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I've got a performance problem in my matlab script.

What I'm trying to do is to find a horizontal line for which variance of intensity values along it is the smallest. The naive implementation is below. The question is how to rewrite it to boost performance.

% img is some previously loaded image
height = size(img,1);
width = size(img,2);

smallestVar = inf;
smallestXline = [];
smallestYline = [];

for i=1:height,
    for j=1:width,
        for k=i+1:height,
            xline = [j j];
            yline = [i k];
            variance = var(improfile(img,xline,yline));
            if variance < smallestVar
               smallestVar = variance;
               smallestXline = xline;
               smallestYline = yline;
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You could definitely vectorize a lot of this code. I would start by profiling it first: mathworks.com/help/techdoc/ref/profile.html. The built-in MATLAB profiler is quite nice and will help you get started. However MATLAB code should always be vectorized when possible. See Maurits post. –  linuxuser27 Oct 31 '11 at 15:52

2 Answers 2

If it is just a horizontal line, i.e. all rows of a matrix, you can do it with:

sigma = var(matrix, 0, 2);
[val, idx] = sort(sigma, 'ascend');

Where val(1) will contain the minimum variance and idx(1) the corresponding row index. If you are looking for any straight line to scan along, have a look at the so called Trace Transform.

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This is a faster way of doing it (based on your description of the problem). Variable row will have the row number which has the minimum variance:

[~, row] = min(var(img, 0, 2));
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