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Maybe it's because it's been a long day or just because I'm a complete crackhead. How do I sort a list of date and/or datetime objects? The accepted answer here isn't working for me:

from datetime import datetime,date,timedelta


a=[date.today(), date.today() + timedelta(days=1), date.today() - timedelta(days=1)]
print a # prints '[datetime.date(2013, 1, 22), datetime.date(2013, 1, 23), datetime.date(2013, 1, 21)]'
a = a.sort()
print a # prints 'None'....what???
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1  
lst.sort() is an inplace operation –  Andreas Jung Jan 23 '13 at 5:06
    
Did you read inplace operation? Why would the method return something that is performed on the existing datastructure? No new list is created and the existing list is not returned. This is completely intentional and documented behavior, brother. –  Andreas Jung Jan 23 '13 at 5:10

1 Answer 1

up vote 19 down vote accepted

You're getting None because list.sort() it operates in-place, meaning that it doesn't return anything, but modifies the list itself. You only need to call a.sort() without assigning it to a again.

There is a built in function sorted(), which returns a sorted version of the list - a = sorted(a) will do what you want as well.

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now it's clear. thx! Will accept in 9 minutes when I'm allowed –  llamawithabowlcut Jan 23 '13 at 5:09
2  
which way is best? do they do same things under the covers? –  radtek Mar 6 '14 at 22:51
1  
@radtek list.sort() changes the object from which it is invoked (which is always a list). sorted() works on any iterable, not only list. list.sort() might be a little faster if you have a very large list because sorted() creates a new list and needs to copy the elements to it. –  flyman Feb 6 at 22:50

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