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.

How do you generate all the permutations of a list in Python, independently of the type of elements in that list.

For example:

permutations ([])
[]

permutations ([1,])
[1]

permutations ([1,2])
[1, 2]
[2, 1]

permutations ([1,2,3])
[1, 2, 3]
[1, 3, 2]
[2, 1, 3]
[2, 3, 1]
[3, 1, 2]
[3, 2, 1]

EDIT: Eliben pointed to a solution that's similar to mine altough simpler, so I'm choosing it as the Accepted Answer, altough apparently Python 2.6 (that hasn't been released yet) will have a builtin solution in the itertools module:

import itertools
itertools.permutations([1,2,3])
share|improve this question
2  
Perhaps you should consider pointing out that your question is about Python 2.5 –  Eli Bendersky Sep 20 '08 at 6:21
2  
I agree with the recursive, accepted answer - TODAY. However, this still hangs out there as a huge computer science problem. The accepted answer solves this problem with exponential complexity (2^N N=len(list)) Solve it (or prove you can't) in polynomial time :) See "traveling salesman problem" –  FlipMcF Mar 26 '09 at 16:06
9  
@FlipMcF It will be difficult to "solve it" in polynomial time, given it takes factorial time to even just enumerate the output... so, no, it's not possible. –  Thomas Apr 3 '13 at 2:54

18 Answers 18

up vote 89 down vote accepted

Starting with Python 2.6 (and if you're on Python 3) you have a standard-library tool for this: itertools.permutations.


If you're using an older Python (<2.6) for some reason or are just curious to know how it works, here's one nice approach, taken from http://code.activestate.com/recipes/252178/:

def all_perms(elements):
    if len(elements) <=1:
        yield elements
    else:
        for perm in all_perms(elements[1:]):
            for i in range(len(elements)):
                # nb elements[0:1] works in both string and list contexts
                yield perm[:i] + elements[0:1] + perm[i:]

A couple of alternative approaches are listed in the documentation of itertools.permutations. Here's one:

def permutations(iterable, r=None):
    # permutations('ABCD', 2) --> AB AC AD BA BC BD CA CB CD DA DB DC
    # permutations(range(3)) --> 012 021 102 120 201 210
    pool = tuple(iterable)
    n = len(pool)
    r = n if r is None else r
    if r > n:
        return
    indices = range(n)
    cycles = range(n, n-r, -1)
    yield tuple(pool[i] for i in indices[:r])
    while n:
        for i in reversed(range(r)):
            cycles[i] -= 1
            if cycles[i] == 0:
                indices[i:] = indices[i+1:] + indices[i:i+1]
                cycles[i] = n - i
            else:
                j = cycles[i]
                indices[i], indices[-j] = indices[-j], indices[i]
                yield tuple(pool[i] for i in indices[:r])
                break
        else:
            return

And another, based on itertools.product:

def permutations(iterable, r=None):
    pool = tuple(iterable)
    n = len(pool)
    r = n if r is None else r
    for indices in product(range(n), repeat=r):
        if len(set(indices)) == r:
            yield tuple(pool[i] for i in indices)
share|improve this answer
7  
This and other recursive solutions have a potential hazard of eating up all the RAM if the permutated list is big enough –  bgbg May 27 '09 at 7:05
1  
They also reach the recursion limit (and die) with large lists –  dbr Jun 9 '09 at 3:12
22  
bgbg, dbr: Its using a generator, so the function itself won't eat up memory. Its left to you on how to consume the iterator returned by all_perms (say you could write each iteration to disk and not worry about memory). I know this post is old but I'm writing this for the benefit of everyone who reads it now. Also now, the best way would be to use itertools.permutations() as pointed out by many. –  Jagtesh Chadha May 2 '11 at 12:40
7  
Not just a generator. It's using nested generators, which each yield to the previous one up the call stack, in case that's not clear. It uses O(n) memory, which is good. –  cdunn2001 Jul 19 '11 at 19:02
1  
PS: I fixed it, with for i in range(len(elements)) instead of for i in range(len(elements)+1). In fact, the singled-out element elements[0:1] can be in len(elements) different positions, in the result, not len(elements)+1. –  EOL May 29 '12 at 13:48

