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How would I be able to cycle through an image using opencv as if it were a 2d array to get the rgb values of each pixel? Also, would a mat be preferable over an iplimage for this operation?

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Possible duplicate: stackoverflow.com/questions/998429/… –  Eugen Constantin Dinca Dec 21 '10 at 23:26
    
I am just going to use this little function I found. float pixval32f( IplImage* img, int r, int c ) { return ( (float*)(img->imageData + img->widthStep*r) )[c]; } –  a sandwhich Dec 22 '10 at 1:06
    
    

3 Answers 3

up vote 5 down vote accepted

If you use C++, use the C++ interface of opencv and then you can access the members via http://opencv.willowgarage.com/documentation/cpp/fast_element_access.html - using cv::Mat::at(), for example.

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Thank you for the link! Looks similar to QImage::scanLine, just what I wanted. –  Valentin Heinitz Dec 22 '12 at 14:01

The docs show a well written comparison of different ways to iterate over a Mat image here.

The fastest way is to use C style pointers. Here is the code copied from the docs:

Mat& ScanImageAndReduceC(Mat& I, const uchar* const table)
{
// accept only char type matrices
CV_Assert(I.depth() != sizeof(uchar));

int channels = I.channels();

int nRows = I.rows;
int nCols = I.cols * channels;

if (I.isContinuous())
{
    nCols *= nRows;
    nRows = 1;
}

int i,j;
uchar* p;
for( i = 0; i < nRows; ++i)
{
    p = I.ptr<uchar>(i);
    for ( j = 0; j < nCols; ++j)
    {
        p[j] = table[p[j]];
    }
}
return I;
}

Accessing the elements with the at is quite slow.

Note that if your operation can be performed using a lookup table, the built in function LUT is by far the fastest (also described in the docs).

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cv::Mat is preferred over IplImage because it simplifies your code

cv::Mat img = cv::imread("lenna.png");
for(int i=0; i<img.rows; i++)
    for(int j=0; j<img.cols; j++) 
        // You can now access the pixel value with cv::Vec3b
        std::cout << img.at<cv::Vec3b>(i,j)[0] << " " << img.at<cv::Vec3b>(i,j)[1] << " " << img.at<cv::Vec3b>(i,j)[2] << std::endl;

This assumes that you need to use the RGB values together. If you don't, you can uses cv::split to get each channel separately. See etarion's answer for the link with example.

Also, in my cases, you simply need the image in gray-scale. Then, you can load the image in grayscale and access it as an array of uchar.

cv::Mat img = cv::imread("lenna.png",0);
for(int i=0; i<img.rows; i++)
    for(int j=0; i<img.cols; j++)
        std::cout << img.at<uchar>(i,j) << " " << img.at<uchar>(i,j) << " " << img.at<uchar>(i,j) << std::endl;

UPDATE: Using split to get the 3 channels

cv::Mat img = cv::imread("lenna.png");
std::vector<cv::Mat> three_channels = cv::split(img);

// Now I can access each channel separately
for(int i=0; i<img.rows; i++)
    for(int j=0; j<img.cols; j++)
        std::cout << three_channels[0].at<uchar>(i,j) << " " << three_channels[0].at<uchar>(i,j) << " " << three_channels[0].at<uchar>(i,j) << std::endl;

// Similarly for the other two channels

UPDATE: Thanks to entarion for spotting the error I introduced when copying and pasting from the cv::Vec3b example.

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1  
How is it that you get values that are non-integers for the image? –  Dat Chu Dec 22 '10 at 4:56
1  
img.at<uchar>(i,j)[0] - this isn't going to work :) the [0] has to go –  etarion Dec 22 '10 at 9:48
    
I got to this question and it solved a problem I had, but now I have the question, why does ::at<uchar> work? why doesnt it work with the at alone? like at(0,0)? –  Zloy Smiertniy Nov 28 '11 at 3:55
    
Because ::at<T> is a template method without a default typename? –  Dat Chu Dec 1 '11 at 5:01
    
This is one of the most useful posts for OpenCV beginners ever. Would be perfect if it had some additional info on how to cycle trough that same Mat as if it was a 1D matrix. But I guess that was not the question... –  Void Sep 17 '13 at 12:06

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