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I have this multi-dimensional dict:

a = {'a' : 'b', 'c' : {'d' : 'e'}}

And written simple function to flatten that dict:

def __flatten(self, dictionary, level = []):
    tmp_dict = {}
    for key, val in dictionary.items():
        if type(val) == dict:
            tmp_dict.update(self.__flatten(val, level + [key]))
        else:
            tmp_dict['.'.join(level + [key])] = val
    return tmp_dict

After call this function with dict a i get in result:

{'a' : 'b', 'c.d' : 'e'}

Now, after making few instructions on this flattened dict i need to build new, multi-dimensional dict from that flattened. Example:

>> unflatten({'a' : 0, 'c.d' : 1))
{'a' : 0, 'c' : {'d' : 1}}

The only problem I have is that i do not have a function unflatten :)
Can anyone help with this? I have no idea how to do it.

EDIT:

Another example:

{'a' : 'b', 'c.d.e.f.g.h.i.j.k.l.m.n.o.p.r.s.t.u.w' : 'z'}

Should be after unflatten:

{'a': 'b', 'c': {'d': {'e': {'f': {'g': {'h': {'i': {'j': {'k': {'l': {'m': {'n': {'o': {'p': {'r': {'s': {'t': {'u': {'w': 'z'}}}}}}}}}}}}}}}}}}}

And another:

{'a' : 'b', 'c.d' : 'z', 'c.e' : 1}

To:

{'a' : 'b', 'c' : {'d' : 'z', 'e' : 1}}

This greatly increases the difficulty of the task, i know. Thats why i had problem with this and found no solution in hours..

share|improve this question
    
Really I can't get why 'c' : {'d' : 'e'} becomes 'c.d' : 'e', what if you have 'c' : {'f': 'g', 'd' : 'e'} –  neurino May 17 '11 at 22:00
    
Then {'c' : {'f' : 'g', 'd' : 'e'}} becomes {'c.f' : 'g', 'c.d' : 'e'} :) –  Galmi May 17 '11 at 22:12

3 Answers 3

up vote 5 down vote accepted
def unflatten(dictionary):
    resultDict = dict()
    for key, value in dictionary.iteritems():
        parts = key.split(".")
        d = resultDict
        for part in parts[:-1]:
            if part not in d:
                d[part] = dict()
            d = d[part]
        d[parts[-1]] = value
    return resultDict
share|improve this answer
    
This implementation is better than mine as it handles the input {'a': 'b', 'c.d.e': 1} and any deeper nesting (more dots). I'm afraid to down-mod my own answer... not sure what will happen. ;) –  John Gaines Jr. May 17 '11 at 22:05
    
It works exactly as I need. Thank you, you saved me a whole night of thinking :) –  Galmi May 17 '11 at 22:35
from collections import defaultdict
def unflatten(d):
    ret = defaultdict(dict)
    for k,v in d.items():
        k1,delim,k2 = k.partition('.')
        if delim:
            ret[k1].update({k2:v})
        else:
            ret[k1] = v
    return ret
share|improve this answer
    
+1 for using recursion, but incorrect: e.g. {'a.b': 0, 'a.c': 1} will return {'a': {'c': 1}} :) Can be solved by using ret[k1].update(...) instead. –  Lucas Moeskops May 17 '11 at 22:17
    
@Lucasmus, yes I changed it back to my original answer now. I momentarily thought it could be simplified –  John La Rooy May 17 '11 at 22:20

As a rough-draft (could use a little improvement in variable name choice, and perhaps robustness, but it works for the example given):

def unflatten(d):
    result = {}
    for k,v in d.iteritems():
        if '.' in k:
            k1, k2 = k.split('.', 1)
            v = {k2: v}
            k = k1
        result[k] = v
    return result
share|improve this answer
    
Dangit! Can't down-vote my own answer even if I'm man enough to admit it's not as good as another (Messa's in this case). –  John Gaines Jr. May 17 '11 at 22:08
    
You can remove it I think ;) –  Lucas Moeskops May 17 '11 at 22:19

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