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I have a list [2,3,4]. How do I find all possible sequence of elements in the list? So the output should be: [2,3,4] [2,4,3] [3,2,4] [3,4,2] [4,2,3] [4,3,2]

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possible duplicate of How to generate all permutations of a list in Python –  Ken Redler Jan 30 '12 at 7:33
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4 Answers 4

up vote 21 down vote accepted

You can do this easily using itertools.permutations():

>>> from itertools import permutations
>>> list(permutations([2, 3, 4]))
[(2, 3, 4), (2, 4, 3), (3, 2, 4), (3, 4, 2), (4, 2, 3), (4, 3, 2)]

And if for some reason you need lists instead of tuples:

>>> map(list, permutations([2, 3, 4]))
[[2, 3, 4], [2, 4, 3], [3, 2, 4], [3, 4, 2], [4, 2, 3], [4, 3, 2]]
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Hope the OPs list has all unique elements. –  Droogans Jan 27 '12 at 22:34
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Maybe add a link to docs.python.org/library/itertools.html#itertools.permutations? –  Jordan Gray Jan 27 '12 at 22:37
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You are looking for permutations, something like this should work:

import itertools
itertools.permutations([2,3,4])
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a start of a great lottery program except data would be formated as such

ist(permutations([2, 3, 4],[7,2,5],[8,1,4,9]))

the problem is that the first group is used to create numbers in first column only the secound is for 2 column and 3rd is for 3rd

the output will be a set of 3 numbers just that the permutation is different

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Just so you know:

def unique_perms(elems):
    """returns non-duplicate permutations 
       if duplicate elements exist in `elems`
    """
    from itertools import permutations
    return list(set(permutations(elems)))

But if you're doing something like this:

print len(unique_perms(elems))

Then try this:

def fac(n):
    """n!"""
    if n == 1: return n
    return n * fac(n -1)

def unique_perm_count(elems)
    n = len(elems)
    return fac(2 * n) / fac(n) ** 2
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