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Here is and example for the problem. Suppose I have two numbers int basic_block and int block. basic block is some number that is a power of 2 and block is some number that is divisible by basic_block. So consider this example where basic_block = 128 and block = 640. I need to divide the block into different numbers that are powers of two. The two numbers should be grater than or equal to basic_block. So I would have something like 512 and 128. In this case I should get the first the number as 512 since it the largest power of 2 less than 640.

Is there a function that I can use to do this?

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"I need to divide the block into two numbers that are powers of two" <- This isn't always possible. Your example is a lucky exception. –  us2012 Sep 17 '13 at 20:28
    
I meant different numbers not just two. Sorry for the confusion. –  user2731223 Sep 17 '13 at 20:31
    
Well, you can extract the lowest power of two from a number with x & -x (make sure x is unsigned). You then remove that power of two from x and then extract the next one, and so on. But I'm not really sure what you want here.. –  harold Sep 17 '13 at 20:32
    
@user2731223: It's possible if and only if the popcount of the number is two :-) –  Kerrek SB Sep 17 '13 at 20:33
1  
Try the logarithm with base 2 and floor. –  Bernhard Sep 17 '13 at 20:37

3 Answers 3

Just loop through the powers of two until your result is bigger than block. If you're lucky, the result of (block - 2^(n-1)) with (2^n)>block is another power of two, if not, rerun this function with block-2^(n-1) until block is 1...

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I would use the C math library to do the following:

function int getBlockSize(int value) {
  return (int)(floor(log2(value)));
}

Don't forget to link to the math library with the -lm compiler flag

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Is there a function that I can use to do this?

Yes, the one you write to do it.

You basically will need to either recursively break down a number into the powers of 2 that can sum to it, or do it in a loop.

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