3

I'm trying to get the the difference between two cv::Mat frames in OpenCv. So here is what I tried,

 #include<opencv2\opencv.hpp>
 #include<opencv2\calib3d\calib3d.hpp>
 #include<opencv2\core\core.hpp>
 #include <opencv2\highgui\highgui.hpp>
 int main ()
 {
    cv::VideoCapture cap(0);
    cv::Mat frame, frame1,frame2;
    int key=0;

    while(key!=27){
       cap >> frame;
       if(key=='c'){
          frame1 = frame;
          key = 0;
       }
       if(key =='x'){
          cv::absdiff(frame, frame1, frame2);  // I also tried frame2= (frame -frame1)*255;
          cv::imshow("difference ",frame2);
          key =0;
       }
       cv::imshow("stream",frame);
       key = cv::waitKey(10);
     }
  }

the result is always the same a 0 Matrix, any idea what I'm doing wrong here? thanks in advance for your help.

  • 3
    What happens when you replace frame1 = frame with frame.copyTo(frame1)? – raina77ow May 23 '13 at 6:44
  • thanks @raina77ow the result now makes more sens – Engine May 23 '13 at 6:54
11

Mat objects are pointer typed. After setting frame1 to frame directly using frame1 = frame, both matrices show the same point and same frame also. You have to copy frame value using "copyTo" method of Mat.

| improve this answer | |
7

OpenCV Matrixes use pointers internally

The documentation of the Mat type states:

Mat is basically a class with two data parts: the matrix header and a pointer to the matrix containing the pixel values. [...] Whenever somebody copies a header of a Mat object, a counter is increased for the matrix. Whenever a header is cleaned this counter is decreased. When the counter reaches zero the matrix too is freed. Sometimes you will want to copy the matrix itself too, so OpenCV provides the clone() and copyTo() functions.

cv::Mat F = A.clone();
cv::Mat G;
A.copyTo(G);
| improve this answer | |
4

OpenCV overloads the affectation operator on cv::Mat objects so that the line mat1 = mat2 only affects the pointer to the data in mat1 (that points to the same data as mat2). This avoids time consuming copies of all the image data.

If you want to save the data of a matrix, you have to write mat1 = mat2.clone() or mat2.copyTo(mat1).

| improve this answer | |
0

I was looking for a similar program and I came across your post, here is a sample I have written for frameDifferencing, hope this helps, the below function will give you the difference between two frames

/** @function differenceFrame */
Mat differenceFrame( Mat prev_frame, Mat curr_frame ) 
{
    Mat image = prev_frame.clone();
    printf("frame rows %d Cols %d\n" , image.rows, image.cols);

    for (int rows = 0; rows < image.rows; rows++)
    {
        for (int cols = 0; cols < image.cols; cols++) 
        {   
          /*  printf("BGR value %lf %lf %lf\n" , abs(prev_frame.at<cv::Vec3b>(rows,cols)[0] - 
                                              curr_frame.at<cv::Vec3b>(rows,cols)[0]), 
                                              abs(prev_frame.at<cv::Vec3b>(rows,cols)[1] - 
                                              curr_frame.at<cv::Vec3b>(rows,cols)[0]),
                                              abs(prev_frame.at<cv::Vec3b>(rows,cols)[2] - 
                                              curr_frame.at<cv::Vec3b>(rows,cols)[0]));
            */
            image.at<cv::Vec3b>(rows,cols)[0] = abs(prev_frame.at<cv::Vec3b>(rows,cols)[0] - 
                                              curr_frame.at<cv::Vec3b>(rows,cols)[0]);
            image.at<cv::Vec3b>(rows,cols)[1] = abs(prev_frame.at<cv::Vec3b>(rows,cols)[1] - 
                                              curr_frame.at<cv::Vec3b>(rows,cols)[1]);
            image.at<cv::Vec3b>(rows,cols)[2] = abs(prev_frame.at<cv::Vec3b>(rows,cols)[2] - 
                                              curr_frame.at<cv::Vec3b>(rows,cols)[2]);
        }
    }
    return image;
} 
| improve this answer | |
  • You can omit the loops: Mat dif = curr_frame - prev_frame; You could also use absdiff(InputArray src1, InputArray src2, OutputArray dst) – user937284 Jan 15 '14 at 15:40

Your Answer

By clicking “Post Your Answer”, you agree to our terms of service, privacy policy and cookie policy

Not the answer you're looking for? Browse other questions tagged or ask your own question.