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How do you sort a Python dictionary based on the inner value of a nested dictionary?

For example, sort mydict below based on the value of context:

mydict = {
    'age': {'context': 2},
    'address': {'context': 4},
    'name': {'context': 1}
}

The result should be like this:

{
    'name': {'context': 1}, 
    'age': {'context': 2},
    'address': {'context': 4}       
}
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1  
Do you want a list output? or a dictionary output? – Deniz Aug 1 '12 at 6:34
up vote 10 down vote accepted
>>> from collections import OrderedDict
>>> mydict = {
        'age': {'context': 2},
        'address': {'context': 4},
        'name': {'context': 1}
}
>>> OrderedDict(sorted(mydict.iteritems(), key=lambda x: x[1]['context']))
OrderedDict([('name', {'context': 1}), ('age', {'context': 2}), ('address', {'context': 4})])
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You can not sort a dictionary no matter how hard you try, because they are an unordered collection. Use OrderedDict form collections module instead.

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Alternatively, one could probably do a gnarly list comprehension on the keys, using a lambda to look at the value of each key - and the difficulty of doing so is a great lesson in why to use an OrderedDict. – Brighid McDonnell Aug 2 '12 at 0:49

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