And in python 2.6:

import itertools
itertools.permutations([1,2,3])

(returned as a generator. Use list(permutations(l)) to return as a list.)

share|improve this answer
3  
Works in Python 3 too –  wheleph Sep 12 '09 at 16:39

The following code with Python 2.6 and above ONLY

First, import itertools:

import itertools

Permutation (order matters):

print list(itertools.permutations([1,2,3,4], 2))
[(1, 2), (1, 3), (1, 4),
(2, 1), (2, 3), (2, 4),
(3, 1), (3, 2), (3, 4),
(4, 1), (4, 2), (4, 3)]

Combination (order does NOT matter):

print list(itertools.combinations('123', 2))
[('1', '2'), ('1', '3'), ('2', '3')]

Cartesian product (with several iterables):

print list(itertools.product([1,2,3], [4,5,6]))
[(1, 4), (1, 5), (1, 6),
(2, 4), (2, 5), (2, 6),
(3, 4), (3, 5), (3, 6)]

Cartesian product (with one iterable and itself):

print list(itertools.product([1,2], repeat=3))
[(1, 1, 1), (1, 1, 2), (1, 2, 1), (1, 2, 2),
(2, 1, 1), (2, 1, 2), (2, 2, 1), (2, 2, 2)]
share|improve this answer
    
With "list" I get TypeError: 'itertools.permutations' object is not callable but with "tuple" its ok. Why is this? –  David Xia Oct 7 '11 at 21:07
    
I don't have this problem. Check your syntax. –  e-satis Oct 8 '11 at 14:45
1  
def permutations(head, tail=''):
    if len(head) == 0: print tail
    else:
        for i in range(len(head)):
            permutations(head[0:i] + head[i+1:], tail+head[i])

called as:

permutations('abc')
share|improve this answer

This solution implements a generator, to avoid holding all the permutations on memory:

def permutations (orig_list):
    if not isinstance(orig_list, list):
        orig_list = list(orig_list)

    yield orig_list

    if len(orig_list) == 1:
        return

    for n in sorted(orig_list):
        new_list = orig_list[:]
        pos = new_list.index(n)
        del(new_list[pos])
        new_list.insert(0, n)
        for resto in permutations(new_list[1:]):
            if new_list[:1] + resto <> orig_list:
                yield new_list[:1] + resto
share|improve this answer

The following code is an in-place permutation of a given list, implemented as a generator. Since it only returns references to the list, the list should not be modified outside the generator. The solution is non-recursive, so uses low memory. Work well also with multiple copies of elements in the input list.

def permute_in_place(a):
    a.sort()
    yield list(a)

    if len(a) <= 1:
        return

    first = 0
    last = len(a)
    while 1:
        i = last - 1

        while 1:
            i = i - 1
            if a[i] < a[i+1]:
                j = last - 1
                while not (a[i] < a[j]):
                    j = j - 1
                a[i], a[j] = a[j], a[i] # swap the values
                r = a[i+1:last]
                r.reverse()
                a[i+1:last] = r
                yield list(a)
                break
            if i == first:
                a.reverse()
                return

if __name__ == '__main__':
    for n in range(5):
        for a in permute_in_place(range(1, n+1)):
            print a
        print

    for a in permute_in_place([0, 0, 1, 1, 1]):
        print a
    print
share|improve this answer
2  
I made a slight improvement to the code - you can do an in-place swap with x, y = y, x - saves defining a function, and might make it marginally quicker –  dbr Jun 9 '09 at 3:14

A quite obvious way in my opinion might be also:

def permutList(l):
    if not l:
            return [[]]
    res = []
    for e in l:
            temp = l[:]
            temp.remove(e)
            res.extend([[e] + r for r in permutList(temp)])

    return res
share|improve this answer
#!/usr/bin/env python

def perm(a,k=0):
   if(k==len(a)):
      print a
   else:
      for i in xrange(k,len(a)):
         a[k],a[i] = a[i],a[k]
         perm(a, k+1)
         a[k],a[i] = a[i],a[k]

perm([1,2,3])

