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I have a dictionary like:

dict = {'Books' : [(2,2), (3,4), (7,19)],
        'CDs'   : [(1,9), (3,5), (3,6), (10,9)],
        'Toys'  : [(0,1), (2,8), (3,3), (4,6)]}

I want to compare the VALUES of this dictionary and make another dict containing the similar index[0] in all the lists of tuples, Like:

dict = {'Books' : [(3,4)],
        'CDs'   : [(3,5), (3,6)],
        'Toys'  : [(3,3)]}

There can't be more than one similar tuples with index[0] in all values of dict!
I have found multiple answers for this problems but nothing positive happened.
The following dict is not my case:

dict = {'Books' : [(2,2), (3,4), (7,19)],
        'CDs'   : [(1,9), (2,7)(3,5), (3,6), (10,9)],
        'Toys'  : [(0,1), (2,8), (3,3), (4,6)]}

like '2' at index[0] occurs in all the values of dict!

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Please define "similar" precisely. –  Tim Pietzcker Mar 1 '13 at 6:44
    
Would the result of Chebyshev distance count as similar? EG: is (3,4) similar to (2,3) and (4,3)? –  JHolta Mar 1 '13 at 6:45
    
By "similar" maybe you mean "common"? As in: "make another dict containing the values for which index[0] is common to all the lists". Am I interpreting it right? (in your first example, 2 was not common - since it was absent from 'CDs' - but in your second example it became common) –  mgibsonbr Mar 1 '13 at 7:12
    
@ mgibsonbr: EXACTLY :) –  MHS Mar 1 '13 at 7:50

2 Answers 2

up vote 1 down vote accepted

First, you need a set with all the first elements (grouped by key):

firsts = [set([pair[0] for pair in v]) for v in dict.values()]

To find which value appear in all entries, you can do a set intersection:

similar = reduce(lambda x,y: x.intersection(y), firsts)

Then you can filter the dict to have only pairs that belong to the intersection:

filtered = { k:[pair for pair in v if pair[0] in similar] \
             for k,v in dict.items() }
share|improve this answer

If by "similar" you mean the first index of the tuples is the same, then something like:

d =  {'Books' : [(2,2), (3,4), (7,19)],
        'CDs'   : [(1,9), (3,5), (3,6), (10,9)],
        'Toys'  : [(0,1), (2,8), (3,3), (4,6)]}

def find_when(d, n):
    return {k: [el for el in v if el[0] == n] for k, v in d.iteritems()}

print find_when(d, 3)
# {'CDs': [(3, 5), (3, 6)], 'Books': [(3, 4)], 'Toys': [(3, 3)]}
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