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I have a proplem when dealing with images in matlab, i have a white image and when i try to print the gray level of the image and increment it by 1 , it gives me 255, it never give me 256. and here is the code. and the count is 0.

  function [ count ] = white( I )
    [row,col]=size(I);
    count=0;
    for x=1:row
        for y=1:col
            g=I(x,y);   %the value of the gray level on each pixel
            if((g+1) == 256)
            count=count+1;
            256
        end
    end
  end
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What format (data type) is I? I assume it is 8-bit? –  aganders3 Oct 31 '12 at 22:56

2 Answers 2

Your image class is probably uint8 and 255 is the maximal value of this class . For example:

 >>  uint8(inf)

ans =

  255

Instead try to cast to a different class, for example I=uint32(I) ...

Following @Aganders3, I'll also offer a solution to your code that doesn't use for loops:

count=sum(I(:)>threshold); % Credit to @Jonas and @Aganders3

where threshold is the gray level you want to threshold

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2  
Instead of using find, I suggest you use nnz(I>threshold) or the probably faster sum(I(:)>threshold). –  Jonas Oct 31 '12 at 23:39
    
Using a threshold is a better method, as it is much more flexible. I also agree with @Jonas that the call to find is unnecessary as it also provides the indices of the points (which he doesn't seem to need). –  aganders3 Oct 31 '12 at 23:47
    
@Joans is absolutely right. (sum seem to be faster than nnz in this case after a quick check) –  bla Oct 31 '12 at 23:49
    
I is array for image, I dont want to modify the values of I, i want to store I(x,y) in g and increment g by 1; so the problem is g;does matlab treat g by default as unit8? –  user1643699 Nov 1 '12 at 3:58
    
thanks all, I just write g=double(I(x,y)); and this solve the problem. –  user1643699 Nov 1 '12 at 4:18

I think nate is correct on why this is not working.

Also, consider a much simpler solution to your problem (given I is full of integers):

count = sum(vector(I == intmax(class(I))));

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+1 for the much simpler, more robust and faster solution –  Rody Oldenhuis Nov 1 '12 at 6:38

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