Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

I'm trying to reduce the runtime of a routine that converts an RGB image to a YCbCr image. My code looks like this:

cv::Mat input(BGR->m_height, BGR->m_width, CV_8UC3, BGR->m_imageData);
cv::Mat output(BGR->m_height, BGR->m_width, CV_8UC3);

cv::cvtColor(input, output, CV_BGR2YCrCb);

cv::Mat outputArr[3];
outputArr[0] = cv::Mat(BGR->m_height, BGR->m_width, CV_8UC1, Y->m_imageData);
outputArr[1] = cv::Mat(BGR->m_height, BGR->m_width, CV_8UC1, Cr->m_imageData);
outputArr[2] = cv::Mat(BGR->m_height, BGR->m_width, CV_8UC1, Cb->m_imageData);  

split(output,outputArr);

But, this code is slow because there is a redundant split operation which copies the interleaved RGB image into the separate channel images. Is there a way to make the cvtColor function create an output that is already split into channel images? I tried to use constructors of the _OutputArray class that accepts a vector or array of matrices as an input, but it didn't work.

share|improve this question

3 Answers 3

Are you sure that copying the image data is the limiting step?
How are you producing the Y ? Cr / Cb cv::mats?
Can you just rewrite this function to write the results into the three separate images?

share|improve this answer
    
It does consume runtime. I've discovered that by doing runtime profiling with VTune. The Y,Cr and Cb data buffers are preallocated so creating the cv::Mats takes negligible time. I guess I can rewrite the function, but I'd rather not waste my time on that and use a pre-existing solution. –  Victor May Dec 10 '12 at 17:12
    
Could you pre-allocate them as cv::mats and then pass those data pointers to the functions that produce the y/cr/cb data? –  Martin Beckett Dec 10 '12 at 17:18
    
I don't know how to get cvtColor to produce separate Y,Cb,Cr channels. –  Victor May Dec 10 '12 at 17:28
    
@VictorMay doesn't cvtcolor() produce interleaved YUYV output? If it does then you are going to have to go through the result copying bytes anyway. –  Martin Beckett Dec 10 '12 at 17:32

There is no calling option for cv::cvtColor, that gives it result as three seperate cv::Mats (one per channel).

dst – output image of the same size and depth as src.

source: http://docs.opencv.org/modules/imgproc/doc/miscellaneous_transformations.html#cvtcolor

You have to copy the pixels from the result (as you are already doing) or write such a conversion function yourself.

share|improve this answer

Use split. This splits the image into 3 different channels or arrays.

Now converting them back to UIImage is where I am having trouble. I get three grayscale images, one in each array. I am convinced they are the proper channels in cvMat format but when I convert them to UIImage they are grayscale but different grayscale values in each image. If you can use imread and imshow then it should display the images for you after the split. My problem is trying to use the ios.h methods and I believe it reassembles the arrays, instead of transferring the single array. Here is my code using a segmented control to choose which layer, or array, you want to display. Like I said, I get 3 grayscale images but with completely different values. I need to keep the one layer and abandon the rest. Still working on that part of it.

UIImageToMat(_img, cvImage);
cv::cvtColor(cvImage, RYB, CV_RGB2BGRA);
split(RYB, layers);
if (_segmentedRGBControl.selectedSegmentIndex == 0) {
   // cv::cvtColor(layers[0], RYB, CV_8UC1);
    RYB = layers[0];
    _imageProcessView.image = MatToUIImage(RYB);
}
if (_segmentedRGBControl.selectedSegmentIndex == 1) {
    RYB = (layers[1]);
    _imageProcessView.image = MatToUIImage(RYB);
}
if (_segmentedRGBControl.selectedSegmentIndex == 2) {
    RYB = (layers[2]);
    _imageProcessView.image = MatToUIImage(RYB);
}
}
share|improve this answer

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

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