE
for (auto &m: matches) {
cout << m.queryIdx << ", " << m.trainIdx << ", " << m.distance << endl;
}
return;
}
CMakeLists.txt:
cmake_minimum_required( VERSION 2.8 )
project(stereoVision)
set( CMAKE_CXX_FLAGS "-std=c++11 -O3")
include_directories("/usr/include/eigen3")
find_package(Pangolin REQUIRED)
include_directories( ${Pangolin_INCLUDE_DIRS} )
find_package(OpenCV 3.0 QUIET) #find_package(<Name>)命令首先会在模块路径中寻找 Find<name>.cmake
if(NOT OpenCV_FOUND)
find_package(OpenCV 2.4.3 QUIET)
if(NOT OpenCV_FOUND)
message(FATAL_ERROR "OpenCV > 2.4.3 not found.")
endif()
endif()
include_directories(${OpenCV_INCLUDE_DIRS})
add_executable(computeORB computeORB.cpp)
target_link_libraries(computeORB ${OpenCV_LIBS})
然后就是五件套
mkdir build
cd build
cmake …
make
./computeORB
然后是简答题:
1.为什么说 ORB 是?种?进制特征?
ORB使用改进的BRIEF特征描述,而BRIEF是一种二进制的描述子,其描述向量由许多个0和1组成。也就是说ORB采用二进制的描述子用来描述每个特征点的特征信息。
2.为什么在匹配时使? 50 作为阈值,取更?或更?值会怎么样? 当阈值为50的时候,可以检测出的特征对有95个匹配的特征对。但存在一些误匹配的点对。
当阈值为30的时候,可以检测到的特征点对很少,当然我还检测了20的时候,到20就一对特征点对也检测不出来了。
当阈值设置为90时,可以检测到非常多的个点对,误匹配很多
3.暴?匹配在你的机器上表现如何?你能想到什么减少计算量的匹配?法吗?
运行时间如图所示,使用快速近似最近邻的方法(FLANN)。
首先说一下运行中碰到的问题吧:
第一个问题:
如果碰到这个情况,那就是我们的E2Rt文件中找不到#include <sophus/so3.hpp>,只需要改为#include <sophus/so3.h>就可以了。
第二个问题:
如果是这种情况,我们就需要把E2Rt文件中62、63行的(文件中所有的)so3d改为so3即可。
E2Rt.cpp
#include <Eigen/Core>
#include <Eigen/Dense>
#include <Eigen/Geometry>
using namespace Eigen;
#include <sophus/so3.h>
#include <iostream>
using namespace std;
int main(int argc, char **argv) {
// 给定Essential矩阵
Matrix3d E;
E << -0.0203618550523477, -0.4007110038118445, -0.03324074249824097,
0.3939270778216369, -0.03506401846698079, 0.5857110303721015,
-0.006788487241438284, -0.5815434272915686, -0.01438258684486258;
// 待计算的R,t
Matrix3d R;
Vector3d t;
// SVD and fix sigular values
// START YOUR CODE HERE
JacobiSVD<MatrixXd> svd(E,ComputeThinU | ComputeThinV);
Matrix3d U=svd.matrixU();
Matrix3d V=svd.matrixV();
VectorXd sigma_value=svd.singularValues();
Matrix3d SIGMA=U.inverse()*E*V.transpose().inverse();
Vector3d sigma_value2={(sigma_value[0]+sigma_value[1])/2,(sigma_value[0]+sigma_value[1])/2,0};
Matrix3d SIGMA2=sigma_value2.asDiagonal();
cout<<"SIGMA=\n"<<SIGMA<<endl;
cout<<"sigma_value=\n"<<sigma_value<<endl;
cout<<"SIGMA2=\n"<<SIGMA<<endl;
cout<<"sigma_value2=\n"<<sigma_value<<endl;
// END YOUR CODE HERE
// set t1, t2, R1, R2
// START YOUR CODE HERE
Matrix3d t_wedge1;
Matrix3d t_wedge2;
Matrix3d R1;
Matrix3d R2;
Matrix3d RZ1=AngleAxisd(M_PI/2,Vector3d(0,0,1)).toRotationMatrix();
Matrix3d RZ2=AngleAxisd(-M_PI/2,Vector3d(0,0,1)).toRotationMatrix();
t_wedge1=U*RZ1*SIGMA2*U.transpose();
t_wedge2=U*RZ2*SIGMA2*U.transpose();
R1=U*RZ1.transpose()*V.transpose();
R2=U*RZ2.transpose()*V.transpose();
// END YOUR CODE HERE
cout << "R1 = " << R1 << endl;
cout << "R2 = " << R2 << endl;
cout << "t1 = " << Sophus::SO3::vee(t_wedge1) << endl;
cout << "t2 = " << Sophus::SO3::vee(t_wedge2) << endl;
// check t^R=E up to scale
Matrix3d tR = t_wedge1 * R1;
cout << "t^R = " << tR << endl;
return 0;
}
CMakeLists.txt:
cmake_minimum_required(VERSION 3.0)
project(E2RT)
set(CMAKE_CXX_STANDARD 11)
set(CMAKE_BUILD_TYPE "Release")
#添加头文件
include_directories( "/usr/include/eigen3")
find_package(Sophus REQUIRED)
include_directories(${Sophus_INCLUDE_DIRS})
add_executable(E2Rt E2Rt.cpp)
#链接OpenCV库
