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I have a list like this

[u'201003', u'200403', u'200803', u'200503', u'201303',
 u'200903', u'200603', u'201203', u'200303', u'200703', u'201103']

lets call this list as 'years_list'

When I did groupby year,

group_by_yrs_list = groupby(years_list, key = lambda year_month: year_month[:-2]) 
for k,v in group_by_yrs_list:
  print k, list(v)

I got the desired output:

2010 [u'201003']
2004 [u'200403']
2008 [u'200803']
2005 [u'200503']
2013 [u'201303']
2009 [u'200903']
2006 [u'200603']
2012 [u'201203']
2003 [u'200303']
2007 [u'200703']
2011 [u'201103']

Then, I slightly changed my implementation like this,

  group_by_yrs_list = dict(groupby(years_list, key = lambda year_month: year_month[:-2]))
  for k,v in group_by_yrs_list.items():
    print k, list(v)

I have just added a dict, but the output is different,

2003 []
2006 []
2007 []
2004 []
2005 []
2008 []
2009 []
2011 [u'201103']
2010 []
2013 []
2012 []

I couldn't find out why. Please help me to find what the dict is doing actually.

(Python 2.7)

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Remember that dictionaries don't have order. But as for why only one list isn't empty, that's odd –  TerryA Oct 1 '13 at 6:18
1  
@Haidro: The answer by falstru should enlighten you. –  justhalf Oct 1 '13 at 6:21
    
@justhalf Oh of course! –  TerryA Oct 1 '13 at 6:22

4 Answers 4

up vote 5 down vote accepted

groupby yields pairs of (key, iterator-of-group). If you are iterating the second pair, the iterator-of-group of the first pair is already consumed, so you get empty list.

Try following code:

group_by_yrs_list = {year:list(grp) for year, grp in groupby(years_list, key=lambda year_month: year_month[:-2])}
for k, v in group_by_yrs_list.items():
    print k, v
share|improve this answer
1  
which means that all the grouped values refers a single iterator. Am I correct ? –  John Prawyn Oct 1 '13 at 6:33
3  
@JohnPrawyn, Yes. itertools._grouper objects share a single iterator. (gbo->it) –  falsetru Oct 1 '13 at 6:41

The problem here is that groupby yields, in sequence, each key and a sub-iterator:

>>> for k, v in groupby(years_list, key = lambda year_month: year_month[:-2]):
...    print k, v
2010 <itertools._grouper object at 0x801c68950>
2004 <itertools._grouper object at 0x801bb3a90>
2008 <itertools._grouper object at 0x801c68950>
2005 <itertools._grouper object at 0x801bb3a90>
2013 <itertools._grouper object at 0x801c68950>
2009 <itertools._grouper object at 0x801bb3a90>
2006 <itertools._grouper object at 0x801c68950>
2012 <itertools._grouper object at 0x801bb3a90>
2003 <itertools._grouper object at 0x801c68950>
2007 <itertools._grouper object at 0x801bb3a90>
2011 <itertools._grouper object at 0x801c68950>

You need to turn each <itertools._grouper object ...> into an actual list before storing it away, because the next iteration of groupby resets the iterator. If you don't, there's just the one useful iterator left, so when you print the contents of the dictionary, you get the one non-empty list (which uses up the iterator). Printing it a second time, you'll get all-empty lists.

The key is to list-ify the iterators while they are still good (I see several others beat me to example code, I prefer falsetru's variant).

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2  
From docs: Because the source is shared, when the groupby() object is advanced, the previous group is no longer visible. So, if that data is needed later, it should be stored as a list. –  Ashwini Chaudhary Oct 1 '13 at 6:30
    
Yep, basically the same statement, but shorter and more precise (I don't say exactly why the older <itertools._grouper object ...>s become useless), but I suspect that version might fly over the OP's head :-) –  torek Oct 1 '13 at 6:35
    
Your answer is clear enough, just wanted to add some reference to docs. –  Ashwini Chaudhary Oct 1 '13 at 6:42

Try the non-streaming groupby operation from toolz

$ pip install toolz
$ ipython

In [1]: from toolz import groupby

In [2]: years_list = [u'201003', u'200403', u'200803', u'200503', u'201303',
   ...:  u'200903', u'200603', u'201203', u'200303', u'200703', u'201103']

In [3]: get_year = lambda year_month: year_month[:-2]

In [4]: groupby(get_year, years_list)
Out[4]: 
{u'2003': [u'200303'],
 u'2004': [u'200403'],
 u'2005': [u'200503'],
 u'2006': [u'200603'],
 u'2007': [u'200703'],
 u'2008': [u'200803'],
 u'2009': [u'200903'],
 u'2010': [u'201003'],
 u'2011': [u'201103'],
 u'2012': [u'201203'],
 u'2013': [u'201303']}
share|improve this answer

According to this answer, you can do this to convert it into a dict:

group_by_yrs_list = dict((k,list(v)) for k,v in groupby(years_list, key=lambda x: x[:4]))

It's because the output of groupby is an itertools.groupby object, which is a kind of generator, which apparently can't be used directly as the argument for the dict constructor.

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