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It may be a classical question in Python, but I haven't found the answer yet.

I have a list of dictionaries, these dictionaries have similar keys. It looks like this:

 [{0: myech.MatchingResponse at 0x10d6f7fd0, 
   3: myech.MatchingResponse at 0x10d9886d0,
   6: myech.MatchingResponse at 0x10d6f7d90,
   9: myech.MatchingResponse at 0x10d988ad0},
  {0: myech.MatchingResponse at 0x10d6f7b10,
   3: myech.MatchingResponse at 0x10d6f7f90>}]

I would like to get a new dictionary with [0,3,6,9] as keys, and lists of " myech.MatchingResponse" as values.

Of course I can do this using a simple loop but I was wondering if there is a more efficient solution.

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3 Answers 3

up vote 11 down vote accepted
import collections

result = collections.defaultdict(list)

for d in dictionaries:
    for k, v in d.items():
        result[k].append(v)
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let's say your list is assigned to a variable called mylist.

mydic = {}
for dic in mylist:
    for key, value in dic.items():
        if key in mydic:
            mydic[key].append(value)
        else:
            mydic[key] = [value]
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4  
use dict.setdefault or collections.defaultdict instead of this! :D –  jamylak Jul 12 '12 at 11:22
    
thx, I'll take a look at that. Never used setdefault. –  bigblind Jul 12 '12 at 11:23
    
Also this won't work since iterating through a dictionary iterates through it's keys so this, for key, value in dic, will raise an error. change to for key, value in dic.items(). Edit: I just changed it for you –  jamylak Jul 12 '12 at 11:30
    
Why is is so wrong to initialize a dictionary with dic = {} ? –  lizzie Jul 12 '12 at 12:08
1  
@lizzie I don't see anything wrong with that. Just don't call it dict or you are shadowing the builtin dict class and you won't be able to access it since your variable has taken the name. –  jamylak Jul 12 '12 at 23:18

It's possible to do this with dict comprehension as well ... could be one line, but I've kept it as two lines for clarity. :)

from itertools import chain

all_keys = set(chain(*[x.keys() for x in dd]))
print {k : [d[k] for d in dd if k in d] for k in all_keys}

Results in:

{0: ['a', 'x'], 9: ['d'], 3: ['b', 'y'], 6: ['c']}
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this is not what the asker is after –  Otto Allmendinger Jul 12 '12 at 12:42
    
@OttoAllmendinger Ah .. I misunderstood the problem ... please have a look at the corrected solution :) –  Maria Zverina Jul 12 '12 at 13:38
    
I'm not sure about the performance but now it is a valid answer –  Otto Allmendinger Jul 12 '12 at 13:46

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