target_link_libraries(E2Rt ${Sophus_LIBRARIES})
运行结果如下:
这里如果cmake …
make有问题的话,和上一题的解决方法是一样的。
GN-BA.cpp
#include <Eigen/Core>
#include <Eigen/Dense>
using namespace Eigen;
#include <vector>
#include <fstream>
#include <iostream>
#include <iomanip>
#include "sophus/se3.h"
using namespace std;
typedef vector<Vector3d, Eigen::aligned_allocator<Vector3d>> VecVector3d;
typedef vector<Vector2d, Eigen::aligned_allocator<Vector3d>> VecVector2d;
typedef Matrix<double, 6, 1> Vector6d;
string p3d_file = "../p3d.txt";
string p2d_file = "../p2d.txt";
int main(int argc, char **argv) {
VecVector2d p2d;
VecVector3d p3d;
Matrix3d K;
double fx = 520.9, fy = 521.0, cx = 325.1, cy = 249.7;
K << fx, 0, cx, 0, fy, cy, 0, 0, 1;
// load points in to p3d and p2d
// START YOUR CODE HERE
ifstream p3d_fin(p3d_file);
ifstream p2d_fin(p2d_file);
Vector3d p3d_input;
Vector2d p2d_input;
if (!p3d_fin) {
cerr << "p3d_fin " << p3d_file << " not found." << endl;
}
while (!p3d_fin.eof()) {
p3d_fin >> p3d_input(0) >> p3d_input(1) >> p3d_input(2);
p3d.push_back(p3d_input);
}
p3d_fin.close();
if (!p2d_fin) {
cerr << "p2d_fin " << p2d_file << " not found." << endl;
}
while (!p2d_fin.eof()) {
p2d_fin >> p2d_input(0) >> p2d_input(1);
p2d.push_back(p2d_input);
}
p2d_fin.close();
// END YOUR CODE HERE
assert(p3d.size() == p2d.size());
int iterations = 100;
double cost = 0, lastCost = 0;
int nPoints = p3d.size();
cout << "points: " << nPoints << endl;
Sophus::SE3 T_esti; // estimated pose
for (int iter = 0; iter < iterations; iter++) {
Matrix<double, 6, 6> H = Matrix<double, 6, 6>::Zero();
Vector6d b = Vector6d::Zero();
cost = 0;
// compute cost
for (int i = 0; i < nPoints; i++) {
// compute cost for p3d[I] and p2d[I]
// START YOUR CODE HERE
Eigen::Vector3d pc = T_esti * p3d[i];
Eigen::Vector2d proj(fx * pc[0] / pc[2] + cx, fy * pc[1] / pc[2] + cy);
Eigen::Vector2d e = p2d[i] - proj;
cost += e.squaredNorm()/2;
// END YOUR CODE HERE
// compute jacobian
Matrix<double, 2, 6> J;
// START YOUR CODE HERE
double inv_z = 1.0 / pc[2];
double inv_z2 = inv_z * inv_z;
J << -fx * inv_z,
0,
fx * pc[0] * inv_z2,
fx * pc[0] * pc[1] * inv_z2,
-fx - fx * pc[0] * pc[0] * inv_z2,
fx * pc[1] * inv_z,
0,
-fy * inv_z,
fy * pc[1] * inv_z2,
fy + fy * pc[1] * pc[1] * inv_z2,
-fy * pc[0] * pc[1] * inv_z2,
-fy * pc[0] * inv_z;
// END YOUR CODE HERE
H += J.transpose() * J;
b += -J.transpose() * e;
}
// solve dx
Vector6d dx;
// START YOUR CODE HERE
dx = H.ldlt().solve(b);
// END YOUR CODE HERE
if (isnan(dx[0])) {
cout << "result is nan!" << endl;
break;
}
if (iter > 0 && cost >= lastCost) {
// cost increase, update is not good
cout << "cost: " << cost << ", last cost: " << lastCost << endl;
break;
}
// update your estimation
// START YOUR CODE HERE
T_esti = Sophus::SE3::exp(dx) * T_esti;
// END YOUR CODE HERE
lastCost = cost;
cout << "iteration " << iter << " cost=" << cout.precision(12) << cost << endl;
}
cout << "estimated pose: \n" << T_esti.matrix() << endl;
return 0;
}
CMakeLists.txt:
cmake_minimum_required(VERSION 3.0)
project(E2RT)
set(CMAKE_CXX_STANDARD 11)
set(CMAKE_BUILD_TYPE "Release")
#添加头文件
include_directories( "/usr/include/eigen3")
find_package(Sophus REQUIRED)
include_directories(${Sophus_INCLUDE_DIRS})
add_executable(gn_ba GN-BA.cpp)
#链接OpenCV库
target_link_libraries(gn_ba ${Sophus_LIBRARIES})
运行结果:
1.如何定义重投影误差?
