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I am looking for the best way to refactor the Python code below. I think there is a Pythonic way to do this in 2 or 3 lines of code, but couldn't figure it out. I have searched Stackoverflow but couldn't find similar problems and solutions. Many thanks!

list1 = [(Python, 5), (Ruby, 10), (Java, 15), (C++, 20)]
list2 = [(Python, 1), (Ruby, 2), (Java, 3), (PHP, 4), (Javascript, 5)]

# I want to make an unsorted list3 like this
# list3 = [(Python, 6), (Ruby, 12), (Java, 18), (PHP, 4), (Javasript, 5), (C++, 20)]
common_keys = list(set(dict(list1).keys()) & set(dict(list2).keys()))

if common_keys:
    common_lst = [(x, (dict(list1)[x] + dict(list2)[x])) for x in common_keys]
    rest_list1 = [(x, dict(list1)[x]) for x in dict(list1).keys() if x not in common_keys]
    rest_list2 = [(x, dict(list2)[x]) for x in dict(list2).keys() if x not in common_keys]
    list3 = common_lst + rest_list1 + rest_list2

else:
    list3 = list1 + list2
share|improve this question
    
Why are they lists of tuples rather than dicts in the first place? –  Ignacio Vazquez-Abrams Sep 25 '11 at 6:16
    
They are Django values_lists :) –  Li Xiong Sep 25 '11 at 6:20
    
Then why aren't you doing this in the ORM? –  Ignacio Vazquez-Abrams Sep 25 '11 at 6:23

1 Answer 1

up vote 3 down vote accepted

You're looking for collections.defaultdict:

from collections import defaultdict
from itertools import chain

merged = defaultdict(int)

for key, value in chain(list1, list2):
    merged[key] += value

If you want a list of tuples:

list3 = merged.items()

If you want to do it without chain, you can do it as:

from collections import defaultdict

merged = defaultdict(int)

merged.update(list1)

for key, value in list2:
    merged[key] += value

Edit: As Beni points out in a comment, on 2.7/3.2+, you can do:

from collections import Counter

merged = Counter(dict(list1))
merged.update(dict(list2))

Which requires you convert the lists to dicts but is otherwise perfect.

share|improve this answer
    
Thank you so much! Genius! –  Li Xiong Sep 25 '11 at 6:21
2  
On 2.7/3.2, collections.Counter is even better. –  Beni Cherniavsky-Paskin Sep 25 '11 at 6:49
    
Counters are a dict subclass, so it will work as a drop-in replacement. –  Ethan Furman Sep 28 '11 at 4:22

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