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I have an input list of tuples whose entries are:

input_1 = [('v1',['f1','f2','f3']),('v2',['f1','f2','f4']),('v3',['f1','f2','f4'])]
                  ^^^^^^^^^               ^^^^^^^^^               ^^^^^^^^^

I want to know if there is a way to get a list of tuples containing "groups" like the following:

output_1 = [(['f1','f2'],['v1','v2','v3']) , (['f3'],['v1']), (['f4'],['v2','v3'])]

In case that's not enough information, other inputs/outputs might be:

input_2 = [('v1',['f1']),('v2',['f2','f3']),('v3',['f4'])]

output_2 = [(['f1'],['v1']) , (['f2','f3'],['v2']), (['f4'],['v3'])]

or

input_3 = [('v1',['f1','f2']),('v2',['f1','f2']),('v3',['f3']),('v4',['f1','f2'])]
                  ^^^^^^^^^          ^^^^^^^^^                        ^^^^^^^^^

output_3 = [(['f1','f2'],['v1','v2','v4']) , (['f3'],['v3'])]

I think there may be a way to achieve this with implementing the dictionary, but I'm new with Python and I can't figure out how to do this from the examples that I've seen:

Grouping integers by set membership in Python

Make sure all dicts in a list have the same keys

I think I could manage to do this, inefficiently, with a bunch of for loops, but is there a pythonic or clean alternative? Sorry if this question was not well posed but thank you for any input.

share|improve this question
    
Tricky. What do you expect as output from [('v1'),['f1','f2','f3']),('v2',['f2','f3','f4'])] or from [('v1'),['f1','f2','f3']),('v2',['f1','f4','f3'])]? What about [('v1'),['f1','f2','f3']),('v2',['f2','f3','f4']),('v3',['f1','f2','f4'])]? –  Tim Pietzcker Sep 12 '13 at 5:09
    
@TimPietzcker, I would expect: [('f1',['v1']),(['f2','f3'],['v1','v2']),(['f4'],['v2'])] for the first one... –  Charlie Sep 12 '13 at 5:14
    
For the second one, assuming you meant: [(['v1'],['f1','f2','f3']),('v2',['f1','f4','f3'])], The output should be: [(['f1','f3'],['v1','v2']),(['f2'],['v1']),(['f4'],['v2'])]. Sorry if I'm inconsistent with whether the first element in the output tuple is a list or just a string, it can always be a list. –  Charlie Sep 12 '13 at 5:21

1 Answer 1

up vote 4 down vote accepted

You could iterate through both levels then rebuild the input flipping the levels around; it gets you most of the way. The major issue is how would you group the v's that share f's...there are different permutations that could give you the same result as Tim suggests.

Different output grouping permutations...which is more valid?

Anyways: this is a start.

from collections import defaultdict

input_1 = [('v1',['f1','f2','f3']),
           ('v2',['f1','f2','f4']),
           ('v3',['f1','f2','f4'])]
input_2 = [('v1',['f1']),
           ('v2',['f2','f3']),
           ('v3',['f4'])]
input_3 = [('v1',['f1','f2']),
           ('v2',['f1','f2']),
           ('v3',['f3']),
           ('v4',['f1','f2'])]

def group(inp):
    out = defaultdict(list)
    for group in inp:
        key = group[0]
        for entry in group[1]:
            out[entry].append(key)
    return dict(out)

Outputs would look like:

print group(input_1)
# {'f1': ['v1', 'v2', 'v3'], 
#  'f2': ['v1', 'v2', 'v3'], 
#  'f3': ['v1'], 
#  'f4': ['v2', 'v3']}
print group(input_2)
# {'f1': ['v1'], 
#  'f2': ['v2'], 
#  'f3': ['v2'], 
#  'f4': ['v3']}
print group(input_3)
# {'f1': ['v1', 'v2', 'v4'], 
#  'f2': ['v1', 'v2', 'v4'], 
#  'f3': ['v3']}
share|improve this answer
    
+1, you could then do a second loop to find all the keys that have identical values and join them together. –  Tim Pietzcker Sep 12 '13 at 5:18
    
That looks great! The rest should be easy enough, though I do wonder if there is a more concise way, only because I've been pretty impressed with Python's list comprehensions. Then again, I'm not familiar yet with dictionaries. Either way I think this will do, thank you! –  Charlie Sep 12 '13 at 5:31
    
@TimPietzcker I think as you were alluding to, that can be more difficult than it would seem (see image) –  Nick T Sep 12 '13 at 5:36
    
Thank you for the thorough answer! And how did you make that graphic? I think I understand the distinction. I believe for my application, any of the possible outputs will work. The point, for my application, is that when the list of v's is large and are contained in many groups of f's, the number of unique tuples becomes small. Thanks @Nick T! –  Charlie Sep 12 '13 at 5:39
    
@Charlie Quick and dirty in Excel (was going to draw it in MSPaint but my tablet is being a jerk) –  Nick T Sep 12 '13 at 5:40

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