像素位置与空间点的位置关系如下:
写成矩阵形式为Siui=KTPi由于相机位姿未知及观测点的噪声,该等式存在一个误差。把误差求和,构建最小二乘问题,然后寻找最好的相机位姿,使它最小化:
将该问题的误差项,是将3D点的投影与观测位置做差,称之为重投影误差。
2.该误差关于?变量的雅可?矩阵是什么?
3.解出更新量之后,如何更新?之前的估计上?
左乘或右乘微小扰动exp(dx)
代码中为左乘
icp.cpp
#include <sophus/se3.h>
#include <string>
#include <iostream>
#include <Eigen/Core>
#include <Eigen/Geometry>
#include <opencv2/core/core.hpp>
#include <pangolin/pangolin.h>
#include <unistd.h>
using namespace std;
using namespace Eigen;
using namespace cv;
string trajectory_file = "../compare.txt";
void pose_estimation_3d3d(const vector<Point3f> &pts1,const vector<Point3f> &pts2, Eigen::Matrix3d &R_, Eigen::Vector3d &t_);
void DrawTrajectory(vector<Sophus::SE3, Eigen::aligned_allocator<Sophus::SE3>> poses_e,
vector<Sophus::SE3, Eigen::aligned_allocator<Sophus::SE3>> poses_g,
const string& ID);
int main(int argc, char **argv) {
vector<Sophus::SE3, Eigen::aligned_allocator<Sophus::SE3>> poses_e;
vector<Sophus::SE3, Eigen::aligned_allocator<Sophus::SE3>> poses_g;
vector<Sophus::SE3, Eigen::aligned_allocator<Sophus::SE3>> poses_gt;
vector<Point3f> pts_e,pts_g;
ifstream fin(trajectory_file);
if(!fin){
cerr<<"can't find file at "<<trajectory_file<<endl;
return 1;
}
while(!fin.eof()){
double t1,tx1,ty1,tz1,qx1,qy1,qz1,qw1;
double t2,tx2,ty2,tz2,qx2,qy2,qz2,qw2;
fin>>t1>>tx1>>ty1>>tz1>>qx1>>qy1>>qz1>>qw1>>t2>>tx2>>ty2>>tz2>>qx2>>qy2>>qz2>>qw2;
pts_e.push_back(Point3f(tx1,ty1,tz1));
pts_g.push_back(Point3f(tx2,ty2,tz2));
poses_e.push_back(Sophus::SE3(Quaterniond(qw1,qx1,qy1,qz1),Vector3d(tx1,ty1,tz1)));
poses_g.push_back(Sophus::SE3(Quaterniond(qw2,qx2,qy2,qz2),Vector3d(tx2,ty2,tz2)));
}
Matrix3d R;
Vector3d t;
pose_estimation_3d3d(pts_e,pts_g,R,t);
Sophus::SE3 T_eg(R,t);
for(auto SE_g:poses_g) {
Sophus::SE3 T_e=T_eg*SE_g;
poses_gt.push_back(T_e);
}
DrawTrajectory(poses_e,poses_g," Before Align");
DrawTrajectory(poses_e,poses_gt," After Align");
return 0;
}
void pose_estimation_3d3d(const vector<Point3f> &pts1,
const vector<Point3f> &pts2,
Eigen::Matrix3d &R_, Eigen::Vector3d &t_) {
Point3f p1, p2; // center of mass
int N = pts1.size();
for (int i = 0; i < N; i++) {
p1 += pts1[i];
p2 += pts2[i];
}
p1 = Point3f(Vec3f(p1) / N);
p2 = Point3f(Vec3f(p2) / N);
vector<Point3f> q1(N), q2(N); // remove the center
for (int i = 0; i < N; i++) {
q1[i] = pts1[i] - p1;
q2[i] = pts2[i] - p2;
}
// compute q1*q2^T
Eigen::Matrix3d W = Eigen::Matrix3d::Zero();
for (int i = 0; i < N; i++) {
W += Eigen::Vector3d(q1[i].x, q1[i].y, q1[i].z) * Eigen::Vector3d(q2[i].x, q2[i].y, q2[i].z).transpose();
}
cout << "W=" << W << endl;
// SVD on W
Eigen::JacobiSVD<Eigen::Matrix3d> svd(W, Eigen::ComputeFullU | Eigen::ComputeFullV);
Eigen::Matrix3d U = svd.matrixU();
Eigen::Matrix3d V = svd.matrixV();
cout << "U=" << U << endl;
cout << "V=" << V << endl;
R_ = U * (V.transpose());
if (R_.determinant() < 0) {
R_ = -R_;
}
t_ = Eigen::Vector3d(p1.x, p1.y, p1.z) - R_ * Eigen::Vector3d(p2.x, p2.y, p2.z);
}
void DrawTrajectory(vector<Sophus::SE3, Eigen::aligned_allocator<Sophus::SE3>> poses_e,
vector<Sophus::SE3, Eigen::aligned_allocator<Sophus::SE3>> poses_g,
const string& ID) {
if (poses_e.empty() || poses_g.empty()) {
cerr << "Trajectory is empty!" << endl;
return;
}
string windowtitle = "Trajectory Viewer" + ID;
// create pangolin window and plot the trajectory
pangolin::CreateWindowAndBind(windowtitle, 1024, 768);
glEnable(GL_DEPTH_TEST);
glEnable(GL_BLEND);
glBlendFunc(GL_SRC_ALPHA, GL_ONE_MINUS_SRC_ALPHA);
pangolin::OpenGlRenderState s_cam(
pangolin::ProjectionMatrix(1024, 768, 500, 500, 512, 389, 0.1, 1000),
