132

It’s been a while and I’m having trouble wrapping my head around a algorithm I’m try to make. Basically, I have two lists and want to get all the combinations of the two lists.

I might not be explaining it correct so here’s a example.

name = 'a', 'b'
number = 1, 2

the output in this case would be:

1.  A1 B2
2.  B1 A2

The tricky part is I might have more items in the “name” variable than items in the “number” variable(number will always be equal to or less than the name variable).

I’m confused how to do all the combinations (nested for loop?) and even more confused on the logic to shift the items in the name variable in the event that there are more items in name than they are in the number list.

I’m not the best programmer but think I can give it a shot if someone can help me clarify the logic/algoriythm to achieve this. So I have just been stuck on nested for loops.

Update:

Here's the output with 3 variables and 2 numbers:

name = 'a', 'b', 'c'
number = 1, 2

output:

1.  A1 B2
2.  B1 A2
3.  A1 C2
4.  C1 A2
5.  B1 C2
6.  C1 B2
  • 1
  • 1
    @dm03514 I saw that, and found examples for somewhat similar goals using itertools but I'm prototyping in python but will write the final code in another language so I do not want to use any tools that are not avail elseway. – user1735075 Oct 17 '12 at 13:19
  • 1
    What you are asking for doesn't really make sense. If the first list contains A,B,C and the second contains 1,2, what result would you expect? It could be done if the example you gave had 4 different results of one letter and one number each (A1, A2, B1, B2), or if both lists had to have the same size. – interjay Oct 17 '12 at 13:24
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    I agree with interjay. Please specify the result in the non-equal size case, otherwise it's not possible to provide a general solution. – Bakuriu Oct 17 '12 at 13:25
  • Hi Everyone, I updated the answer to show the output with 3 names and 2 numbers..I thought I explained it well, not sure why the downvote. – user1735075 Oct 17 '12 at 13:27
60

Suppose len(list1) >= len(list2). Then what you appear to want is to take all permutations of length len(list2) from list1 and match them with items from list2. In python:

import itertools
list1=['a','b','c']
list2=[1,2]

[zip(x,list2) for x in itertools.permutations(list1,len(list2))]

Returns

[[('a', 1), ('b', 2)], [('a', 1), ('c', 2)], [('b', 1), ('a', 2)], [('b', 1), ('c', 2)], [('c', 1), ('a', 2)], [('c', 1), ('b', 2)]]
  • 1
    The result is exactly what I want, but is it possible to share the logic behind how to do it? If I convert my code to C or Java, I won't have access to zip or itertools(although they make life very very easy) – user1735075 Oct 17 '12 at 13:39
  • 3
    @user1735075 Have a look at the documentation – sloth Oct 17 '12 at 13:40
  • 1
    @user1735075: do you know that python is open source? So you may simply download the sources and see what do they do. +1 to Mr. Steak for pointing out that the documentation actually has a sample implementation that does not use zip and similar. – Bakuriu Oct 17 '12 at 13:42
  • awesome..they document their algorithm. very helpful thank you interjay and mr. steak! – user1735075 Oct 17 '12 at 13:42
  • 2
    i literally cannot get this to work, even with your example... all i get is a list of zip object.. :| – m1nkeh Aug 7 '18 at 10:00
387

The simplest way is to use itertools.product:

a = ["foo", "melon"]
b = [True, False]
c = list(itertools.product(a, b))
>> [("foo", True), ("foo", False), ("melon", True), ("melon", False)]
  • 8
    OP wasn't asking for a Cartesian product, and this answer (as well as most of the others) doesn't give the expected result specified in the question. – interjay Jul 18 '17 at 14:49
  • 11
    @interjay you are very right but as too many people seem to find this answer as correct then I can only assume that the title of the question is lacking context. – xpy Jul 20 '17 at 9:11
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    @xpy The title is too short to explain everything. That's why you need to read the actual question. – interjay Jul 20 '17 at 9:18
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    OP wanted permuations, but Google sends anyone looking for combinations (like me) to this answer - glad to see it's got 8 times the votes! – Josh Friedlander Dec 24 '18 at 15:38
116

