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>>> from operator import itemgetter
>>> l = [(1.23, 'Smith'), (2.34, 'Jones'), (3.45, 'de la Smith')]
>>> ol = sorted(l, key=itemgetter(1))
>>> ol
[(2.34, 'Jones'), (1.23, 'Smith'), (3.45, 'de la Smith')]

How do I get the below list without some kludge using multiple list comprehensions?

[(3.45, 'de la Smith'), (2.34, 'Jones'), (1.23, 'Smith')]
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2 Answers

up vote 6 down vote accepted

You can provide any function as the key. itemgetter is only useful for very simple cases

>>> L = [(1.23, 'Smith'), (2.34, 'Jones'), (3.45, 'de la Smith')]
>>> sorted(L, key=lambda x:x[1].lower())
[(3.45, 'de la Smith'), (2.34, 'Jones'), (1.23, 'Smith')]

for more complicated sorts, you may wish to write the function in the usual way

def item_to_sort_key(item):
    n, name = item
    return name.lower()

sorted(L, key=item_to_sort_key)

One advantage of writing it out the long way is that it's easier to write testcases for unusual names. It will also be handy if you ever have to start dealing with special cases.

If your Python is new enough you will have str.casefold which should be used instead of str.lower because it handles unicode properly

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I have started to use lambda's recently. I still don't understanding what lambda does in this particular use case. How does it work here? –  Cole Feb 14 '13 at 0:53
    
@Cole, lambda is just a shorthand way of writing a function. Since it is usually inline, you don't need to give the function a name ans since it can only be a single expression, you don't need to explicitly say return as it will always return the result of the expression. –  gnibbler Feb 14 '13 at 1:02
    
+1. Especially for mentioning casefold. (Not that you can't do the equivalent with locale functions, str methods, and unicodedata functions in 3.2 and earlier… but it was so painful that you'd only do it if you were sure you needed it, while in 3.3, it's so simple that you can and should do it unless you're sure you don't need it…) –  abarnert Feb 14 '13 at 1:22
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>>> l = [(1.23, 'Smith'), (2.34, 'Jones'), (3.45, 'de la Smith')]
>>> sorted(l, key=lambda tup: tup[1].lower())
[(3.45, 'de la Smith'), (2.33, 'Jones'), (1.23, 'Smith')]
share|improve this answer
add comment

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