pangolin::ModelViewLookAt(0, -0.1, -1.8, 0, 0, 0, 0.0, -1.0, 0.0)
);
pangolin::View &d_cam = pangolin::CreateDisplay()
.SetBounds(0.0, 1.0, pangolin::Attach::Pix(175), 1.0, -1024.0f / 768.0f)
.SetHandler(new pangolin::Handler3D(s_cam));
while (pangolin::ShouldQuit() == false) {
glClear(GL_COLOR_BUFFER_BIT | GL_DEPTH_BUFFER_BIT);
d_cam.Activate(s_cam);
glClearColor(1.0f, 1.0f, 1.0f, 1.0f);
glLineWidth(2);
for (size_t i = 0; i < poses_e.size() - 1; i++) {
glColor3f(1.0f, 0.0f, 0.0f);
glBegin(GL_LINES);
auto p1 = poses_e[i], p2 = poses_e[i + 1];
glVertex3d(p1.translation()[0], p1.translation()[1], p1.translation()[2]);
glVertex3d(p2.translation()[0], p2.translation()[1], p2.translation()[2]);
glEnd();
}
for (size_t i = 0; i < poses_g.size() - 1; i++) {
glColor3f(0.0f, 0.0f, 1.0f);
glBegin(GL_LINES);
auto p1 = poses_g[i], p2 = poses_g[i + 1];
glVertex3d(p1.translation()[0], p1.translation()[1], p1.translation()[2]);
glVertex3d(p2.translation()[0], p2.translation()[1], p2.translation()[2]);
glEnd();
}
pangolin::FinishFrame();
usleep(5000); // sleep 5 ms
}
}
compare.txt:
1305031526.671473 0.000000000 0.000000000 0.000000000 0.000000000 0.000000000 0.000000000 1.000000000 1305031526.672100 1.5015 0.9306 1.4503 0.8703 0.1493 -0.1216 -0.4533
1305031526.707547 0.002883195 -0.004662100 -0.002254304 0.011409802 0.010697415 0.002189494 0.999875307 1305031526.712200 1.5062 0.9251 1.4551 0.8637 0.1395 -0.1130 -0.4710
1305031526.771481 0.013978966 -0.013082317 -0.010869596 0.043280017 0.032526672 0.003260542 0.998528004 1305031526.772200 1.5119 0.9142 1.4651 -0.8502 -0.1262 0.0954 0.5021
1305031526.807455 -0.001601209 -0.011404546 -0.026841529 0.073491804 0.052071322 0.000915701 0.995935082 1305031526.812100 1.5152 0.9063 1.4724 -0.8341 -0.1188 0.0871 0.5316
1305031526.871446 -0.004428456 -0.001333938 -0.042973492 0.115341254 0.070847765 -0.006601509 0.990774155 1305031526.872200 1.5177 0.8921 1.4824 -0.8172 -0.1124 0.0738 0.5605
1305031526.907484 -0.006487503 -0.003464771 -0.058195263 0.135408968 0.081248961 -0.010381512 0.987398207 1305031526.912200 1.5189 0.8828 1.4886 -0.8039 -0.1062 0.0656 0.5816
1305031526.939618 -0.014331216 -0.013660092 -0.078787915 0.147756621 0.091927201 -0.015138508 0.984625876 1305031526.942100 1.5196 0.8752 1.4926 -0.7958 -0.1012 0.0594 0.5941
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1305031545.207577 -0.775697052 0.309703827 -0.652532101 -0.088994205 -0.202878073 -0.249244258 0.942760706 1305031545.211900 1.0958 -0.0197 1.6598 0.8003 0.4518 -0.1791 -0.3512
1305031545.243483 -0.797005057 0.306024313 -0.648830235 -0.087164439 -0.193672433 -0.236978650 0.948016047 1305031545.241900 1.0840 -0.0244 1.6586 0.8039 0.4399 -0.1802 -0.3575
1305031545.275369 -0.810988188 0.315814793 -0.651436388 -0.079260267 -0.187154412 -0.225204751 0.952876627 1305031545.271900 1.0720 -0.0295 1.6570 0.8074 0.4285 -0.1815 -0.3627
1305031545.307451 -0.823681235 0.322350562 -0.648727357 -0.077548370 -0.181697726 -0.214869916 0.956453383 1305031545.311900 1.0555 -0.0362 1.6542 0.8136 0.4157 -0.1814 -0.3639
1305031545.343494 -0.836157501 0.317787945 -0.643813252 -0.078742526 -0.176498756 -0.204849318 0.959523082 1305031545.341900 1.0428 -0.0413 1.6526 0.8176 0.4052 -0.1804 -0.3672
1305031545.375545 -0.853310347 0.316042989 -0.639135301 -0.076436408 -0.169007257 -0.192925304 0.963521600 1305031545.371900 1.0304 -0.0461 1.6518 0.8221 0.3933 -0.1796 -0.3704
1305031545.407452 -0.874697745 0.317640305 -0.637432337 -0.070468687 -0.162589818 -0.181952596 0.967208326 1305031545.411800 1.0135 -0.0520 1.6512 0.8248 0.3782 -0.1836 -0.3782
