34

Why does itertools.permutations() return a list of characters or digits for each permutation, instead of just returning a string?

For example:

>>> print([x for x in itertools.permutations('1234')])
>>> [('1', '2', '3', '4'), ('1', '2', '4', '3'), ('1', '3', '2', '4') ... ]

Why doesn't it return this?

>>> ['1234', '1243', '1324' ... ]
53

itertools.permutations() simply works this way. It takes an arbitrary iterable as an argument, and always returns an iterator yielding tuples. It doesn't (and shouldn't) special-case strings. To get a list of strings, you can always join the tuples yourself:

list(map("".join, itertools.permutations('1234')))
3
  • 4
    Why are you using map over this when not a list comp, gen-expr, or other method. – Jakob Bowyer Nov 13 '11 at 19:16
  • I think map("".join, itertools.permutations('1234')) is sufficient. Adding the list() doesn't make a difference. – Bill Cheng Jun 5 '16 at 3:57
  • 3
    @BillCheng In Python 2, the result of map() already is a list, that's true, but this question was about Python 3. In most cases, you should be able to make do with the generator object returned by map() in Python 3, but for easier testing I added the explicit conversion to a list. – Sven Marnach Jun 5 '16 at 20:50
15

Because it expects an iterable as a parameter and doesn't know, it's a string. The parameter is described in the docs.

http://docs.python.org/library/itertools.html#itertools.permutations

2

I have not tried, but most likely should work

comb = itertools.permutations("1234",4)
for x in comb: 
  ''.join(x)    
2

Perumatation can be done for strings and list also, below is the example..

x = [1,2,3]

if you need to do permutation the above list

print(list(itertools.permutations(x, 2)))

# the above code will give the below..
# [(1,2),(1,3),(2,1)(2,3),(3,1),(3,2)]

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