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[{'date': '2010-04-01', 'people': 1047, 'hits': 4522}, {'date': '2010-04-03', 'people': 617, 'hits': 2582}, {'date': '2010-04-02', 'people': 736, 'hits': 3277}]

Suppose I have this list. How do I sort by "date", which is an item in the dictionary. But, "date" is a string...

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up vote 18 down vote accepted
.sort(key=lambda x: datetime.datetime.strptime(x['date'], '%Y-%m-%d'))
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1  
this looks cool but i got "None" for an answer when i tried it! – Matt Phillips Apr 7 '10 at 1:43
6  
Most list methods work in-place, instead of returning the list. – Ignacio Vazquez-Abrams Apr 7 '10 at 1:44
2  
I like the flexibility of this answer. In my case, I had to resort to '%m/%d/%Y'. – Wok Mar 11 '14 at 14:42

Fortunately, ISO format dates, which seems to be what you have here, sort perfectly well as strings! So you need nothing fancy:

import operator
yourlistofdicts.sort(key=operator.itemgetter('date'))
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operator to the rescue!! – jathanism Apr 7 '10 at 1:45
2  
BTW, I totally want this to work but it's not working for me w/ Py2.6.2 and the input list from the OP. It returns TypeError: itemgetter expected 1 arguments, got 2. If I run it using sorted it works: sorted(yourlistofdicts, key=operator.itemgetter('date')). Thoughts? – jathanism Apr 7 '10 at 2:34
2  
Oops, typo: I missed the key=, editing to fix, thanks. – Alex Martelli Apr 7 '10 at 2:36

Satoru.Logic's solution is clean and simple. But, per Alex's post, you don't need to manipulate the date string to get the sort order right...so lose the .split('-')

This code will suffice:

records.sort(key=lambda x:x['date'])
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1  
...And once again the simplest, most Pythonic, and correct answer is hastily brushed aside when the asker is too hasty sighs. – Humphrey Bogart Apr 7 '10 at 2:41
    
Upvoted for simplicity, but definitely requires dates to be in YYYY-MM-DD format (which therefore sort similarly as strings). – dkamins Apr 7 '10 at 7:23

In python 2.6 you can use soerted w/operator.itemgetter. Since date is YYYY-MM-DD it is sorted even though its a string cause its largest to smallest - i use that format all the time for this reason

>>> import operator
>>> l = [{'date': '2010-04-01','people': 1047, 'hits': 4522}, 
         {'date': '2010-04-03', 'people': 617, 'hits': 2582}, 
         {'date': '2010-04-02', 'people': 736, 'hits': 3277}]
>>> sorted( l, key = operator.itemgetter('date') )
[{'date': '2010-04-01', 'hits': 4522, 'people': 1047}, {'date': '2010-04-02', 'hits': 3277, 'people': 736}, {'date': '2010-04-03', 'hits': 2582, 'people': 617}]
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records = [
     {'date': '2010-04-01', 'people': 1047, 'hits': 4522}, 
     {'date': '2010-04-03', 'people': 617, 'hits': 2582}, 
     {'date': '2010-04-02', 'people': 736, 'hits': 3277}
     ]
records.sort(key=lambda x: x['date'].split('-'))
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Note that this sort won't work if the dates aren't zero-filled. For, example 2-1 would come after 10-1, even though February comes before October. – Rose Perrone Jul 27 '12 at 23:06

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