Output:

[1, 2, 3]
[1, 3, 2]
[2, 1, 3]
[2, 3, 1]
[3, 2, 1]
[3, 1, 2]

As I'm swapping the content of the list it's required a mutable sequence type as input. E.g. perm(list("ball")) will work and perm("ball") won't because you can't change a string. This Python implementation is inspired by the algorithm presented in the book Computer Algorithms by Horowitz, Sahni and Rajasekeran.

share|improve this answer
list2Perm = [1, 2.0, 'three']
listPerm = [[a, b, c]
            for a in list2Perm
            for b in list2Perm
            for c in list2Perm
            if ( a != b and b != c and a != c )
            ]
print listPerm

Output:

[
    [1, 2.0, 'three'], 
    [1, 'three', 2.0], 
    [2.0, 1, 'three'], 
    [2.0, 'three', 1], 
    ['three', 1, 2.0], 
    ['three', 2.0, 1]
]
share|improve this answer
2  
While it technically produces the desired output, you're solving something that could be O(n lg n) in O(n^n) - "slightly" inefficient for large sets. –  James Aug 22 '11 at 3:23
1  
@James: I am a little confused by the O(n log n) that you give: the number of permutations is n!, which is already much larger than O(n log n); so, I can't see how a solution could be O(n log n). However, it is true that this solution is in O(n^n), which is much larger than n!, as is clear from Stirling's approximation. –  EOL May 29 '12 at 13:38

In a funcional style



    def addperm(x,l):
        return [ l[0:i] + [x] + l[i:]  for i in range(len(l)+1) ]

    def perm(l):
        if len(l) == 0:
            return [[]]
        return [x for y in perm(l[1:]) for x in addperm(l[0],y) ]

    print perm([ i for i in range(3)])

The result:



    [[0, 1, 2], [1, 0, 2], [1, 2, 0], [0, 2, 1], [2, 0, 1], [2, 1, 0]]

share|improve this answer

Note that this algorithm has an n factorial time complexity, where n is the length of the input list

Print the results on the run:

global result
result = [] 

def permutation(li):
if li == [] or li == None:
    return

if len(li) == 1:
    result.append(li[0])
    print result
    result.pop()
    return

for i in range(0,len(li)):
    result.append(li[i])
    permutation(li[:i] + li[i+1:])
    result.pop()    

Example:

permutation([1,2,3])

Output:

[1, 2, 3]
[1, 3, 2]
[2, 1, 3]
[2, 3, 1]
[3, 1, 2]
[3, 2, 1]
share|improve this answer

One can indeed iterate over the first element of each permutation, as in tzwenn's answer; I prefer to write this solution this way:

def all_perms(elements):
    if len(elements) <= 1:
        yield elements  # Only permutation possible = no permutation
    else:
        # Iteration over the first element in the result permutation:
        for (index, first_elmt) in enumerate(elements):
            other_elmts = elements[:index]+elements[index+1:]
            for permutation in all_perms(other_elmts): 
                yield [first_elmt] + permutation

This solution is about 30 % faster, apparently thanks to the recursion ending at len(elements) <= 1 instead of 0. It is also much more memory-efficient, as it uses a generator function (yield), like in Riccardo Reyes's solution.

share|improve this answer

Forgive my python illiteracy as I won't be offering the solution in python. As I do not know what method python 2.6 uses to generate the permutations and eliben's one looks like Johnson-Trotter permutation generation, you might look for article in Wikipedia on Permutations and their generation that looks quite like unrank function in paper by Myrvold and Ruskey.

