Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

probably basic, but couldn't find it in any other question. I tried:

print ["".join(seq) for seq in itertools.permutations("00011")]

but got lots of duplications, seems like itertools doesn't understand all zeroes and all ones are the same...

what am I missing?

EDIT:

oops. Thanks to Gareth I've found out this question is a dup of: permutations with unique values. Not closing it as I think my phrasing of the question is clearer.

share|improve this question
    
This answer by ralu contains code for generating unique permutations in Python. –  Gareth Rees Feb 17 '12 at 11:03
1  
This question is relevant, and the self-answer of the OP contains an efficient algorithm for generating all distinct permutations in python. –  Lauritz V. Thaulow Feb 17 '12 at 12:12

2 Answers 2

up vote 2 down vote accepted
list(itertools.combinations(range(5), 2))

returns a list of 10 positions where the two ones can be within the five-digits (others are zero):

[(0, 1),
 (0, 2),
 (0, 3),
 (0, 4),
 (1, 2),
 (1, 3),
 (1, 4),
 (2, 3),
 (2, 4),
 (3, 4)]

For your case with 2 ones and 13 zeros, use this:

list(itertools.combinations(range(5), 2))

which returns a list of 105 positions. And it is much faster than your original solution.

Now the function:

def combiner(zeros=3, ones=2):
    for indices in itertools.combinations(range(zeros+ones), ones):
        item = ['0'] * (zeros+ones)
        for index in indices:
            item[index] = '1'
        yield ''.join(item)

print list(combiner(3, 2))

['11000',
 '01100',
 '01010',
 '01001',
 '00101',
 '00110',
 '10001',
 '10010',
 '00011',
 '10100']

and this needs 14.4µs.

list(combiner(13, 2))

returning 105 elements needs 134µs.

share|improve this answer
    
Very smart way to think about the problem. –  pfctdayelise Apr 8 '13 at 2:08
set("".join(seq) for seq in itertools.permutations("00011"))
share|improve this answer
    
great! but when I try 2 ones and 13 zeroes (C(15,2)=105 options), it takes python forever to compute those 105 options... why is it so slow? –  ihadanny Feb 17 '12 at 10:54
1  
That's because this strategy goes through all 15! = 1,307,674,368,000 permutations of the input. –  Gareth Rees Feb 17 '12 at 10:57
    
bah. anything more efficient? probably missing some combinatorial ability of itertools, this can't be right... –  ihadanny Feb 17 '12 at 10:59

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.