May be simpler than the simplest one above:

>>> a = ["foo", "bar"]
>>> b = [1, 2, 3]
>>> [(x,y) for x in a for y in b]
[('foo', 1), ('foo', 2), ('foo', 3), ('bar', 1), ('bar', 2), ('bar', 3)]

without any import

  • Best solution! Thank you! Other solutions are either plain wrong or only work in specific cases like a > b etc. – Philipp Schwarz Feb 16 '18 at 10:09
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    Most Pythonic solution! (and avoids unnecessary imports) – Dalker Aug 4 '18 at 9:40
  • 3
    Time complexity is O(n^2) – Deepak Sharma Jan 26 at 18:41
  • Bets solution!! Bare basics is the best way always – Sabyasachi Feb 23 at 16:50
15

I was looking for a list multiplied by itself with only unique combinations, which is provided as this function.

import itertools
itertools.combinations(list, n_times)

Here as an excerpt from the Python docs on itertools That might help you find what your looking for.

Combinatoric generators:

Iterator                                 | Results
-----------------------------------------+----------------------------------------
product(p, q, ... [repeat=1])            | cartesian product, equivalent to a 
                                         |   nested for-loop
-----------------------------------------+----------------------------------------
permutations(p[, r])                     | r-length tuples, all possible 
                                         |   orderings, no repeated elements
-----------------------------------------+----------------------------------------
combinations(p, r)                       | r-length tuples, in sorted order, no 
                                         |   repeated elements
-----------------------------------------+----------------------------------------
combinations_with_replacement(p, r)      | r-length tuples, in sorted order, 
                                         | with repeated elements
-----------------------------------------+----------------------------------------
product('ABCD', repeat=2)                | AA AB AC AD BA BB BC BD CA CB CC CD DA DB DC DD
permutations('ABCD', 2)                  | AB AC AD BA BC BD CA CB CD DA DB DC
combinations('ABCD', 2)                  | AB AC AD BC BD CD
combinations_with_replacement('ABCD', 2) | AA AB AC AD BB BC BD CC CD DD
11

You might want to try a one line list comprehension:

>>> [name+number for name in 'ab' for number in '12']
['a1', 'a2', 'b1', 'b2']
>>> [name+number for name in 'abc' for number in '12']
['a1', 'a2', 'b1', 'b2', 'c1', 'c2']
8

a tiny improvement for the answer from interjay, to make the result as a flatten list.

>>> list3 = [zip(x,list2) for x in itertools.permutations(list1,len(list2))]
>>> import itertools
>>> chain = itertools.chain(*list3)
>>> list4 = list(chain)
[('a', 1), ('b', 2), ('a', 1), ('c', 2), ('b', 1), ('a', 2), ('b', 1), ('c', 2), ('c', 1), ('a', 2), ('c', 1), ('b', 2)]

reference from this link

4

Without itertools

[(list1[i], list2[j]) for i in xrange(len(list1)) for j in xrange(len(list2))]
4

Answering the question "given two lists, find all possible permutations of pairs of one item from each list" and using basic Python functionality (i.e., without itertools) and, hence, making it easy to replicate for other programming languages:

def rec(a, b, ll, size):
    ret = []
    for i,e in enumerate(a):
        for j,f in enumerate(b):
            l = [e+f]
            new_l = rec(a[i+1:], b[:j]+b[j+1:], ll, size)
            if not new_l:
                ret.append(l)
            for k in new_l:
                l_k = l + k
                ret.append(l_k)
                if len(l_k) == size:
                    ll.append(l_k)
    return ret

a = ['a','b','c']
b = ['1','2']
ll = []
rec(a,b,ll, min(len(a),len(b)))
print(ll)

Returns

[['a1', 'b2'], ['a1', 'c2'], ['a2', 'b1'], ['a2', 'c1'], ['b1', 'c2'], ['b2', 'c1']]

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