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Apologies for the convoluted question title, but here's an example of what I mean.


mydictionary = {"OuterKey1": {"InnerKey1": "Value1", "InnerKey2": "Value2"}, 
                "OuterKey2": {"InnerKey1": "Value3", "InnerKey2": "Value4"}}


newdictionary = {"InnerKey1" : {"OuterKey1" : "Value1", "OuterKey2" : "Value3"},
                 "InnerKey2" : {"OuterKey1" : "Value2", "OuterKey2" : "Value4"}}

Notice how the association of InnerKey,OuterKey pair to values is preserved, but their order has simply been reversed. Where we would previously access Value1 using mydictionary[OuterKey][InnerKey] we now access it using newdictionary[InnerKey][OuterKey].

A direct way to achieve this would be to recreate two nested loops through the first dictionary and build the second dictionary one element at a time. However, I wonder if there's a cleaner / more Pythonic way to do it, such as with list comprehensions.

Update: It seems there is some confusion about the desired output. In particular, there is confusion about which value an OuterKey should map to after the tranformation. The answer is that the former outer key (now inner key) should map to the same value that the former inner key (now outer key) mapped to.

share|improve this question
Is Value1 and Value3 supposed to be in the same dictionary in your expected output? You don't seem to explain it anywhere – TerryA Jul 24 '13 at 6:42
The same key pairs should always return the same value, so mydictionary[key1][key2] == newdictionary[key2][key1] – Luke Jul 24 '13 at 6:45

2 Answers 2

up vote 7 down vote accepted

In this case I find using setdefault in a loop (or a defaultdict) much more readable then a comprehension. After all, "Readability counts...":

mydictionary = {"OuterKey1": {"InnerKey1": "Value1", "InnerKey2": "Value2"}, "OuterKey2": {"InnerKey1": "Value3", "InnerKey2": "Value4"}}
d = {}
for k, v in mydictionary.items():
    for ik, iv in v.items():
            d.setdefault(ik, {})[k] = iv

# result:
# d == {'InnerKey2': {'OuterKey2': 'Value4', 'OuterKey1': 'Value2'}, 'InnerKey1': {'OuterKey2': 'Value3', 'OuterKey1': 'Value1'}}

The same using defaultdict:

from collections import defaultdict
d = defaultdict(dict)
for k, v in mydictionary.items():
    for ik, iv in v.items():
            d[ik][k] = iv
share|improve this answer
nice solution. but why didn't you use defaultdict – John Prawyn Jul 24 '13 at 7:32
Old habit of writing code that needs to be compatible with python 2.4... But i'll add an example using defaultdict. – mata Jul 24 '13 at 10:33

Like this:

>>> mydictionary = {"OuterKey1": {"InnerKey1": "Value1", "InnerKey2": "Value2"}, 
...                 "OuterKey2": {"InnerKey1": "Value3", "InnerKey2": "Value4"}}
>>> dict([(k, dict([(k2,mydictionary[k2][k]) for k2 in mydictionary]))
...     for k  in mydictionary.values()[0]])
{'InnerKey2': {'OuterKey2': 'Value4', 'OuterKey1': 'Value2'}, 
 'InnerKey1': {'OuterKey2': 'Value3', 'OuterKey1': 'Value1'}}
share|improve this answer
This is the type of solution I was hoping to see, except that it assumes (my fault due to example) all inner keys will appear in all (in particular first) outer dictionaries. – merlin2011 Jul 24 '13 at 6:54
In that case, mata's answer is the correct approach. – Luke Jul 24 '13 at 6:58

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