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I have such code:

a = [[1, 1], [2, 1], [3, 0]]

I want to get two lists, the first contains elements of 'a', where a[][1] = 1, and the second - elements where a[][1] = 0. So

first_list = [[1, 1], [2, 1]] 

second_list = [[3, 0]]. 

I can do such thing with two list comprehension:

first_list = [i for i in a if i[1] == 1]

second_list = [i for i in a if i[1] == 0]

But maybe exists other (more pythonic, or shorter) way to do this? Thanks for your answers.

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6 Answers 6

up vote 7 down vote accepted

List comprehension are very pythonic and the recommended way of doing this. Your code is fine.

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Agreed. There are 2 distinct lists/data sets, therefore 2 separate comprehensions should be used. –  Jordan May 27 '11 at 8:03
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If you want to have it in a single line you could do something like

first_list, second_list = [i for i in a if i[1] == 1], [i for i in a if i[1] == 0]

Remember that, "Explicit is better than implicit."

Your code is fine

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You can use sorted() and itertools.groupby() to do this, but I don't know that it would qualify as Pythonic per se:

>>> dict((k, list(v)) for (k, v) in itertools.groupby(sorted(a, key=operator.itemgetter(1)), operator.itemgetter(1)))
{0: [[3, 0]], 1: [[1, 1], [2, 1]]}
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Seems more complicated than just using the comprehensions? But I love the use of itertoos so +1 –  Jakob Bowyer May 27 '11 at 8:41
    
More complicated, certainly. But as the number of things you want to do with the data grows the faster this solution becomes, relatively speaking. –  Ignacio Vazquez-Abrams May 27 '11 at 8:45
    
Just as a side note whats operator for? –  Jakob Bowyer May 27 '11 at 11:12
    
Various operations. –  Ignacio Vazquez-Abrams May 27 '11 at 15:53
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what about this,

In [1]: a = [[1, 1], [2, 1], [3, 0]]

In [2]: first_list = []

In [3]: second_list = []

In [4]: [first_list.append(i) if i[1] == 1 else second_list.append(i) for i in a]
Out[4]: [None, None, None]

In [5]: first_list, second_list
Out[5]: ([[1, 1], [2, 1]], [[3, 0]])

instead of two sublist, I prefer dict (or defaultdict, OrderedDict, Counter, etc.)

In [6]: from collections import defaultdict

In [7]: d = defaultdict(list)

In [8]: [d[i[1]].append(i) for i in a]
Out[8]: [None, None, None]

In [9]: d
Out[9]: {0: [[3, 0]], 1: [[1, 1], [2, 1]]}
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Using list comprehensions strictly for side effects is anti-Pythonic. –  Ignacio Vazquez-Abrams May 27 '11 at 8:08
    
@lgnacio, agree, sometimes it maybe more readable without list comprehension(replace it with some for loop style) –  sunqiang May 27 '11 at 8:12
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If the lists are reasonably short then two list comprehensions will do fine: you shouldn't be worried about performance until your code is all working and you know it is too slow.

If your lists are long or the code runs often and you have demonstrated that it is a bottleneck then all you have to do is switch from list comprehensions to a for loop:

first_list, second_list = [], []
for element in a:
    if element[1] == 1:
        first_list.append(element)
    else:
        second_list.append(element)

which is both clear and easily extended to more cases.

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list comprehensions are great. If you want slightly more simple code (but slightly longer) then just use a for loop.

Yet another option would be filters and maps:

a = [[1, 1], [2, 1], [3, 0]]
g1=filter(lambda i: i[1]==1,a)
g1=map(lambda i: i[0],g1)
g2=filter(lambda i: i[1]==0,a)
g2=map(lambda i: i[0],g2)
print g1
print g2
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