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I have a list like that :

[['0', '10'], ['0', '11'], ['0', '12'], ['1', '10'], ['1', '11']]

How can i group the elements in the list, for example like above?

['0': ['10','11','12']],['1': ['10','11']]
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1  
Did you mean to have ['1','11'] as the last item in the list? –  Faruk Sahin Dec 5 '12 at 9:05
    
@FarukSahin panpa yes, i edited it –  tchike Dec 5 '12 at 9:06
1  
Is the order of keys (0 and 1) in the result important? –  NPE Dec 5 '12 at 9:08
    
@NPE, there is no order –  tchike Dec 5 '12 at 9:08
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3 Answers

up vote 6 down vote accepted

iterate - put into dictionary.

d = {}
l = [['0', '10'], ['0', '11'], ['0', '12'], ['1', '10'], ['1', '11']]
for p in l:
    if p[0] in d:
        d[p[0]].append(p[1])
    else:
        d[p[0]] = [p[1]]

>>> d
{'1': ['10', '11'], '0': ['10', '11', '12']}

using defaultdict:

from collections import defaultdict

d = defaultdict(list)
l = [['0', '10'], ['0', '11'], ['0', '12'], ['1', '10'], ['1', '11']]
for p in l:
    d[p[0]].append(p[1])

one-liner: using dict comprehension (a little wasteful, but no imports and requires 2.7+)

>>> dd = {key: [i[1] for i in l if i[0] == key] for (key, value) in l}
>>> dd
{'1': ['10', '11'], '0': ['10', '11', '12']}
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1  
this one-liner will work in python 2.6 as well as 2.7 : dict((key,[i[1] for i in l if i[0] == key]) for (key, value) in l), though groupby() based solution is much better here. –  undefined is not a function Dec 5 '12 at 11:23
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You could use collections.defaultdict:

import collections

l = [['0', '10'], ['0', '11'], ['0', '12'], ['1', '10'], ['1', '11']]

d = collections.defaultdict(list)
for k, v in l:
    d[k].append(v)
print(d)
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you can use dict.setdefault():

In [16]: lis=[['0', '10'], ['0', '11'], ['0', '12'], ['1', '10'], ['1', '11']]

In [17]: dic={}

In [18]: for x,y in lis:
   ....:     dic.setdefault(x,[]).append(y)
   ....:     

In [19]: dic
Out[19]: {'0': ['10', '11', '12'], '1': ['10', '11']}

and for your list even itertools.groupby will also work fine:

In [39]: from operator import itemgetter

In [40]: from itertools import groupby

In [34]: lis=[['0', '10'], ['0', '11'], ['0', '12'], ['1', '10'], ['1', '11']]

In [35]: {k:[x[1] for x in g] for k,g in groupby(lis,key=itemgetter(0))}
Out[35]: {'0': ['10', '11', '12'], '1': ['10', '11']}
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