It would seem to me that this could be used in a generator in the same way as in other replies to lessen the memory requirement considerably. Just remember that the permutations will not be in lexicographic order.

share|improve this answer

Here is an algorithm that works on a list without creating new intermediate lists similar to Ber's solution at http://stackoverflow.com/a/108651/184528.

def permute(xs, low=0):
    if low + 1 >= len(xs):
        yield xs
    else:
        for p in permute(xs, low + 1):
            yield p        
        for i in range(low + 1, len(xs)):        
            xs[low], xs[i] = xs[i], xs[low]
            for p in permute(xs, low + 1):
                yield p        
            xs[low], xs[i] = xs[i], xs[low]

for p in permute([1, 2, 3, 4]):
    print p

You can try the code out for yourself here: http://repl.it/J9v

share|improve this answer

I used an algorithm based on the factorial number system- For a list of length n, you can assemble each permutation item by item, selecting from the items left at each stage. You have n choices for the first item, n-1 for the second, and only one for the last, so you can use the digits of a number in the factorial number system as the indices. This way the numbers 0 through n!-1 correspond to all possible permutations in lexicographic order.

from math import factorial
def permutations(l):
    permutations=[]
    length=len(l)
    for x in xrange(factorial(length)):
        available=list(l)
        newPermutation=[]
        for radix in xrange(length, 0, -1):
            placeValue=factorial(radix-1)
            index=x/placeValue
            newPermutation.append(available.pop(index))
            x-=index*placeValue
        permutations.append(newPermutation)
    return permutations

permutations(range(3))

output:

[[0, 1, 2], [0, 2, 1], [1, 0, 2], [1, 2, 0], [2, 0, 1], [2, 1, 0]]

This method is non-recursive, but it is slightly slower on my computer and xrange raises an error when n! is too large to be converted to a C long integer (n=13 for me). It was enough when I needed it, but it's no itertools.permutations by a long shot.

share|improve this answer
2  
Hi, welcome to Stack Overflow. Although posting the brute force method has its merits, if you don't think your solution is better than the accepted solution, you probably shouldn't post it (especially on an old question that already has so many answers). –  Hannele Aug 8 '13 at 20:43
from __future__ import print_function

def perm(n):
    p = []
    for i in range(0,n+1):
        p.append(i)
    while True:
        for i in range(1,n+1):
            print(p[i], end=' ')
        print("")
        i = n - 1
        found = 0
        while (not found and i>0):
            if p[i]<p[i+1]:
                found = 1
            else:
                i = i - 1
        k = n
        while p[i]>p[k]:
            k = k - 1
        aux = p[i]
        p[i] = p[k]
        p[k] = aux
        for j in range(1,(n-i)/2+1):
            aux = p[i+j]
            p[i+j] = p[n-j+1]
            p[n-j+1] = aux
        if not found:
            break

perm(5)
share|improve this answer

This is inspired by the Haskell implementation using list comprehension:

def permutation(list):
    if len(list) == 0:
        return [[]]
    else:
        return [[x] + ys for x in list for ys in permutation(delete(list, x))]

def delete(list, item):
    lc = list[:]
    lc.remove(item)
    return lc
share|improve this answer

The beauty of recursion:

>>> import copy
>>> def perm(prefix,rest):
...      for e in rest:
...              new_rest=copy.copy(rest)
...              new_prefix=copy.copy(prefix)
...              new_prefix.append(e)
...              new_rest.remove(e)
...              if len(new_rest) == 0:
...                      print new_prefix + new_rest
...                      continue
...              perm(new_prefix,new_rest)
... 
>>> perm([],['a','b','c','d'])
['a', 'b', 'c', 'd']
['a', 'b', 'd', 'c']
['a', 'c', 'b', 'd']
['a', 'c', 'd', 'b']
['a', 'd', 'b', 'c']
['a', 'd', 'c', 'b']
['b', 'a', 'c', 'd']
['b', 'a', 'd', 'c']
['b', 'c', 'a', 'd']
['b', 'c', 'd', 'a']
['b', 'd', 'a', 'c']
['b', 'd', 'c', 'a']
['c', 'a', 'b', 'd']
['c', 'a', 'd', 'b']
['c', 'b', 'a', 'd']
['c', 'b', 'd', 'a']
['c', 'd', 'a', 'b']
['c', 'd', 'b', 'a']
['d', 'a', 'b', 'c']
['d', 'a', 'c', 'b']
['d', 'b', 'a', 'c']
['d', 'b', 'c', 'a']
['d', 'c', 'a', 'b']
['d', 'c', 'b', 'a']
share|improve this answer

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.