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Let's a=109 or 1101101 in binary. How do I iterate over bits of this number, eg: [64, 32, 8, 4, 1]

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wiki.python.org/moin/BitwiseOperators should be enough –  Savino Sguera Jan 17 '12 at 17:15
    
If you're looking for converting numbers you can use bin(109) or int('1101101', 2). –  Rob Wouters Jan 17 '12 at 17:20
    
map(lambda x: int(x), bin(NUMBER)[2:]). But this solution is probably too easy and unpythonic. ;) –  Gandaro Jan 17 '12 at 17:28
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5 Answers

up vote 26 down vote accepted

There's a trick for just getting the 1's out of the binary representation without having to iterate over all the intervening 0's:

def bits(n):
    while n:
        b = n & (~n+1)
        yield b
        n ^= b


>>> for b in bits(109):
    print(b)


1
4
8
32
64
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Nice one. Made me do some timings. –  freegnu Jan 17 '12 at 19:39
    
really neat, can't help to amaze –  castiel Jul 26 '13 at 1:32
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My approach:

def bits(number):
    bit = 1
    while number >= bit:
       if number & bit:
           yield bit
       bit <<= 1

I don't think there is a builtin function for it.

I also wonder if there isn't a better approach to whatever you are doing. There's a good chance you don't really want to iterate over the bits like this. They may be a much better way.

Out of curiosity I ran some timing on the methods posted here, my results:

Winston 2.35238099098
F.J. 6.21106815338
F.J. (2) 5.21456193924
Sven 2.90593099594
Duncan 2.33568000793
freegnu 4.67035484314

F.J. converts to a string, I'm guessing that hurts his performance. The various optimisation attempts help, but not enough Sven produces the reverse of everybody else, which might be an advantage if you really needed that. Duncan's approach wins speedwise (just barely)

Again with 340282366920938463463374607431768211457 instead of 109:

Winston 44.5073108673
F.J. 74.7332041264
Sven 47.6416211128
Duncan 2.58612513542

Nice, Duncan! It should be noted that this is pretty much the best case for Duncan's method, so it won't always have this dramatic an advantage.

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2  
That loop condition should probably be number >= bit. –  NPE Jan 17 '12 at 17:17
    
@aix, thanks. Fixed. –  Winston Ewert Jan 17 '12 at 17:23
    
how do the times work out for other values, e.g. for a=340282366920938463463374607431768211457 ? –  Duncan Jan 17 '12 at 17:39
    
@Duncan, added. –  Winston Ewert Jan 17 '12 at 18:05
    
Can you compare the timings of my improvement on @F J's version. –  freegnu Jan 17 '12 at 18:35
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>>> [2**i for i, v in enumerate(bin(109)[:1:-1]) if int(v)]
[1, 4, 8, 32, 64]

Obviously the order is reversed here, you could either just use this or reverse the result:

>>> [2**i for i, v in enumerate(bin(109)[:1:-1]) if int(v)][::-1]
[64, 32, 8, 4, 1]

edit: Here is a slightly longer version that should be more efficient:

from itertools import takewhile, count
[p for p in takewhile(lambda x: x <= 109, (2**i for i in count())) if p & 109]
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+1 for oneliner –  Max Li Jan 17 '12 at 17:59
    
The string conversion is faster than the iterator version on the worst case scenario 340282366920938463463374607431768211457 and maybe anything over a certain size. I changed your if int() test into a string test =='1' to speed things up. @Duncan's still beats it handily tho. –  freegnu Jan 17 '12 at 19:33
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Python 2.7:

def binary_decomposition(x):
    p = 2 ** (int(x).bit_length() - 1)
    while p:
        if p & x:
            yield p
        p //= 2

Example:

>>> list(binary_decomposition(109))
[64, 32, 8, 4, 1]
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1  
@joaquin: Did you read the first line of my answer? –  Sven Marnach Jan 17 '12 at 17:40
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The efficiency of F.J.'s answer can be dramatically improved.

from itertools import count,takewhile
[2**i for i in takewhile(lambda x:109>2**x,count()) if 109&2**i][::-1]

I like one liners :)

I did a quick timeit.Timer.timeit() against this and @Duncan. Duncan still wins but not the one liner is at least in the same class.

from timeit import Timer
duncan="""\
def bits(n):
 while n:
  b=n&(~n+1)
  yield b
  n^=b
"""
Duncan=Timer('list(bits(109))[::-1]',duncan)
Duncan.timeit()
4.3226630687713623
freegnu=Timer('[2**i for i in takewhile(lambda x:109>2**x,count()) if 109&2**i][::-1]','from itertools import count,takewhile')
freegnu.timeit()
5.2898638248443604
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