1305031545.444180 -0.886911452 0.313298106 -0.639686942 -0.065004595 -0.160660192 -0.171101630 0.969890177 1305031545.441900 1.0009 -0.0561 1.6513 0.8255 0.3699 -0.1863 -0.3833
1305031545.475423 -0.905291140 0.296409756 -0.633331060 -0.059877038 -0.158485740 -0.160531029 0.972382009 1305031545.471900 0.9886 -0.0599 1.6519 0.8240 0.3605 -0.1906 -0.3933
1305031545.507394 -0.915389955 0.310957670 -0.634614110 -0.038708638 -0.159511805 -0.152018532 0.974652767 1305031545.511800 0.9723 -0.0644 1.6526 0.8200 0.3498 -0.1985 -0.4074
1305031545.543418 -0.926781833 0.300550938 -0.631470203 -0.031722408 -0.162174836 -0.142174989 0.975950420 1305031545.541900 0.9601 -0.0678 1.6527 0.8167 0.3442 -0.2042 -0.4158
1305031545.578078 -0.941030085 0.302477956 -0.632803679 -0.016745908 -0.167308226 -0.140735641 0.975664377 1305031545.581900 0.9439 -0.0730 1.6521 0.8082 0.3439 -0.2128 -0.4281
1305031545.607417 -0.958786428 0.309266388 -0.634283662 -0.005518550 -0.171974912 -0.140413284 0.975027323 1305031545.611900 0.9325 -0.0769 1.6505 0.8037 0.3440 -0.2194 -0.4332
1305031545.643463 -0.971941531 0.311215401 -0.625996351 0.005261570 -0.177367032 -0.140286848 0.974080563 1305031545.641900 0.9218 -0.0805 1.6486 0.7977 0.3433 -0.2254 -0.4416
1305031545.675289 -0.981105447 0.303551197 -0.618971765 0.016415834 -0.182207465 -0.142161235 0.972790360 1305031545.672100 0.9119 -0.0847 1.6461 0.7911 0.3435 -0.2278 -0.4519
1305031545.707398 -0.985777617 0.319570988 -0.616668284 0.035953835 -0.185696319 -0.143202424 0.971451104 1305031545.711900 0.8989 -0.0892 1.6410 0.7817 0.3420 -0.2318 -0.4671
1305031545.743570 -0.994036734 0.339825362 -0.619215250 0.043110058 -0.184341520 -0.143804520 0.971328974 1305031545.742000 0.8891 -0.0927 1.6349 0.7817 0.3417 -0.2316 -0.4675
1305031545.775452 -1.008792162 0.348843127 -0.617261469 0.043981537 -0.185309321 -0.148192868 0.970445752 1305031545.771800 0.8794 -0.0964 1.6277 0.7799 0.3451 -0.2323 -0.4676
1305031545.807404 -1.017094016 0.363836795 -0.610341728 0.042971130 -0.187454849 -0.149913028 0.969814539 1305031545.811800 0.8668 -0.1017 1.6162 0.7805 0.3491 -0.2321 -0.4637
1305031545.843376 -1.015746951 0.384224027 -0.597564757 0.040337745 -0.189155236 -0.149123102 0.969719291 1305031545.841900 0.8581 -0.1055 1.6063 0.7837 0.3502 -0.2290 -0.4591
1305031545.875537 -1.020460725 0.393541723 -0.591298938 0.030206559 -0.183203965 -0.150770113 0.970974863 1305031545.871900 0.8502 -0.1090 1.5954 0.7891 0.3506 -0.2217 -0.4530
1305031545.907389 -1.032172799 0.404498816 -0.585110068 0.022949532 -0.175226331 -0.154789075 0.972013056 1305031545.911800 0.8410 -0.1147 1.5804 0.7946 0.3515 -0.2115 -0.4476
1305031545.943457 -1.029512048 0.419103324 -0.581444979 0.011849710 -0.171430603 -0.157338798 0.972479105 1305031545.941900 0.8355 -0.1192 1.5682 0.8008 0.3528 -0.2037 -0.4391
1305031545.975621 -1.034663200 0.428941101 -0.573612571 -0.000687468 -0.164707407 -0.157783851 0.973640203 1305031545.971900 0.8312 -0.1237 1.5559 0.8077 0.3512 -0.1960 -0.4311
1305031546.007516 -1.042177558 0.450212479 -0.575800180 -0.009769781 -0.157327563 -0.160005048 0.974449039 1305031546.011900 0.8267 -0.1296 1.5391 0.8153 0.3516 -0.1884 -0.4197
1305031546.043769 -1.036182284 0.464607954 -0.563580990 -0.025006190 -0.152651861 -0.160986036 0.974759221 1305031546.041900 0.8255 -0.1338 1.5263 0.8240 0.3493 -0.1785 -0.4088
