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.

Assume there is a some kind of a contest in which there are five boys and five girls:

boys = ["Boy1", "Boy2", "Boy3", "Boy4", "Boy5"]
girls = ["Girl1", "Girl2", "Girl3", "Girl4", "Girl5"]

Every boy is drawn against one girl and they play a game. What is the Pythonic way (probably involving itertools?) to yield all combinations of all pairs?

For example a combination could be:

combination1 = [("Boy1", "Girl1"), ("Boy2", "Girl2"), 
                ("Boy3", "Girl3"), ("Boy4", "Girl4"), ("Boy5", "Girl5")]

So Boy1 plays against Girl1 etc. If Boy1 is drawn against Girl1 then no other girl can play against him.

share|improve this question

3 Answers 3

up vote 2 down vote accepted

This should do the trick:

The shuffle gives some form of randomness to which boy and girl are paired with each other

In [115]: boys = ["Boy1", "Boy2", "Boy3", "Boy4", "Boy5"]

In [116]: girls = ["Girl1", "Girl2", "Girl3", "Girl4", "Girl5"]

In [117]: random.shuffle(girls)

In [118]: girls
Out[118]: ['Girl5', 'Girl4', 'Girl3', 'Girl1', 'Girl2']

In [119]: for i in itertools.izip(boys, girls):
   .....:     print i
   .....:     
('Boy1', 'Girl5')
('Boy2', 'Girl4')
('Boy3', 'Girl3')
('Boy4', 'Girl1')
('Boy5', 'Girl2')

EDIT: If you want every possible pairing, check this out:

In [126]: boys
Out[126]: ['Boy1', 'Boy2', 'Boy3', 'Boy4', 'Boy5']

In [127]: girls
Out[127]: ['Girl1', 'Girl2', 'Girl3', 'Girl4', 'Girl5']

In [128]: [girls[i:]+girls[:i] for i in xrange(len(girls))]
Out[128]: 
[['Girl1', 'Girl2', 'Girl3', 'Girl4', 'Girl5'],
 ['Girl2', 'Girl3', 'Girl4', 'Girl5', 'Girl1'],
 ['Girl3', 'Girl4', 'Girl5', 'Girl1', 'Girl2'],
 ['Girl4', 'Girl5', 'Girl1', 'Girl2', 'Girl3'],
 ['Girl5', 'Girl1', 'Girl2', 'Girl3', 'Girl4']]

In [129]: for combo in (itertools.izip(boys, g) for g in ( girls[i:]+girls[:i] for i in xrange(len(girls)) )):
   .....:    for pair in combo:
   .....:        print pair,
   .....:    print ''
   .....:     
('Boy1', 'Girl1') ('Boy2', 'Girl2') ('Boy3', 'Girl3') ('Boy4', 'Girl4') ('Boy5', 'Girl5') 
('Boy1', 'Girl2') ('Boy2', 'Girl3') ('Boy3', 'Girl4') ('Boy4', 'Girl5') ('Boy5', 'Girl1') 
('Boy1', 'Girl3') ('Boy2', 'Girl4') ('Boy3', 'Girl5') ('Boy4', 'Girl1') ('Boy5', 'Girl2') 
('Boy1', 'Girl4') ('Boy2', 'Girl5') ('Boy3', 'Girl1') ('Boy4', 'Girl2') ('Boy5', 'Girl3') 
('Boy1', 'Girl5') ('Boy2', 'Girl1') ('Boy3', 'Girl2') ('Boy4', 'Girl3') ('Boy5', 'Girl4') 

EDIT 2 (fixes EDIT 1):

>>> perms = itertools.permutations(girls)
>>> len([tuple(p) for p in (itertools.product(boys, g) for g in perms)])
120
>>> perms = itertools.permutations(girls)
>>> len(set(tuple(p) for p in (itertools.product(boys, g) for g in perms)))
120

I had to go with len because there are 120 possible pairings and I didn't want to clutter the post. This is why there is len(...) and len(set(...))

share|improve this answer
    
In fact I wanted all possible combinations of pairs so firstly I have to use permutations of girls, not just one shuffle. Probably I didn't make my point clear. But that helped me anyway, thanks. –  ecik Dec 20 '12 at 11:43
    
@ecik: check out my edit –  inspectorG4dget Dec 20 '12 at 11:49
    
aren't you suppoesed to make permutations of girls? For example, your method doesn't yield a combination: (B1G1,B2G3,B3G2,B4G5,B5G4). –  ecik Dec 20 '12 at 12:00
    
@ecik: Gotcha! Check out the new edit –  inspectorG4dget Dec 20 '12 at 12:14
    
thanks, I've accepted the answer :) –  ecik Dec 20 '12 at 20:42
from itertools import product

l1 = ["boy1","boy2","boy3"]
l2 = ["girl1","girl2","girl3"]

print list(product(l1,l2))

Output is:

[('boy1', 'girl1'), ('boy1', 'girl2'), ('boy1', 'girl3'), 
 ('boy2', 'girl1'), ('boy2', 'girl2'), ('boy2', 'girl3'), 
 ('boy3', 'girl1'), ('boy3', 'girl2'), ('boy3', 'girl3')]
share|improve this answer

Another idea:

>>> zip(boys, random.sample(girls, len(girls)))
[('Boy1', 'Girl3'), ('Boy2', 'Girl2'), ('Boy3', 'Girl4'), ('Boy4', 'Girl1'), 
 ('Boy5', 'Girl5')]
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.