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Given a list I need to return a list of lists of unique items. I'm looking to see if there is a more Pythonic way than what I came up with:

def unique_lists(l):
    m = {}
    for x in l:
        m[x] = (m[x] if m.get(x) != None else []) + [x]
    return [x for x in m.values()]    

print(unique_lists([1,2,2,3,4,5,5,5,6,7,8,8,9]))

Output:

[[1], [2, 2], [3], [4], [5, 5, 5], [6], [7], [8, 8], [9]]
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Thank you for Counter, groupby and defaultdict solutions! I learned something new today. –  Yuriy Zubarev Mar 30 '12 at 4:21

2 Answers 2

up vote 9 down vote accepted
>>> L=[1,2,2,3,4,5,5,5,6,7,8,8,9]
>>> from collections import Counter
>>> [[k]*v for k,v in Counter(L).items()]
[[1], [2, 2], [3], [4], [5, 5, 5], [6], [7], [8, 8], [9]]
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1  
I originally posted a solution that was one line shorter by simply using the list's built in count method, but gnibbler makes the excellent point that list.count() is O(n), making my algorithm O(n^2). +1 –  Nolen Royalty Mar 30 '12 at 4:08
3  
There's no reason that the creation of the Counter can't be folded into the list comprehension here: [[k]*v for k, v in Counter(L).items()]. –  Karl Knechtel Mar 30 '12 at 4:13
    
@Karl, I agree, I don't think it's any less readable –  John La Rooy - AKA gnibbler Mar 30 '12 at 4:17
1  
My rule of thumb is to automatically elide temporaries that are only written once and read once, unless they represent significant complexity ("flat is better than nested"). –  Karl Knechtel Mar 30 '12 at 5:49

Using default dict.

>>> from collections import defaultdict
>>> b = defaultdict(list)
>>> a = [1,2,2,3,4,5,5,5,6,7,8,8,9]
>>> for x in a:
...     b[x].append(x)
...
>>> b.values()
[[1], [2, 2], [3], [4], [5, 5, 5], [6], [7], [8, 8], [9]]
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