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I have a list of lists (which could have been tuples, but I digress) in a format such as:

[12, 'tall', 'blue', 1]
[15, 'tall', 'black', 3]
[13, 'tall', 'blue', 8]
[9, 'short', 'blue', 3]
[1, 'short', 'black', 2]
[2, 'short', 'red', 9]
[4, 'tall', 'blue', 13]

If I wanted to sort by one element, say the tall/short element, I could do it via s = sorted(s, key = itemgetter(1))

If I wanted to sort by BOTH tall/short and colour, I could do the sort twice. Once for each element. However, this is computationally ridiculous. Is there a quicker way?

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up vote 61 down vote accepted

A key can be a function that returns a tuple:

s = sorted(s, key = lambda x: (x[1], x[2]))

Or you can achieve the same using itemgetter:

import operator
s = sorted(s, key = operator.itemgetter(1, 2))

And notice that here you can use sort instead of using sorted and then reassigning:

s.sort(key = operator.itemgetter(1, 2))
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You learn something new everyday! Do you know if this is computationally quicker than the previous method? Or does it just do the same thing in the background? –  headache Nov 20 '10 at 15:35
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@headache: I don't know which is faster - I suspect that they are about the same. You can use the timeit module to measure the performance of both if you are interested. –  Mark Byers Nov 20 '10 at 15:38
4  
For completeness from timeit: for me first gave 6 us per loop and the second 4.4 us per loop –  Brian Larsen Feb 8 '13 at 21:52
    
Is there a way to sort the first one ascending and the second one descending? (Assume both attributes are strings, so no hacks like adding - for integers) –  moose Aug 5 '13 at 11:03
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@moose: Unfortunately I don't think there is a non-hack way. The method proposed in the documentation is to sort twice, using the property that sorting is stable. See here for more details. –  Mark Byers Aug 6 '13 at 14:09
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