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I have a dictionary with the following structure:

{'ONE' : (4, 6, 9), 'TWO' : (3, 8, 10)}

I'd like to sort this dictionary by the 3rd value of each tuple. I can't really think of a way to accomplish this with the data setup as a dictionary, but it should be fairly easy if I can convert the data to a nested list like the following:

[['ONE', 4, 6, 9], ['TWO', 3, 8, 10]]

I'm looking for the most efficient code for accomplishing this. If there is a way to sort this dictionary without converting it, that would be ideal. If not, any assistance with the conversion from dictionary to nested list would be greatly appreciated. Thanks.

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1  
There's no concept of order for dictionaries, so you cannot sort them. You need to do it in an indirect way, such the one you're suggesting. –  Ricardo Cárdenes Jan 1 '12 at 21:04
    
actually, python 2.7 has the OrderedDict class –  Alexandre Jan 1 '12 at 21:16
    
But they remember only the order in which the keys have been entered. You still need some trick to sort the data (and create a new OrderedDict in the process) –  Ricardo Cárdenes Jan 1 '12 at 21:18

3 Answers 3

up vote 3 down vote accepted

Use the key argument of the built-in sorted function:

>>> d = {'ONE' : (4, 6, 9), 'TWO' : (3, 8, 10), 'FOUR': (2, 5, 8)}
>>> sorted(d.iteritems(), key=lambda i: i[1][2])
[('FOUR', (2, 5, 8)), ('ONE', (4, 6, 9)), ('TWO', (3, 8, 10))]

EDIT

If some of the values are ints rather than tuples, then something like this should work:

>>> d = {'ONE' : (4, 6, 9), 'TWO' : (3, 8, 10), 'FOUR': (2, 5, 8), 'THREE': 0}
>>> sorted(d.iteritems(),
...        key=lambda i: i[1][2] if isinstance(i[1], tuple) else i[1])
[('THREE', 0), ('FOUR', (2, 5, 8)), ('ONE', (4, 6, 9)), ('TWO', (3, 8, 10))]

However, in the long run, it's probably better to normalize the data so that the values all have the same format.

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You guys are all fantastic. This is great, while all of the suggestions were very useful, I think this is the simplest way (after i remove the ints) –  donopj2 Jan 1 '12 at 21:27
    
@PatrickD. I've updated my answer with a version that copes with ints. –  ekhumoro Jan 1 '12 at 22:57

Here's one way:

result = []
for key, value in dictionary.items():
    result.append([key] + list(value))

If some of your values are of type int instead of tuples try this:

result = []
for key, value in dictionary.items():
    try:
        lst = list(value)
    except TypeError:
        lst = [value]
    result.append([key] + lst)
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Brilliant! Thanks so much –  donopj2 Jan 1 '12 at 21:20
    
This gives him a list which contains non-regular elements. Having that he intends to sort by the 3rd value from each tuple... this will not fail when translating the dictionary to a list, but will later when sorting. –  Ricardo Cárdenes Jan 1 '12 at 21:25
nestedlist = [[key] + list(value) for key,value in dictionary.items() if value != 0]
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I get an 'int' not iterable error. My actual dictionary is pretty massive, with a string as a key, and three floats in a tuple for each value. Actual example: 'REPUBLIC OF BRAZIL' : (0.013454, 0.005123, 0.008417369999) –  donopj2 Jan 1 '12 at 21:09
1  
@PatrickD, is it possible one of your values in your dictionary isn't a tuple but an int? That would explain the error you get. –  Rob Wouters Jan 1 '12 at 21:12
    
Sounds like what @RobWouters says, yeah. –  Ricardo Cárdenes Jan 1 '12 at 21:13
    
Ah, yes, looking through the dictionary, there are values that are 0 instead of a tuple. Any workaround suggestions? –  donopj2 Jan 1 '12 at 21:14
    
Depends on what would you want to have those entries translated into :) –  Ricardo Cárdenes Jan 1 '12 at 21:15

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