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I have to merge list of python dictionary. For eg:

dicts[0] = {'a':1, 'b':2, 'c':3}
dicts[1] = {'a':1, 'd':2, 'c':'foo'}
dicts[2] = {'e':57,'c':3}

super_dict = {'a':[1], 'b':[2], 'c':[3,'foo'], 'd':[2], 'e':[57]}    

I wrote the following code:

super_dict = {}
for d in dicts:
    for k, v in d.items():
        if super_dict.get(k) is None:
            super_dict[k] = []
        if v not in super_dict.get(k):
            super_dict[k].append(v)

Can it be presented more elegantly / optimized?

Note I found another question on SO but its about merging exactly 2 dictionaries.

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@SvenMarnach Thats too generous of you! Done. +1ed your answer too :) –  jerrymouse Feb 23 '12 at 19:15

7 Answers 7

up vote 8 down vote accepted

You can iterate over the dictionaries directly -- no need to use range. The setdefault method of dict looks up a key, and returns the value if found. If not found, it returns a default, and also assigns that default to the key.

super_dict = {}
for d in dicts:
    for k, v in d.iteritems():
        super_dict.setdefault(k, []).append(v)

Also, you might consider using a defaultdict. This just automates setdefault by calling a function to return a default value when a key isn't found.

import collections
super_dict = collections.defaultdict(list)
for d in dicts:
    for k, v in d.iteritems():
        super_dict[k].append(v)

Also, as Sven Marnach astutely observed, you seem to want no duplication of values in your lists. In that case, set gets you what you want:

import collections
super_dict = collections.defaultdict(set)
for d in dicts:
    for k, v in d.iteritmes():
        super_dict[k].add(v)
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from collections import defaultdict

dicts = [{'a':1, 'b':2, 'c':3},
         {'a':1, 'd':2, 'c':'foo'},
         {'e':57, 'c':3} ]

super_dict = defaultdict(set)  # uses set to avoid duplicates

for d in dicts:
    for k, v in d.iteritems():
        super_dict[k].add(v)
share|improve this answer
1  
+1: This seems to be exactly what the question was asking for (unique elements in the values), done in a relatively clear and certainly efficient way (the dictionaries are gone through a single time, and the built-in set makes keeping only unique elements fast). –  EOL May 18 '13 at 8:19

Merge the keys of all dicts, and for each key assemble the list of values:

super_dict = {}
for k in set(k for d in dicts for k in d):
    super_dict[k] = [d[k] for d in dicts if k in d]

The expression set(k for d in dicts for k in d) builds a set of all unique keys of all dictionaries. For each of these unique keys, we use the list comprehension [d[k] for d in dicts if k in d] to build the list of values from all dicts for this key.

Since you only seem to one the unique value of each key, you might want to use sets instead:

super_dict = {}
for k in set(k for d in dicts for k in d):
    super_dict[k] = set(d[k] for d in dicts if k in d)
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Pretty solid. I think it could be improved with an explanation. –  Edwin Feb 23 '12 at 15:25
    
@Edwin: Thanks, I added a bit of explanation. –  Sven Marnach Feb 23 '12 at 15:31
    
@SvenMarnach minor thing -- with the second version, we get a dict of sets instead of a dict of lists -- easily handled if it matters to OP. –  Vaughn Cato Feb 23 '12 at 16:00
    
@VaughnCato: Semantically, sets seem to be what the OP wants. So it's a feature of that code, not a bug. –  Sven Marnach Feb 23 '12 at 16:05
    
@SvenMarnach: True, I may be taking the question too literally. –  Vaughn Cato Feb 23 '12 at 16:09

This may be a bit more elegant:

super_dict = {}
for d in dicts:
    for k, v in d.iteritems():
        l=super_dict.setdefault(k,[])
        if v not in l:
            l.append(v)

UPDATE: made change suggested by Sven

UPDATE: changed to avoid duplicates (thanks Marcin and Steven)

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Nice. I'd suggest for d in dicts: instead of for i in xrange(len(dicts)). –  Sven Marnach Feb 23 '12 at 15:26
1  
@SvenMarnach Nice, i made that change. –  Vaughn Cato Feb 23 '12 at 15:28
1  
Minor nit. Duplicates on key 'c': [3, 'foo', 3]. OP's example code shows that the 3 does not repeat. –  Steven Rumbalski Feb 23 '12 at 15:33
    
Won't this leave duplicates, unlike the original code? –  Marcin Feb 23 '12 at 15:39
    
ok. correction. I shouldn't have said the "OP's example code", I should have said the OP's example dictionary: super_dict = {'a':[1], 'b':[2], 'c':[3,'foo'], 'd':[2], 'e':[57]} –  Steven Rumbalski Feb 23 '12 at 16:17

Never forget that the standard libraries have a wealth of tools for dealing with dicts and iteration:

from itertools import chain
from collections import defaultdict
super_dict = defaultdict(list)
for k,v in chain.from_iterable(d.iteritems() for d in dicts):
    if v not in super_dict[k]: super_dict[k].append(v)

Note that the if v not in super_dict[k] can be avoided by using defaultdict(set) as per Steven Rumbalski's answer.

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For a oneliner, the following could be used:

{key: {d[key] for d in dicts if key in d} for key in {key for d in dicts for key in d}}

although readibility would benefit from naming the combined key set:

combined_key_set = {key for d in dicts for key in d}
super_dict = {key: {d[key] for d in dicts if key in d} for key in combined_key_set}

Elegance can be debated but personally I prefer comprehensions over for loops. :)

(The dictionary and set comprehensions are available in Python 2.7/3.1 and newer.)

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I'm a bit late to the game but I did it in 2 lines with no dependencies beyond python itself:

flatten = lambda *c: (b for a in c for b in (flatten(*a) if isinstance(a, (tuple, list)) else (a,)))
o = reduce(lambda d1,d2: dict((k, list(flatten([d1.get(k), d2.get(k)]))) for k in set(d1.keys() + d2.keys())), dicts)
# output:
# {'a': [1, 1, None], 'c': [3, 'foo', 3], 'b': [2, None, None], 'e': [None, 57], 'd': [None, 2, None]}

Though if you don't care about nested lists, then:

o2 = reduce(lambda d1,d2: dict((k, [d1.get(k), d2.get(k)]) for k in set(d1.keys() + d2.keys())), dicts)
# output:
# {'a': [[1, 1], None], 'c': [[3, 'foo'], 3], 'b': [[2, None], None], 'e': [None, 57], 'd': [[None, 2], None]}
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None values should not be created, as per the question. –  EOL May 18 '13 at 8:23

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