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I have a c++ bitset of given length. I want to generate all possible combinations of this bitset for which I thought of adding 1 2^bitset.length times. How to do this? Boost library solution is also acceptable

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3  
What have you tried ? –  Pheonix Apr 28 '12 at 11:18
1  
well... I couldn't see an add operation and manually checking all bits doesn't seem feasible. So I haven't tried anything –  wirate Apr 28 '12 at 11:21

2 Answers 2

up vote 2 down vote accepted

All possible combinations? Just use 64-bit unsigned integer and make your life easier.

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Then i will have to convert that integer to bitset again and again to retrieve values of individual bits. Since bitset< some variable size > is not possible in STL bitset, I will use boost. And if I make bitset< value > mybitset, and value = 2, I will require 00010 instead of 10. Is that possible? Hope it makes sense to you :) –  wirate Apr 28 '12 at 11:34
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No, you won't have to convert it back to bitset to retrieve individual bits -- learn how to use bitwise operators. 00010 is the same as 10; it's only up to you how many leading zeros of an integer you want to extract. –  zvrba Apr 28 '12 at 11:37
    
you mean I can see if if third bit of an int is set or not? Please point me somewhere! –  wirate Apr 28 '12 at 11:39
    
@wirate: Learn the magic of the &, << and >> operators when applied to integers. –  Alexey Frunze Apr 28 '12 at 11:45
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bool isNthBitSet(unsigned long long bitset, unsigned char bitNum) { return bitset & (1ULL << bitNum); } Of course I ignored overflow problems. –  Tadeusz Kopec Apr 28 '12 at 11:45

Try this:

/*
 * This function adds 1 to the bitset.
 *
 * Since the bitset does not natively support addition we do it manually. 
 * If XOR a bit with 1 leaves it as one then we did not overflow so we can break out
 * otherwise the bit is zero meaning it was previously one which means we have a bit 
 * overflow which must be added 1 to the next bit etc.
 */
void increment(boost::dynamic_bitset<>& bitset)
{
    for(int loop = 0;loop < bitset.count(); ++loop)
    {
        if ((bitset[loop] ^= 0x1) == 0x1)
        {    break;
        }
    }
}
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+1 v.useful - ty –  kfmfe04 Mar 19 '13 at 8:59

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