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.

Suppose I have the following list:

 ls = ['a', 'b', 'c', 'd']

I get a combination using

 list(itertools.combinations(iterable, 2))  

 >>> [('a', 'b'), ('a', 'c'), ('a', 'd'), ('b', 'c'), ('b', 'd'), ('c', 'd')]

What I'd like to do is break this combination into subsets, such that the first member of each tuple in the subset is the same:

 subset1: [('a', 'b'), ('a', 'c'), ('a', 'd')]
 subset2: [('b', 'c'), ('b', 'd'), 
 subset3: [('c', 'd')]

Any ideas?

share|improve this question
1  
The first member of the third tuple in subset2 is c, while the other first members are b. Is that intentional? –  Kevin Aug 14 '12 at 19:05
    
Shouldn't subset2 instead be split into two subsets? –  krlmlr Aug 14 '12 at 19:05
    
Sorry, just made the edit –  Renklauf Aug 14 '12 at 19:08

3 Answers 3

up vote 2 down vote accepted
>>> import itertools as it
>>> ls = ['a', 'b', 'c', 'd']
>>> ii=it.groupby( it.combinations(ls, 2), lambda x: x[0] )
>>> for key, iterator in ii:
...     print key, list(iterator)
... 
a [('a', 'b'), ('a', 'c'), ('a', 'd')]
b [('b', 'c'), ('b', 'd')]
c [('c', 'd')]

If you don't like lambda, you could use operator.itemgetter(0) instead of lambda x: x[0].

share|improve this answer
    
@Very nice. Thanks for the reminder viz. groupby(). –  Renklauf Aug 14 '12 at 19:20
1  
This answer also has the benefit over the others thus far of not requiring that the list of all combinations actually get created (groupby can process a generator just as well as an instantiated list, but the others process the input sequence multiple times). Would be a much more significant advantage if ls were string.ascii_letters (52 elements) and they were taken 5 at a time instead of just 2. –  Paul McGuire Aug 14 '12 at 19:23
subset = [('a', 'b'), ('a', 'c'), ('a', 'd'), ('b', 'c'), ('b', 'd'), ('c', 'd')]
subsets = [[x for x in subset where x[0] == y] for y in ['a','b','c']]
share|improve this answer

try this:

[filter(lambda k:k[0]==p,comb) for p in ls]

where:

ls = ['a', 'b', 'c', 'd']

comb = [('a', 'b'), ('a', 'c'), ('a', 'd'), ('b', 'c'), ('b', 'd'), ('c', 'd')]

the output is:

[[('a', 'b'), ('a', 'c'), ('a', 'd')], [('b', 'c'), ('b', 'd')], [('c', 'd')], []]
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.