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I have implemented a function to do this already, but I don't like the necessity for a loop. I don't see any way to avoid the loop however. Curious if there is a better way to do this.

function [ colored_img ] = colorImg ( img, ix, c )
% function [ colored_img ] = colorImg ( img, ix, c )
% 
% INPUTS
%   img - a 3D array representing the image to color.  
%   ix  - the indexes of the pixels to set to a new color.
%   c   - a vector representing the color to paint the pixels ix.
%
% OUTPUTS
%   colored_img - the colored image.


colored_img = img;
for jx = 1 : numel(c);
    a = colored_img(:,:,jx);
    a(ix) = c(jx);
    colored_img(:,:,jx) = a;
end




end
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What is the third dimension exactly? (R,G,B) ? –  Laurent' Oct 4 '11 at 17:14

1 Answer 1

up vote 0 down vote accepted

You can just replicate the indices for the colors.

imageSize = numel(img(:,:,1));
rgbIdx = bsxfun(@plus,ix(:),(0:2)*imageSize);

%# replicate the color so that there are as many 
%# entries as pixels to recolor
%# (skip this if you use a colormap
%#  of length nPixelsToRecolor)
nPixelsToRecolor = length(ix); %# assign this so that comment makes sense
repColor = repmat(c,nPixelsToRecolor,1); %# assuming color is 1-by-3

colored_img = img;
colored_img(rgbIdx(:)) = repColor(:);
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hmm, it seems from his code that the third dimension has the same size of the color vector, not simply R,G,B?! –  Laurent' Oct 4 '11 at 17:27
    
@Laurent': I assume that the OP wanted the code to work with both grayscale and RGB images; thus the loop over the color vector. –  Jonas Oct 4 '11 at 17:48
    
Wow, nice. Any idea on why such a conceptually simple problem, is so difficult to implement? Those are some very dense matlab lines... –  John Oct 4 '11 at 20:52
    
@John: It seems hard because we probably don't think in indices enough. –  Jonas Oct 4 '11 at 21:44

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