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An example list of lists:

[
["url","name","date","category"]
["hello","world","2010","one category"]
["foo","bar","2010","another category"]
["asdfasdf","adfasdf","2010","one category"]
["qwer","req","2010","another category"]
]

What I wish do to is create a dictionary -> category : [ list of entries ].

The resultant dictionary would be:

{"category" : [["url","name","date","category"]],
"one category" : [["hello","world","2010","one category"],["asdfasdf","adfasdf","2010","one category"]],
"another category" : [["foo","bar","2010","another category"], ["qwer","req","2010","another category"]]}
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6 Answers

up vote 7 down vote accepted
dict((category, list(l)) for category, l 
     in itertools.groupby(l, operator.itemgetter(3))

The main thing here is the usage of itertools.groupby. It simply returns iterables instead of lists, which is why there's a call for list(l), which means that if you're ok with that, you can simply write dict(itertools.groupby(l, operator.itemgetter(3)))

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1  
You can use operator.itemgetter(3) instead of that lambda. –  Ignacio Vazquez-Abrams Jan 19 '10 at 9:32
    
@Ignacio - you're right, I always forget that one. –  abyx Jan 19 '10 at 9:33
1  
I never know if these 1/2 liners that utilize itertools/lambdas/whatnot are better than the more verbose/explicit versions. For someone reading this without seeing an example of what's happening it's very hard to understand. –  Idan K Jan 19 '10 at 9:44
    
@Idan - After reading once what groupby does, this is pretty straightforward. And if these 2 lines are in a method called group_by_categories it's even better. –  abyx Jan 19 '10 at 9:47
    
Note that for this to work correctly, the input list must first be sorted with the same function passed to groupby. –  Chris Nov 15 '12 at 2:11
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newdict = collections.defaultdict(list)
for entry in biglist:
  newdict[entry[3]].append(entry)
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newdict['category that does not exist'] adds a new element to newdict. This might be fine with the original poster, but this is a very specific semantics. –  EOL Jan 19 '10 at 10:16
1  
@EOL: It only picks up categories that are in the original list, so I don't see an issue here. –  Ignacio Vazquez-Abrams Jan 19 '10 at 10:18
    
In general, there is no reason for newdict['category that does not exist'] to be set to [] when 'category that does not exist' is not in biglist. For instance, the existence of some categories could be tested with try: newdict['example category'] except KeyError:… If newdict is a collections.defaultdict, no exception will be raised, whereas a dict would raise an exception. I just wanted to give a caveat: collections.defaultdicts do not behave exactly like dicts, and the original poster wanted a dict. –  EOL Jan 19 '10 at 14:50
    
In short, you can't make it behave like a defaultdict during initialization and like a dict afterwards. –  Robert Rossney Jan 19 '10 at 20:58
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A variation on ghostdog74's answer, which fully uses the semantics of setdefaults:

result={}
for li in list_of_lists:
    result.setdefault(li[-1], []).append(li)
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list_of_lists=[
["url","name","date","category"],
["hello","world","2010","one category"],
["foo","bar","2010","another category"],
["asdfasdf","adfasdf","2010","one category"],
["qwer","req","2010","another category"]
]
d={}
for li in list_of_lists:
    d.setdefault(li[-1], [])
    d[ li[-1] ].append(li)
for i,j in d.iteritems():
    print i,j
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1  
+1, but see my answer, which makes use of the fact that setdefault() returns a value. –  EOL Jan 19 '10 at 10:18
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d = {}
for e in l:
    if e[3] in d:
        d[e[3]].append(e)
    else:
        d[e[3]] = [e]
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people really donnot like straightforward... –  Dyno Hongjun Fu Jan 19 '10 at 10:21
    
forget list is non-hashable... –  Dyno Hongjun Fu Jan 20 '10 at 5:44
    
What's wrong with this? It's straightforward, and it does work. L[0][3] is "category", and so on. –  telliott99 Jan 20 '10 at 18:54
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>>> l = [
... ["url","name","date","category"],
... ["hello","world","2010","one category"],
... ["foo","bar","2010","another category"],
... ["asdfasdf","adfasdf","2010","one category"],
... ["qwer","req","2010","another category"],
... ]
#Intermediate list to generate a more dictionary oriented data
>>> dl = [ (li[3],li[:3]) for li in l ]
>>> dl
[('category', ['url', 'name', 'date']), 
 ('one category', ['hello', 'world', '2010']), 
 ('another category', ['foo', 'bar', '2010']), 
 ('one category', ['asdfasdf', 'adfasdf', '2010']), 
 ('another category', ['qwer', 'req', '2010'])]
#Final dictionary
>>> d = {}
>>> for cat, data in dl:
...   if cat in d:
...     d[cat] = d[cat] + [ data ]
...   else:
...     d[cat] = [ data ]
...
>>> d
{'category': [['url', 'name', 'date']], 
 'one category': [['hello', 'world', '2010'], ['asdfasdf', 'adfasdf', '2010']], 
 'another category': [['foo', 'bar', '2010'], ['qwer', 'req', '2010']]}

The final data it's a little different as I haven't included on the data the category (seems quite pointless to me), but you can add it easily, if needed...

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