Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

I am trying to create a new dict using a list of values of an existing dict as individual keys.

So for example:

dict1 = dict({'a':[1,2,3], 'b':[1,2,3,4], 'c':[1,2]})

and I would like to obtain:

dict2 = dict({1:['a','b','c'], 2:['a','b','c'], 3:['a','b'], 4:['b']})

So far, I've not been able to do this in a very clean way. Any suggestions?

share|improve this question
3  
out of curiosity: why do you need that? –  Sven Hecht Sep 11 '09 at 10:31
    
This needs to be accessible in both directions as it'll happen a lot, and it needs to be serialisable, ideally without introducing more classes that would need importing if it was used in a separate module due to a complexity of the way the particular system i'm working with does things. –  Dan Sep 11 '09 at 10:59

3 Answers 3

up vote 8 down vote accepted

If you are using Python 2.5 or above, use the defaultdict class from the collections module; a defaultdict automatically creates values on the first access to a missing key, so you can use that here to create the lists for dict2, like this:

from collections import defaultdict
dict1 = dict({'a':[1,2,3], 'b':[1,2,3,4], 'c':[1,2]})
dict2 = defaultdict(list)
for key, values in dict1.items():
    for value in values:
        # The list for dict2[value] is created automatically
        dict2[value].append(key)

Note that the lists in dict2 will not be in any particular order, as a dictionaries do not order their key-value pairs.

If you want an ordinary dict out at the end that will raise a KeyError for missing keys, just use dict2 = dict(dict2) after the above.

share|improve this answer
    
You don't need a defaultdict for that simple thing. Just replace the append line to: dict2.setdefault(value, []).append(key) –  nosklo Sep 11 '09 at 11:37
2  
You don't ever "need" a default dict. It just makes code simpler. –  chrispy Sep 11 '09 at 11:39

Notice that you don't need the dict in your examples: the {} syntax gives you a dict:

dict1 = {'a':[1,2,3], 'b':[1,2,3,4], 'c':[1,2]}
share|improve this answer

Other way:

dict2={}
[[ (dict2.setdefault(i,[]) or 1) and (dict2[i].append(x)) for i in y ] for (x,y) in dict1.items()]
share|improve this answer
10  
-1 for a hideous abuse of Python: (1) List comprehensions should not have side-effects (2) Tortured boolean logic to achieve "a then b" –  chrispy Sep 11 '09 at 10:49
    
I really wish I could downvote this twice, just to make the point. Please put it out of its misery. –  chrispy Nov 15 '09 at 22:50

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.