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I have a Python list which holds pairs of key/value:

l=[ [1, 'A'], [1, 'B'], [2, 'C'] ]

I want to convert the list into a dictionary, where multiple values per key would be aggregated into a tuple:

{ 1:('A', 'B'), 2:('C',) }

The iterative solution is trivial:

l=[ [1, 'A'], [1, 'B'], [2, 'C'] ]
d={}
for pair in l:
    if d.has_key(pair[0]):
        d[pair[0]]=d[pair[0]]+tuple(pair[1])
    else:
        d[pair[0]]=tuple(pair[1])

print d

{1: ('A', 'B'), 2: ('C',)}

Is there a more elegant, Pythonic solution for this task?

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1  
s/multilpe/multiple –  vstrien Mar 21 '11 at 13:36
    
has_key is on its way to the dustbin of Python history - if you must test for the existence of a key in a dict, please use the new syntax if key in dict:. But the "A" answer to your question is @eumiro's defaultdict approach. –  Paul McGuire Mar 21 '11 at 13:43
2  
@vstrien Thanks. Adding a /g would make it more generic :-) –  Adam Matan Mar 21 '11 at 13:51

4 Answers 4

up vote 25 down vote accepted
from collections import defaultdict

d1 = defaultdict(list)

for k, v in l:
    d1[k].append(v)

d = dict((k, tuple(v)) for k, v in d1.iteritems())

d contains now {1: ('A', 'B'), 2: ('C',)}

d1 is a temporary defaultdict with lists as values, which will be converted to tuples in the last line. This way you are appending to lists and not recreating tuples in the main loop.

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+1 Extra nice, it's a new tool for me. –  Adam Matan Mar 22 '11 at 12:14

Using lists instead of tuples as dict values:

l=[ [1, 'A'], [1, 'B'], [2, 'C'] ]
d={}
for key, val in l:
    d.setdefault(key, []).append(val)

print d
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This method is relatively efficient and quite compact:

reduce(lambda x, (k,v): x[k].append(v) or x, l, defaultdict(list))
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Are the keys already sorted in the input list? If that's the case, you have a functional solution:

import itertools

lst = [(1, 'A'), (1, 'B'), (2, 'C')]
dct = dict((key, tuple(v for (k, v) in pairs)) 
           for (key, pairs) in itertools.groupby(lst, lambda pair: pair[0]))
print dct
# {1: ('A', 'B'), 2: ('C',)}
share|improve this answer
    
If you import operator, you can write itertools.groupby(sorted(lst), operator.itemgetter(0)) –  eumiro Mar 21 '11 at 14:25
    
@eumiro. yeah, I know. Note that using sorted here may change the desired output, that's why I asked if they are already sorted (at least by key). –  tokland Mar 21 '11 at 14:33

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