1305031546.075414 -1.033570170 0.477972031 -0.557384670 -0.039435860 -0.140094146 -0.159591570 0.976395905 1305031546.071900 0.8256 -0.1378 1.5139 0.8335 0.3441 -0.1655 -0.3993
1305031546.107395 -1.029393673 0.492431819 -0.554459393 -0.047873456 -0.130461067 -0.158340931 0.977556229 1305031546.111900 0.8271 -0.1420 1.4985 0.8408 0.3395 -0.1539 -0.3926
1305031546.143502 -1.028340936 0.505542159 -0.552153826 -0.055414032 -0.118261471 -0.155959934 0.979091406 1305031546.141900 0.8294 -0.1445 1.4875 0.8475 0.3329 -0.1451 -0.3871
1305031546.175952 -1.030930519 0.508714318 -0.546573281 -0.067375802 -0.107248776 -0.147529036 0.980914533 1305031546.172000 0.8322 -0.1466 1.4764 0.8531 0.3277 -0.1387 -0.3816
1305031546.207500 -1.024528623 0.517454207 -0.542282641 -0.077759199 -0.098568663 -0.142390266 0.981816053 1305031546.212000 0.8371 -0.1484 1.4616 0.8619 0.3168 -0.1294 -0.3742
1305031546.243551 -1.023211718 0.520915508 -0.536803424 -0.084928177 -0.086161926 -0.136442930 0.983232796 1305031546.242000 0.8413 -0.1490 1.4509 0.8664 0.3073 -0.1231 -0.3738
1305031546.276098 -1.018564939 0.539996207 -0.534515381 -0.082185738 -0.075569794 -0.128385767 0.985419631 1305031546.272000 0.8462 -0.1496 1.4395 0.8698 0.2977 -0.1193 -0.3749
1305031546.308110 -1.010900617 0.550528944 -0.528959513 -0.090218984 -0.066594698 -0.117502101 0.986721337 1305031546.312000 0.8532 -0.1506 1.4240 0.8787 0.2832 -0.1123 -0.3675
1305031546.343919 -1.014521241 0.556670666 -0.524246275 -0.094354831 -0.053942565 -0.109825686 0.987990737 1305031546.342000 0.8582 -0.1509 1.4127 0.8815 0.2737 -0.1105 -0.3686
1305031546.376056 -1.012071252 0.569871247 -0.519335747 -0.092766643 -0.048395433 -0.101247221 0.989343882 1305031546.372100 0.8629 -0.1514 1.4014 0.8843 0.2649 -0.1117 -0.3680
1305031546.407659 -1.003891230 0.578038037 -0.514469981 -0.095107846 -0.046558440 -0.090958118 0.990208805 1305031546.412100 0.8684 -0.1517 1.3859 0.8880 0.2543 -0.1127 -0.3662
1305031546.443968 -1.006876349 0.587401628 -0.507140934 -0.093904831 -0.041006159 -0.084594145 0.991132796 1305031546.442100 0.8721 -0.1523 1.3745 0.8884 0.2476 -0.1156 -0.3689
1305031546.475996 -0.996109128 0.606940567 -0.504759967 -0.092348449 -0.041479517 -0.078999028 0.991720915 1305031546.472100 0.8752 -0.1531 1.3625 0.8915 0.2427 -0.1146 -0.3650
1305031546.507967 -0.994153321 0.611241043 -0.496860325 -0.097532190 -0.037081897 -0.074150644 0.991773188 1305031546.512100 0.8793 -0.1544 1.3475 0.8932 0.2362 -0.1136 -0.3653
1305031546.544068 -0.989314735 0.627403915 -0.493148655 -0.093061380 -0.035366114 -0.069693960 0.992588341 1305031546.542100 0.8817 -0.1557 1.3363 0.8938 0.2319 -0.1144 -0.3665
1305031546.576412 -0.987078428 0.637881339 -0.490572333 -0.098057151 -0.031207165 -0.065670043 0.992521226 1305031546.572100 0.8844 -0.1572 1.3254 0.8968 0.2294 -0.1110 -0.3617
1305031546.607717 -0.985495627 0.648996294 -0.485175341 -0.104153536 -0.028164549 -0.062237393 0.992212296 1305031546.612100 0.8871 -0.1587 1.3107 0.9011 0.2245 -0.1093 -0.3545
1305031546.644200 -0.980976045 0.661606312 -0.480350435 -0.109906785 -0.025553485 -0.059289202 0.991842866 1305031546.642200 0.8890 -0.1594 1.3001 0.9047 0.2220 -0.1058 -0.3478
1305031546.676003 -0.979658186 0.668606997 -0.473185062 -0.117995255 -0.021227345 -0.058345407 0.991071284 1305031546.672200 0.8903 -0.1596 1.2899 0.9069 0.2203 -0.1025 -0.3443
1305031546.707934 -0.974887013 0.675395727 -0.468508154 -0.124167100 -0.018283943 -0.056145288 0.990502834 1305031546.712200 0.8922 -0.1592 1.2775 0.9106 0.2168 -0.0967 -0.3383
