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i want to convert RGB values to HSV values . But if I devide 9 by 28, octave calculate 0. Can anyone explain me the reason??

function [hsv] = RGBtoHSV()
    im = imread('picture.png'); 
    R = im(:,:,1); 
    G = im(:,:,2); 
    B = im(:,:,3);

    len = length(R); % R, G, B should have the same length
    for i = 1:len
        MAX = max([R(i),G(i),B(i)]);
        MIN = min([R(i),G(i),B(i)]);
        S = 0;
        if MAX == MIN
            H = 0;
        elseif MAX == R(i)
            disp(G(i) - B(i)); % 9 
            disp(MAX - MIN);  % 28
            H = 0.6 * ( 0 + ( (G(i) - B(i)) / MAX - MIN) ); % 0
            disp(H) % why i get 0 if try to calculate ( 0 + ( (G(i) - B(i)) / MAX - MIN)?
        ....
            end
        return;
    end
endfunction

RGBtoHSV()

Chris :D

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Does Octave have different types for integer (whole) numbers and real (floating point) numbers? 9/28 = 0 is true when working with integers. – Jongware Jun 2 '14 at 20:53
    
no disp(9/28); works. solution : 0.32143 – user2372976 Jun 2 '14 at 20:56
up vote 4 down vote accepted

You must cast the image into Double by doing:

im = double(imread('picture.png'));

This will solve your issues which happens since the image is type UINT8.

share|improve this answer
    
That's right! thank you. – user2372976 Jun 2 '14 at 21:02
    
You're welcome. – Drazick Jun 2 '14 at 21:04

You can also use Octave's builtin rgb2hsv function instead of writing your own.

im_rgb = imread ("picture.png"); 
im_hsv = rgb2hsv (im_rgb);

If this is an exercise, then I'd suggest you look at its source, enter type rgb2hsv at the Octave prompt, and see how its implemented.

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