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i have an argb value in the parameter of a function and the function needs to get rid of the agb values and only keep the r. How would you do that? thank-you

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up vote 2 down vote accepted

That is done with bitwise shifting and bitwise AND.

The uint in a 32 bit integer. Each of the A,R,G,B takes up 8 of its bits(one byte). And they appear I the same order as the name implies A,R,G,B

To get out b you just need to mask out all the other bits with a bitwise AND statement.

a=argb&255 because 255 in binary is 11111111, it only keeps the needed bits.

for g you first need to shift the bits then do the above. g=argb>>8&255

r is same but shift 16 bits

r=argb>>16&255

and a a=argb>>24&255

Hope that helps

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2  
Woah I think I will have to read up on bitwise operators Thanks – Killian Darkwater Aug 3 '09 at 10:02
6  
Heh, it's good to know about them. They can optimize certain things quite a bit. Plus, in my opinion they're fun ^^ Here's an example where it could speed up things quite a bit. It's sort of complicated though, but intreresting =) onjava.com/pub/a/onjava/2005/02/02/bitsets.html?page=2 – Clox Aug 3 '09 at 10:56

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