1305031546.743887 -0.973686397 0.685157299 -0.463010907 -0.131787583 -0.011771018 -0.056698982 0.989585102 1305031546.742200 0.8929 -0.1587 1.2684 0.9146 0.2162 -0.0902 -0.3295
1305031546.775864 -0.975636601 0.691571474 -0.455485851 -0.140392944 -0.006230631 -0.058326945 0.988356709 1305031546.772300 0.8931 -0.1577 1.2604 0.9164 0.2172 -0.0867 -0.3248
1305031546.807996 -0.973160028 0.695711017 -0.449681729 -0.144233882 -0.004771988 -0.058515519 0.987800479 1305031546.812200 0.8929 -0.1559 1.2513 0.9175 0.2168 -0.0842 -0.3226
1305031546.844079 -0.972163498 0.700159490 -0.445479959 -0.147190124 -0.005115082 -0.057700932 0.987410486 1305031546.842300 0.8927 -0.1550 1.2453 0.9185 0.2175 -0.0850 -0.3192
1305031546.876064 -0.970690489 0.699782610 -0.439850301 -0.151563972 -0.008172899 -0.059012938 0.986650407 1305031546.872400 0.8921 -0.1538 1.2403 0.9181 0.2194 -0.0860 -0.3186
1305031546.907783 -0.970115304 0.699011922 -0.434674412 -0.150987342 -0.008861817 -0.060312528 0.986654282 1305031546.912300 0.8911 -0.1521 1.2352 0.9162 0.2204 -0.0864 -0.3234
1305031546.943858 -0.971781909 0.705614865 -0.432511747 -0.144331127 -0.008444622 -0.062622145 0.987509847 1305031546.942300 0.8902 -0.1509 1.2318 0.9147 0.2226 -0.0870 -0.3260
1305031546.975884 -0.973060191 0.706883013 -0.429386258 -0.145612717 -0.009609468 -0.064460464 0.987192690 1305031546.972400 0.8890 -0.1500 1.2285 0.9145 0.2257 -0.0872 -0.3243
1305031547.011984 -0.973977268 0.705084682 -0.425893694 -0.146080330 -0.012293681 -0.067066759 0.986920178 1305031547.012300 0.8877 -0.1485 1.2255 0.9126 0.2275 -0.0902 -0.3277
1305031547.044214 -0.969248772 0.709507227 -0.423717022 -0.141931981 -0.015329896 -0.068335988 0.987395823 1305031547.042400 0.8873 -0.1475 1.2236 0.9123 0.2285 -0.0884 -0.3281
1305031547.076346 -0.969141841 0.705416739 -0.420951128 -0.142568424 -0.012756718 -0.071352549 0.987127304 1305031547.072400 0.8874 -0.1462 1.2227 0.9111 0.2290 -0.0858 -0.3317
1305031547.111991 -0.969205260 0.702976882 -0.420145452 -0.139350116 -0.010200501 -0.072448380 0.987536669 1305031547.112400 0.8877 -0.1451 1.2227 0.9096 0.2288 -0.0838 -0.3366
1305031547.144071 -0.970228970 0.703889012 -0.420595855 -0.133380279 -0.007748643 -0.073243111 0.988324404 1305031547.142400 0.8881 -0.1447 1.2234 0.9081 0.2285 -0.0838 -0.3406
1305031547.175909 -0.971397400 0.704943478 -0.422101766 -0.130354390 -0.007599273 -0.070975937 0.988894522 1305031547.172400 0.8885 -0.1447 1.2248 0.9074 0.2278 -0.0862 -0.3423
1305031547.211964 -0.972041070 0.701468408 -0.422861338 -0.130787611 -0.010874991 -0.070190683 0.988862753 1305031547.212400 0.8893 -0.1450 1.2272 0.9068 0.2285 -0.0906 -0.3425
1305031547.244113 -0.971181035 0.695812881 -0.424771667 -0.130435303 -0.013295597 -0.070769772 0.988838434 1305031547.242500 0.8899 -0.1451 1.2297 0.9055 0.2287 -0.0919 -0.3453
1305031547.276546 -0.971028864 0.697565377 -0.427125096 -0.125065759 -0.014118688 -0.071175680 0.989491403 1305031547.272500 0.8904 -0.1455 1.2320 0.9043 0.2296 -0.0927 -0.3479
1305031547.312261 -0.971129596 0.694582820 -0.428963840 -0.124308571 -0.015723296 -0.071646489 0.989528596 1305031547.312500 0.8912 -0.1463 1.2354 0.9036 0.2304 -0.0946 -0.3487
1305031547.344192 -0.971808732 0.696023524 -0.431559682 -0.120676666 -0.017302411 -0.070783302 0.990013897 1305031547.342500 0.8917 -0.1467 1.2377 0.9026 0.2307 -0.0972 -0.3503
1305031547.376753 -0.972948790 0.692880690 -0.433144748 -0.121699139 -0.020406267 -0.069425315 0.989925742 1305031547.372600 0.8921 -0.1474 1.2396 0.9027 0.2312 -0.1007 -0.3487
