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Pardon me for not finding a better title.

Say I have two lists:

list1 = ["123", "123", "123", "456"]
list2 = ["0123", "a123", "1234", "null"]

which describe a mapping (see this question). I want to create a dict from those lists, knowing that list1 contains the keys and list2 the values. The dict in this case should be:

dict1 = {"123":("0123", "a123", "1234"), "456":("null",)}

because list1 informs us that "123" is associated to three values.

How could I programmatically generate such a dictionary?

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2  
I don't see how "null" would become "4567"; is the former an error? –  DSM Jul 25 '12 at 22:12
    
"456":("null",) maybe? –  Jon Clements Jul 25 '12 at 22:16
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4 Answers

up vote 3 down vote accepted

defaultdict() is your friend:

>>> from collections import defaultdict
>>> result = defaultdict(tuple)
>>> for key, value in zip(list1, list2):
...    result[key] += (value,)
...

This produces tuples; if lists are fine, use Jon Clement's variation of the same technique.

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Well, everyone went for a defaultdict, but +1 for keeping with tuples consistent with OP –  Jon Clements Jul 25 '12 at 22:17
    
Thanks. It's a sad thing having to accept an answer when all provided are equally valid, but as Jon said, you kept in line with tuples. –  CHM Jul 25 '12 at 22:23
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from collections import defaultdict

dd = defaultdict(list)
for key, val in zip(list1, list2):
    dd[key].append(val)
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>>> from collections import defaultdict
>>> list1 = ["123", "123", "123", "456"]
>>> list2 = ["0123", "a123", "1234", "null"]
>>> d = defaultdict(list)
>>> for i, key in enumerate(list1):
...     d[key].append(list2[i])
... 
>>> d
defaultdict(<type 'list'>, {'123': ['0123', 'a123', '1234'], '456': ['null']})
>>>
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And a non-defaultdict solution:

from itertools import groupby
from operator import itemgetter

dict( (k, tuple(map(itemgetter(1), v))) for k, v in groupby(sorted(zip(list1,list2)), itemgetter(0)))
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Ha! non-defaultdict, iterative and functional (map). :) –  CHM Jul 25 '12 at 22:25
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