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I want a function that will give me all the possible strings of a specified length that are composed of only zeros and ones. For example:

spam(4)

should get me:

['0110', '0111', '0001', '0011', '0010', '0101', '0100', '1110', '1100', '1101', '1010', '1011', '1001', '1000']

I tried to use itertools.permutations for the job. So, this is what I did.

def getPerms(n):
    perms = getCandidates(n)
    res = []
    for i in perms:
        res.extend(permutations(i))
    res = clean(res)
    return res

def clean(ar):
    res = []
    for i in ar:
        temp = ""
        for j in i:
            temp += j
        res.append(temp)
    return list(set(res))

def getCandidates(n):
    res = []
    for i in range(1, n):
        res.append("1"*i + "0"*(n-i))
    return res

But this is horribly inefficient and gives a Memory Error on 10 as input.

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3  
To be clear -- you want it to contain at least one and at least one zero? Because 0000 and 1111 should be in your set otherwise. –  nneonneo Mar 23 '13 at 3:11
    
Yes, I need those possibilities. –  Gerard Mar 23 '13 at 14:27

3 Answers 3

You just want to generate bit-strings, evidently. Here's the fastest way I know:

for i in xrange(1, 2**n-1):
    yield '{:0{n}b}'.format(i, n=n)

This generates every bitstring of length exactly n containing at least one 1 and one 0.

Example:

>>> def gen(n):
...     for i in xrange(1, 2**n-1):
...         yield '{:0{n}b}'.format(i, n=n)
... 
>>> list(gen(4))
['0001', '0010', '0011', '0100', '0101', '0110', '0111', '1000', '1001', '1010', '1011', '1100', '1101', '1110']
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Or just ['{:0{}b}'.format(i, n) for i in range(1 << n)] –  georg Mar 23 '13 at 9:41
    
Thank you! That works perfectly! –  Gerard Mar 23 '13 at 14:23

Use itertools.product instead.

>>> import itertools
>>> [''.join(i) for i in itertools.product('01', repeat=4)]
['0000', '0001', '0010', '0011', '0100', '0101', '0110', '0111', '1000', '1001', '1010', '1011', '1100', '1101', '1110', '1111']

Using a function (assuming itertools has already been imported):

def bitGen(n):
    return [''.join(i) for i in itertools.product('01', repeat=n)]

For larger ns it might be more appropriate to return a generator.

def bitGen(n):
    return (''.join(i) for i in itertools.product('01', repeat=n))

# Alternatively:

def bitGen(n):
    for i in itertools.product('01', repeat=n):
        yield ''.join(i)
share|improve this answer
    
Or for i in itertools.product('01', repeat=n): yield ''.join(i) in the last one. –  nneonneo Mar 23 '13 at 3:20
    
@nneonneo thanks, I've put that in –  Volatility Mar 23 '13 at 3:24
    
I didn't think about using itertools.product(). Thanks! –  Gerard Mar 23 '13 at 14:24

In addition to the excellent answers above, if you want to continue down the path you started, here is a better implementation using yield:

from itertools import permutations

def spam(n):
    for perm in getPerms(n):
        print perm,
    print

def getPerms(n):
    for i in getCandidates(n):
        for perm in set(permutations(i)):
            yield ''.join(perm)

def getCandidates(n):
    for i in range(1, n):
        res = "1" * i + "0" * (n - i)
        yield res

spam(4)
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