1305031547.412260 -0.971561193 0.691772044 -0.434226394 -0.120271191 -0.024528606 -0.067930862 0.990110397 1305031547.412500 0.8920 -0.1477 1.2420 0.9020 0.2318 -0.1040 -0.3490
1305031547.444472 -0.969606876 0.689487159 -0.435226619 -0.119148292 -0.027779723 -0.068744808 0.990104079 1305031547.442600 0.8921 -0.1475 1.2435 0.9008 0.2327 -0.1053 -0.3511
1305031547.476347 -0.970041931 0.689112425 -0.436202466 -0.115484737 -0.028181925 -0.070158444 0.990427613 1305031547.472600 0.8922 -0.1473 1.2447 0.8999 0.2332 -0.1058 -0.3530
1305031547.512114 -0.969141722 0.690587997 -0.436644912 -0.112998858 -0.028315512 -0.070585296 0.990680158 1305031547.512600 0.8920 -0.1464 1.2457 0.8999 0.2336 -0.1049 -0.3529
1305031547.544015 -0.969343126 0.685919464 -0.435732603 -0.115559071 -0.027669447 -0.071633816 0.990327775 1305031547.542600 0.8918 -0.1458 1.2463 0.8997 0.2338 -0.1044 -0.3535
1305031547.576437 -0.969174564 0.686703444 -0.435318053 -0.112849854 -0.027105195 -0.070552461 0.990733325 1305031547.572800 0.8918 -0.1446 1.2464 0.8993 0.2324 -0.1049 -0.3553
1305031547.612296 -0.970078647 0.689395785 -0.435169339 -0.112708598 -0.026355622 -0.070317492 0.990786374 1305031547.612600 0.8919 -0.1431 1.2459 0.9003 0.2329 -0.1051 -0.3523
1305031547.644160 -0.968304217 0.684383154 -0.432779491 -0.115552612 -0.027641958 -0.069583893 0.990475416 1305031547.642700 0.8920 -0.1419 1.2458 0.8996 0.2314 -0.1062 -0.3549
1305031547.677287 -0.966275394 0.690610170 -0.433439136 -0.111170650 -0.027089374 -0.068664201 0.991056204 1305031547.672700 0.8922 -0.1407 1.2451 0.9005 0.2309 -0.1046 -0.3533
1305031547.712338 -0.964709222 0.686679959 -0.430968702 -0.118181951 -0.026665349 -0.069269933 0.990213931 1305031547.712700 0.8925 -0.1396 1.2441 0.9020 0.2315 -0.1028 -0.3497
1305031547.744332 -0.963581026 0.684470177 -0.429666400 -0.117340922 -0.025876738 -0.069295891 0.990333080 1305031547.742800 0.8929 -0.1386 1.2441 0.9011 0.2307 -0.1025 -0.3526
1305031547.776390 -0.964229822 0.688230872 -0.429996789 -0.114284322 -0.024022026 -0.070344165 0.990663290 1305031547.772700 0.8935 -0.1379 1.2440 0.9008 0.2318 -0.1015 -0.3529
1305031547.812317 -0.964506626 0.684349477 -0.429410160 -0.117394648 -0.022055248 -0.071717598 0.990246713 1305031547.812700 0.8942 -0.1371 1.2441 0.9011 0.2310 -0.0996 -0.3532
1305031547.844564 -0.962979019 0.686277032 -0.429381162 -0.114744045 -0.021526016 -0.070772044 0.990637004 1305031547.842800 0.8946 -0.1365 1.2442 0.9008 0.2305 -0.0994 -0.3543
1305031547.876362 -0.963006616 0.688939631 -0.429479182 -0.113952808 -0.021306587 -0.070929334 0.990721881 1305031547.872800 0.8950 -0.1360 1.2442 0.9016 0.2311 -0.0993 -0.3520
1305031547.912744 -0.960898936 0.685296535 -0.428291798 -0.116005875 -0.021983700 -0.069795489 0.990549266 1305031547.912800 0.8956 -0.1352 1.2445 0.9016 0.2297 -0.0992 -0.3529
1305031547.944304 -0.960632503 0.685537279 -0.428972363 -0.115375742 -0.021099383 -0.069957919 0.990630627 1305031547.943100 0.8959 -0.1347 1.2447 0.9019 0.2297 -0.0988 -0.3522
CMakeLists.txt:
cmake_minimum_required(VERSION 3.0)
project(E2RT)
set(CMAKE_CXX_STANDARD 11)
set(CMAKE_BUILD_TYPE "Release")
#添加头文件
include_directories( "/usr/include/eigen3")
find_package(Sophus REQUIRED)
find_package(Pangolin REQUIRED)
find_package(OpenCV REQUIRED)
#添加头文件
include_directories( ${OpenCV_INCLUDE_DIRS})
include_directories(${Pangolin_INCLUDE_DIRS})
include_directories(${Sophus_INCLUDE_DIRS})
add_executable(useICP icp.cpp)
#链接OpenCV库
target_link_libraries(useICP ${Sophus_LIBRARIES} ${Pangolin_LIBRARIES} ${OpenCV_LIBS})
运行结果如下: