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d1 = { 'apples': 2, 'oranges':5 }
d2 = { 'apples': 1, 'bananas': 3 }


result_dict = { 'apples': 1.5, 'oranges': 5, 'bananas': 3 }

What's the best way to do this?

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6 Answers 6

up vote 7 down vote accepted

Here is one way:

result = dict(d2)
for k in d1:
    if k in result:
        result[k] = (result[k] + d1[k]) / 2.0
    else:
        result[k] = d1[k]
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I would recommend using d2.copy() rather than dict(d2). It's a trifle faster (and more faster for an dict with few items, up to about twice as fast), and in my opinion a bit more obvious. –  Chris Morgan Jul 13 '11 at 10:59
    
I would also multiply by 0.5 instead of division. –  psihodelia Jul 13 '11 at 14:06

This would work for any number of dictionaries:

dicts = ({"a": 5},{"b": 2, "a": 10}, {"a": 15, "b": 4})
keys = set()
averaged = {}
for d in dicts:
    keys.update(d.keys())
for key in keys:
    values = [d[key] for d in dicts if key in d]
    averaged[key] = float(sum(values)) / len(values)
print averaged
# {'a': 10.0, 'b': 3.0}

Update: @mhyfritz showed a way how you could reduce 3 lines to one!

dicts = ({"a": 5},{"b": 2, "a": 10}, {"a": 15, "b": 4})
averaged = {}
keys = set().union(*dicts)
for key in keys:
    values = [d[key] for d in dicts if key in d]
    averaged[key] = float(sum(values)) / len(values)
print averaged
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2  
+1 for a generalized solution! –  Tim Pietzcker Jul 13 '11 at 10:38
1  
+1. As a side note, you can write keys = set().union(*dicts). This makes use of the fact that a set of a dict (only) contains that dict's keys. –  mhyfritz Jul 13 '11 at 10:44
    
@mhyfritz: Heh, this is nice! - BTW: does @user work in answers as well? –  phant0m Jul 13 '11 at 10:48
    
Nice logical solution mate, you can understand what its doing when you read the code. –  robert king Jul 13 '11 at 11:46

Your question was for the most 'Pythonic' way.

I think for a problem like this, the Pythonic way is one that is very clear. There are many ways to implement the solution to this problem! If you really do have only 2 dicts then the solutions that assume this are great because they are much simpler (and easier to read and maintain as a result). However, it's often a good idea to have the general solution because it means you won't need to duplicate the bulk of the logic for other cases where you have 3 dictionaries, for example.

As an addendum, phant0m's answer is nice because it uses a lot of Python's features to make the solution readable. We see a list comprehension:

[d[key] for d in dicts if key in d]

Use of Python's very useful set type:

keys = set()
keys.update(d.keys())

And generally, good use of Python's type methods and globals:

d.keys()
keys.update( ... )
keys.update
len(values)

Thinking of and implementing an algorithm to solve this problem is one thing, but making it this elegant and readable by utilising the power of the language is what most people would deem 'Pythonic'.

(I would use phant0m's solution)

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+1: Thanks for the nice analysis :) –  phant0m Jul 13 '11 at 10:42
    
@phant0m thanks for the great solution :) –  adamnfish Jul 13 '11 at 10:43
    
+1, now analyse mine :P –  robert king Jul 13 '11 at 11:53

Yet another way:

result = dict(d1)
for (k,v) in d2.items():
    result[k] = (result.get(k,v) + v) / 2.0
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+1: Very crafty! You need to fix the variable names though. –  phant0m Jul 13 '11 at 10:35
    
well spotted and duely fixed. thanks. –  Frank Jul 13 '11 at 11:24

A Counter and some Generators are useful in this situation

General Case:

>>> d1 = { 'apples': 2, 'oranges':5 }
>>> d2 = { 'apples': 1, 'bananas': 3 }
>>> all_d=[d1,d2]
>>> from collections import Counter
>>> counts=Counter(sum((d.keys() for d in all_d),[]))
>>> counts
Counter({'apples': 2, 'oranges': 1, 'bananas': 1})
>>> s=lambda k: sum((d.get(k,0) for d in all_d))
>>> result_set=dict(((k,1.0*s(k)/counts[k]) for k in counts.keys()))
>>> result_set
{'apples': 1.5, 'oranges': 5.0, 'bananas': 3.0}
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d1 = { 'apples': 2, 'oranges':5 }
d2 = { 'apples': 1, 'bananas': 3, 'oranges':0 }
dicts = [d1, d2]

result_dict = {}

for dict in dicts:
    for key, value in dict.iteritems():
        if key in result_dict:
            result_dict[key].append(value)
        else:
            result_dict[key] = [value]

for key, values in result_dict.iteritems():
    result_dict[key] = float(sum(result_dict[key])) / len(result_dict[key])

print result_dict
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