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I am trying to change 3-channel image into 4-channel like this:

cv::VideoCapture video;
video.open("sample.avi");
cv::Mat source;
cv::Mat newSrc;
int from_to = { 0,0, 1,1, 2,2, 3,3 };
for ( int i = 0; i < 1000; i ++ )
{
   video >> source;
   cv::mixChannels ( source, 2, newSrc, 1, from_to, 4 );
}

Then I got

too many input arguments in function call

for the 'mixChannels' line. Besides, I am not sure whether I am giving the arguments correctly for my goal. Can someone help me? Thank you.

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3 Answers 3

up vote 7 down vote accepted

You can convert 3 channel image to 4 channel as follows:

cv::Mat source = cv::imread(path);

cv::Mat newSrc = cv::Mat(source.rows,source.cols,CV_8UC4);

int from_to[] = { 0,0, 1,1, 2,2, 3,3 };

cv::mixChannels(&source,2,&newSrc,1,from_to,4);
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1  
in C++11 you can also use the more convenient form cv::mixChannels({{src, ...}}, {{dst1, ...}}, { 2,0, 1,1, 0,2, 3,3 }). –  Stefan Fisk Aug 28 '14 at 10:06

What is the 4th channel supposed to contain? How about:

VideoCapture cap(0);
Mat frame;
cap >> frame;

Mat RGBA(frame.size(), CV_8UC4, camData);
cv::cvtColor(frame, RGBA, CV_BGR2RGBA, 4);
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Thank you for your answer. Actually I don't know what should the 4th channel contain, actually my main goal is to use "meanShiftFiltering", but it only accepts 4-channel image. So that is why I need to change. And what is "camData" in your code here? Did you mean "frame.data" ? –  E_learner Nov 19 '12 at 11:31

I think it should be like this:

cv::Mat source = cv::imread(path);
cv::Mat newSrc = cv::Mat(source.rows,source.cols,CV_8UC4);

int from_to[] = { 0,0, 1,1, 2,2 };
cv::mixChannels(&source,1,&newSrc,1,from_to,3);

We set 3 pairs to be copied, so this leaves the 4 channel empty in newsrc. And 1 in the second and forth parameter means that the pointers source and newSrc point to one element to be processed. The last parameter gives the length of from_to.

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