opencv 去畸变
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2022-03-16 17:47:22
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对于去畸变后图片中的每一个点 (u,v),我们可以通过畸变系数和相机内参求得其在畸变图像中对应的像素点,然后对(u,v)进行赋值
#include <opencv2/opencv.hpp>
#include <string>
using namespace std;
string image_file = "./distorted.png"; // 请确保路径正确
int main(int argc, char **argv) {
// 本程序实现去畸变部分的代码。尽管我们可以调用OpenCV的去畸变,但自己实现一遍有助于理解。
// 畸变参数
double k1 = -0.28340811, k2 = 0.07395907, p1 = 0.00019359, p2 = 1.76187114e-05;
// 内参
double fx = 458.654, fy = 457.296, cx = 367.215, cy = 248.375;
cv::Mat image = cv::imread(image_file, 0); // 图像是灰度图,CV_8UC1
int rows = image.rows, cols = image.cols;
cv::Mat image_undistort = cv::Mat(rows, cols, CV_8UC1); // 去畸变以后的图
// 计算去畸变后图像的内容
for (int v = 0; v < rows; v++) {
for (int u = 0; u < cols; u++) {
// 按照公式,计算点(u,v)对应到畸变图像中的坐标(u_distorted, v_distorted)
double x = (u - cx) / fx, y = (v - cy) / fy;
double r = sqrt(x * x + y * y);
double x_distorted = x * (1 + k1 * r * r + k2 * r * r * r * r) + 2 * p1 * x * y + p2 * (r * r + 2 * x * x);
double y_distorted = y * (1 + k1 * r * r + k2 * r * r * r * r) + p1 * (r * r + 2 * y * y) + 2 * p2 * x * y;
double u_distorted = fx * x_distorted + cx;
double v_distorted = fy * y_distorted + cy;
// 赋值 (最近邻插值)
if (u_distorted >= 0 && v_distorted >= 0 && u_distorted < cols && v_distorted < rows) {
image_undistort.at<uchar>(v, u) = image.at<uchar>((int) v_distorted, (int) u_distorted);
// image_undistort.at<uchar>((int) v_distorted, (int) u_distorted)=image.at<uchar>(v, u);
} else {
image_undistort.at<uchar>(v, u) = 0;
// image_undistort.at<uchar>((int) v_distorted, (int) u_distorted) = 0;
}
}
}
// 画图去畸变后图像
cv::imshow("distorted", image);
cv::imshow("undistorted", image_undistort);
cv::waitKey();
return 0;
}