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I have an arbitrary number of equal-length python dictionaries with matching sets of keys, like this:

{'a':1, 'b':4, 'c':8, 'd':9}

{'a':2, 'b':3, 'c':2, 'd':7}

{'a':0, 'b':1, 'c':3, 'd':4}
...

How can I obtain a single dictionary with the same set of keys but with values as the sums of corresponding elements in the dictionary set? In other words, I'd want:

{'a':3, 'b':8, 'c':13, 'd':20}

Maybe there's an ugly, complicated loop structure, but is there a nicer way to do this with some kind of list/dict comprehension cleverness? Come to think of it, I'm really not sure how to make an ugly loop version, anyway..

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Where do the original dictionaries exist? Are they all individually named? Or do they exist in a collection or array of dictionaries? –  lurker Oct 19 '13 at 2:42
    
They are indexed by id numbers in a larger, overall dictionary. I want to be able to sum certain, variably-sized subset (e.g., the ones with keys 1, 5, 34, and 67). –  nicole Oct 19 '13 at 2:48
    
You can still use @TimPeters' answer with your ID numbers if you create a list of dictionaries like DList = [ d[1],d[5],d[34],d[67] ] (And there are ways to generate that list programmatically if you search elsewhere on the site about making a list from specified elements...) –  beroe Oct 19 '13 at 3:22
    
Maybe a silly question, but will that work if I have a dictionary of dictionaries? Something like: for id_num in cluster: c.update(overall_dict[id_num]) –  nicole Oct 19 '13 at 16:45

2 Answers 2

up vote 7 down vote accepted

collections.Counter() to the rescue ;-)

from collections import Counter
dicts = [{'a':1, 'b':4, 'c':8, 'd':9},
         {'a':2, 'b':3, 'c':2, 'd':7},
         {'a':0, 'b':1, 'c':3, 'd':4}]
c = Counter()
for d in dicts:
    c.update(d)

Then:

>>> print c
Counter({'d': 20, 'c': 13, 'b': 8, 'a': 3})

Or you can change it back to a dict:

>>> print dict(c)
{'a': 3, 'c': 13, 'b': 8, 'd': 20}

It doesn't matter to Counter() whether all the input dicts have same keys. If you know for sure that they do, you could try ridiculous ;-) one-liners like this:

d = {k: v for k in dicts[0] for v in [sum(d[k] for d in dicts)]}

Counter() is clearer, faster, and more flexible. To be fair, though, this slightly less ridiculous one-liner is less ridiculous:

d = {k: sum(d[k] for d in dicts) for k in dicts[0]}
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Nice. I like your "less ridiculous" version, but it might be clearer if you use something besides d for the destination dictionary... –  beroe Oct 19 '13 at 3:17
    
@beroe, but that would make it even less ridiculous! ;-) –  Tim Peters Oct 19 '13 at 3:24
    
Sorry, my bad! I thought that was the [recursive] point... :^) –  beroe Oct 19 '13 at 3:26

If you simply want to use dict only, you can use this

dicts = [{'a':0, 'b':4, 'c':8, 'd':9},
         {'a':0, 'b':3, 'c':2, 'd':7},
         {'a':0, 'b':1, 'c':3, 'd':4}]

result = {}
for myDict in dicts:
    for key, value in myDict.items():
        result.setdefault(key, 0)
        result[key] += value
print result

Output:

{'a': 0, 'c': 13, 'b': 8, 'd': 20}
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