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So in a BufferedImage, you receive a single integer that has the rgb values represented in it. So far i use the following to get the RGB values from it:

int r = (int)((Math.pow(256,3)+rgbs[k]) / 65536); //where rgbs is an array of integers, every single integer represents the RGB values combined in some way
int g = (int) (((Math.pow(256,3)+rgbs[k]) / 256 ) % 256 );
int b = (int) ((Math.pow(256,3)+rgbs[k])%256);

And so far, it works. What I need to do is figure out how to get an integer so i can use bufferedimage.setRGB(), because that takes the same type of data it gave me.

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4 Answers 4

up vote 37 down vote accepted

I think the code is something like:

int rgb = red;
rgb = (rgb << 8) + green;
rgb = (rgb << 8) + blue;

Also, I believe you can get the individual values using:

int red = (rgb >> 16) & 0xFF;
int green = (rgb >> 8) & 0xFF;
int blue = rgb & 0xFF;
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I don't think you need an int on the second two lines. And the third line is supposed to be "rgb = ...", right? –  Rahat Ahmed Jan 26 '11 at 4:31
    
It is a single integer. An integer contains 32 bits. The first 8 bits are for the alpha value (which is zero). The next 8 for the red, then next 8 for the green and the next 8 for the blue. Try it. If the final output equals you initial input then you know the conversion was done correctly. –  camickr Jan 26 '11 at 4:32
    
Erm, I think it would depend on the color depth. Your example looks like 24-bit color to me (8 bits per channel) - is that what BufferedImage expects? –  Matt Ball Jan 26 '11 at 4:33
    
Yes, I made the assumption the buffered image is of type BufferedImage.TYPE_INT_RGB. Maybe it isn't which is why the other formula is being used. In any case the concept is that (as far as i know) it is easier to shift bits to get the individual values instead of using the code posted. –  camickr Jan 26 '11 at 4:37
int rgb = ((r&0x0ff)<<16)|((g&0x0ff)<<8)|(b&0x0ff);

If you know that your r, g, and b values are never > 255 or < 0 you don't need the &0x0ff

Additionaly

int red = (rgb>>16)&0x0ff;
int green=(rgb>>8) &0x0ff;
int blue= (rgb)    &0x0ff;

No need for multipling.

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int rgb = new Color(r, g, b).getRGB();
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if r, g, b = 3 integer values from 0 to 255 for each color

then

rgb = 65536 * r + 256 * g + b;

the single rgb value is the composite value of r,g,b combined for a total of 16777216 possible shades.

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