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In python, I have a dictionary like this...

pleio = {'firstLine': {'enf1': ['54', 'set'], 
                      'enf2': ['48', 'free'], 
                      'enf3': ['34', 'set'], 
                      'enf4': ['12', 'free']}

        'secondLine':{'enf5': ['56','bgb']
                      'enf6': ['67','kiol']
                      'enf7': ['11','dewd']
                      'enf8': ['464','cona']}}

I would like to make paired combinations with no repetition of the elements in the inner dictionary, to end up with a result like this...

{'enf3': ['34', 'set'], 'enf2': ['48', 'free']}
{'enf3': ['34', 'set'], 'enf1': ['54', 'set']}
{'enf3': ['34', 'set'], 'enf4': ['12', 'free']}
{'enf2': ['48', 'free'], 'enf1': ['54', 'set']}
{'enf2': ['48', 'free'], 'enf4': ['12', 'free']}
{'enf1': ['54', 'set'], 'enf4': ['12', 'free']}

I built a function which lets me do it...

import itertools

def pairwise():
    '''
    '''
    leti=[]
    for snp, enfs in pleio.items():        
        for x in itertools.combinations(enfs, 2 ):
            leti.append(x)    
    pleopairs=[]
    for i in leti:
        pipi={}
        for c in i:
            pipi[c]= enfs[c]
        pleopairs.append(pipi)

..but i was wondering if there's a more efficient way, like another specific function from itertools, or any other source. By the way, I found a function called "pairwise" in the itertools documentation. But I don't know how to adapt it, if would be possible in my case, or improve my attempt. Any help?

share|improve this question
    
enfs is going to be the last value from pleio processed. It is almost certainly not what you wanted to use. It is not clear what you do want to do in the second half of your function. – Martijn Pieters Nov 26 '12 at 10:14
    
Does pleio have more than one key? – Martijn Pieters Nov 26 '12 at 10:15
    
Yes, pleio has several hundreds of keys... I just wrote one, for sake of simplicity. In the second part of the function, I just iterate the dictionary gathering the values for each of the elements in the tuple pairs and building dictionaries of two elements, and appending them to a list. – peixe Nov 26 '12 at 10:22
    
Then you will get incorrect results, and the step is not necessary. – Martijn Pieters Nov 26 '12 at 10:23
    
But it actually works... Why incorrect? – peixe Nov 26 '12 at 10:26
up vote 3 down vote accepted

Your combinations approach was correct, you just need to turn the results of each combination into a dict again:

import itertools

def pairwise(input):
    for values in input.itervalues():
        for pair in itertools.combinations(values.iteritems(), 2):
            yield dict(pair)

This version is a generator, yielding pairs efficiently, nothing is held in memory any longer than absolutely necessary. If you need a list, just call list() on the generator:

list(pairwise(pleio))

Output:

>>> from pprint import pprint
>>> pprint(list(pairwise(pleio)))
[{'enf2': ['48', 'free'], 'enf3': ['34', 'set']},
 {'enf1': ['54', 'set'], 'enf3': ['34', 'set']},
 {'enf3': ['34', 'set'], 'enf4': ['12', 'free']},
 {'enf1': ['54', 'set'], 'enf2': ['48', 'free']},
 {'enf2': ['48', 'free'], 'enf4': ['12', 'free']},
 {'enf1': ['54', 'set'], 'enf4': ['12', 'free']}]

You can even combine the whole thing into a one-liner generator:

from itertools import combinations

for paired in (dict(p) for v in pleio.itervalues() for p in combinations(v.iteritems(), 2)):
    print paired

Which outputs:

>>> for paired in (dict(p) for v in pleio.itervalues() for p in combinations(v.iteritems(), 2)):
...     print paired
... 
{'enf3': ['34', 'set'], 'enf2': ['48', 'free']}
{'enf3': ['34', 'set'], 'enf1': ['54', 'set']}
{'enf3': ['34', 'set'], 'enf4': ['12', 'free']}
{'enf2': ['48', 'free'], 'enf1': ['54', 'set']}
{'enf2': ['48', 'free'], 'enf4': ['12', 'free']}
{'enf1': ['54', 'set'], 'enf4': ['12', 'free']}

If you are on Python 3, replace .itervalues() and .iteritems() by .values() and .items() respectively.

share|improve this answer
    
I tried with a dictionary of length > 1 and realised about my error... I was on my way to correct it, but this solution is absolutely amazing. Anyway, I wonder why itertools has not a straightforward pairwise generator for this. Thanks again! – peixe Nov 26 '12 at 10:47
    
@peixe: This is a straightforward pairwise generator. You just had to turn the output back to the format you wanted (you input key-value tuples, not dictionaries, so the output is tuples, not dictionaries). – Martijn Pieters Nov 26 '12 at 10:50
    
yeah, i meant "a straightforward generator" like this one. – peixe Nov 26 '12 at 10:51
    
@peixe: All we do is take your specific nested input format and massage it to the desired output format. The library generates the pairs for you according to your desired rule: combinations without repetitions. There isn't anything more the library can do without becoming too specific to be generally useful. – Martijn Pieters Nov 26 '12 at 10:53

If you want all pair combinations, you could probably use the following which is shorter, but I would not say this is more efficient.

[dict([(x,vx),(y,vy)]) for (x,vx) in pleio['firstLine'].iteritems()
                       for (y,vy) in pleio['firstLine'].iteritems()
                       if x < y]

Output

[{'enf3': ['34', 'set'], 'enf4': ['12', 'free']},
 {'enf2': ['48', 'free'], 'enf3': ['34', 'set']},
 {'enf2': ['48', 'free'], 'enf4': ['12', 'free']},
 {'enf1': ['54', 'set'], 'enf3': ['34', 'set']},
 {'enf1': ['54', 'set'], 'enf2': ['48', 'free']},
 {'enf1': ['54', 'set'], 'enf4': ['12', 'free']}]
share|improve this answer
    
Nice concise approach! – peixe Nov 26 '12 at 10:24

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