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I don't think that I found out a bug but it doesn't look normal to me.

from itertools import groupby
from operator import itemgetter
c=[((u'http://www.example.com', u'second_value'), u'one'), 
   ((u'http://www.example.com', u'second_value'), u'two'), 
   ((u'http://www.hello.com', u'second_value'), u'one'), 
   ((u'http://www.example.com', u'second_value'), u'three'), 
   ((u'http://www.hello.com', u'second_value'), u'two')]
b= groupby(c, key=itemgetter(0))
for unique_keys, group in b:
    print unique_keys

Yields:

(u'http://www.example.com', u'second_value')
(u'http://www.hello.com', u'second_value')
(u'http://www.example.com', u'second_value')
(u'http://www.hello.com', u'second_value')

Any explanations ? (I was expecting only two different keys). I am using python 2.7.1 if that makes a difference

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1 Answer 1

up vote 1 down vote accepted

The iterable needs to already be sorted (on the same key function):

from itertools import groupby
from operator import itemgetter
c=[((u'http://www.example.com', u'second_value'), u'one'), 
   ((u'http://www.example.com', u'second_value'), u'two'), 
   ((u'http://www.hello.com', u'second_value'), u'one'), 
   ((u'http://www.example.com', u'second_value'), u'three'), 
   ((u'http://www.hello.com', u'second_value'), u'two')]
b= groupby(sorted(c,key=itemgetter(0)), key=itemgetter(0))
for unique_keys, group in b:
    print unique_keys

out:

(u'http://www.example.com', u'second_value')
(u'http://www.hello.com', u'second_value')
share|improve this answer
    
Oh ok. Thanks a lot, I can't upvote your answer for now because I don't have >15 reputation. There's not really a warning on the doc page. That's not something that one would except considering most other groupby functions in other languages/library don't require this. –  Bqm Jan 16 '13 at 9:23
    
Sorry, but italic hurts. –  georg Jan 16 '13 at 9:37
    
@thg435 -- I will try not to overuse it, thanks for the edit. –  root Jan 16 '13 at 9:40
    
@Bqm -- you are welcome. –  root Jan 16 '13 at 9:41

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