Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

This question already has an answer here:

Let's say I have a list of arbitrary length, L:

L = list(range(1000))

What is the best way to split that list into groups of n? This is the best structure that I have been able to come up with, and for some reason it does not feel like it is the best way of accomplishing the task:

n = 25
for i in range(0, len(L), n):
    chunk = L[i:i+25]

Is there a built-in to do this I'm missing?

Edit: Early answers are reworking my for loop into a listcomp, which is not the idea; you're basically giving me my exact answer back in a different form. I'm seeing if there's an alternate means to accomplish this, like a hypothetical .split on lists or something. I also do use this as a generator in some code that I wrote last night:

def split_list(L, n):
    assert type(L) is list, "L is not a list"
    for i in range(0, len(L), n):
        yield L[i:i+n]
share|improve this question

marked as duplicate by unutbu Jan 21 at 11:49

This question has been asked before and already has an answer. If those answers do not fully address your question, please ask a new question.

1  
create a generator for more Pythonic. But us for me - it is normal code :) –  Oduvan Oct 26 '09 at 14:04
1  
@Jurily check out stackoverflow.com/questions/58968/… –  Steg Oct 26 '09 at 14:17
3  
this question makes me think we need itertools.split(iterable, itervallen) –  u0b34a0f6ae Oct 26 '09 at 14:19
1  
@Jed: that's not an answer. No one argues that your code is not pythonic, however, the list-comprehensions version is simple, idiomatic and is fairly extensible. While other tricks posted work and might be even more efficient, I don't see how any of them are pythonic. P.S. please don't edit your answer if you're replying to a comment, it makes conversation very hard to follow. –  SilentGhost Oct 26 '09 at 15:08
2  
@SilentGhost, I agree that those tricks may not seem pythonic and are hard to understand for beginners. But they are suggested in python documentation as a recipe. That counts for something. –  Nadia Alramli Oct 26 '09 at 16:38

7 Answers 7

up vote 26 down vote accepted

A Python recipe (In Python 2.6, use itertools.izip_longest):

def grouper(n, iterable, fillvalue=None):
    "grouper(3, 'ABCDEFG', 'x') --> ABC DEF Gxx"
    args = [iter(iterable)] * n
    return itertools.zip_longest(*args, fillvalue=fillvalue)

Example usage:

>>> list(grouper(3, range(9)))
[(0, 1, 2), (3, 4, 5), (6, 7, 8)]
>>> list(grouper(3, range(10)))
[(0, 1, 2), (3, 4, 5), (6, 7, 8), (9, None, None)]

If you want the last group to be shorter than the others instead of padded with fillvalue, then you could e.g. change the code like this:

>>> def mygrouper(n, iterable):
...     args = [iter(iterable)] * n
...     return ([e for e in t if e != None] for t in itertools.zip_longest(*args))
... 
>>> list(mygrouper(3, range(9)))
[[0, 1, 2], [3, 4, 5], [6, 7, 8]]
>>> list(mygrouper(3, range(10)))
[[0, 1, 2], [3, 4, 5], [6, 7, 8], [9]]
share|improve this answer
    
Accepted because you got to it first. I'm not sure which is more Pythonic, as readability is important as well; however, this question did present some nice alternatives. –  Jed Smith Oct 26 '09 at 14:39
2  
If the actual list had None somewhere in the middle, your last function would remove those as well. –  cnu Oct 10 '11 at 5:11

Here you go:

list_of_groups = zip(*(iter(the_list),) * group_size)

Example:

print zip(*(iter(range(10)),) * 3)
[(0, 1, 2), (3, 4, 5), (6, 7, 8)]

If the number of elements is not divisible by N but you still want to include them you can use izip_longest but it is only available since python 2.6

izip_longest(*(iter(range(10)),) * 3)

The result is a generator so you need to convert it into a list if you want to print it.

Finally, if you don't have python 2.6 and stuck with an older version but you still want to have the same result you can use map:

print map(None, *(iter(range(10)),) * 3)
[(0, 1, 2), (3, 4, 5), (6, 7, 8), (9, None, None)]

I'd like to add some speed comparison between the different methods presented so far:

python -m timeit -s 'from itertools import izip_longest; L = range(1000)' 'list(izip_longest(*(iter(L),) * 3))'
10000 loops, best of 3: 47.1 usec per loop

python -m timeit -s 'L = range(1000)' 'zip(*(iter(L),) * 3)'
10000 loops, best of 3: 50.1 usec per loop

python -m timeit -s 'L = range(1000)' 'map(None, *(iter(L),) * 3)'
10000 loops, best of 3: 50.7 usec per loop

python -m timeit -s 'L = range(1000)' '[L[i:i+3] for i in range(0, len(L), 3)]'
10000 loops, best of 3: 157 usec per loop

python -m timeit -s 'import itertools; L = range(1000)' '[list(group) for key, group in itertools.groupby(L, lambda k: k//3)]'
1000 loops, best of 3: 1.41 msec per loop

The list comprehension and the group by methods are clearly slower than zip, izip_longest and map

share|improve this answer
1  
Your Python skills scare me a bit. :) Good answer! –  Jed Smith Oct 26 '09 at 14:18
3  
This should be the accepted answer. I couldn't remember the map and zip idioms for this, though I recalled they were the 'correct' way and this came up in a websearch -- thanks. –  Jonathan Vanasco Apr 25 '12 at 4:31
    
+1 for benchmarks on all the solutions. That's something people miss a lot in Python answers, and as one sees, it makes a very very big difference which method you use. –  yo' Feb 14 '14 at 13:16
1  
This works by passing multiple references to the same iterator to zip. It's a crazy hack. –  Zags Mar 18 '14 at 22:19

How about:

>>> n = 2
>>> l = [1,2,3,4,5,6,7,8,9]
>>> [ l[i:i+n] for i in range(0, len(l), n) ]
[[1, 2], [3, 4], [5, 6], [7, 8], [9]]
share|improve this answer
    
See my most recent edit. –  Jed Smith Oct 26 '09 at 14:07
1  
Nice one. Prefer this one, way better than zip for my use case. –  cedbeu Oct 9 '13 at 10:37
    
This may not be the fastest way to do it but it sure is the most pythonic. –  seriousdev Feb 15 at 11:46

Itertools.groupby is a fine tool, here is a way to split a list of integers simply by using integer division:

>>> for key, group in itertools.groupby(range(10), lambda k: k//3):
...  print key, list(group)
... 
0 [0, 1, 2]
1 [3, 4, 5]
2 [6, 7, 8]
3 [9]

(The list has to start with 0 to begin with a full group.)

share|improve this answer
n = 25    
list_of_lists = [L[i:i+n] for i in range(0, len(L), n)]

it gives you the list of lists [[0..24], [25..49], ..]

If len(L) % n isn't 0, the last element's (list_of_lists[-1]) lenght will be len(L) % n.

share|improve this answer
    
See my most recent edit. –  Jed Smith Oct 26 '09 at 14:06

Here is recursion version. It is inefficient because Python has recursion limits, but this version illustrates that every task can be solved through recursion.

def split_to_groups(l, n):
    assert (len(l) / n) < 998, "Can't split to {} groups".format(len(l) / n)
    if l == []:
        return []
    else:
        f = [l[:n]]
        f.extend(split_to_groups(l[n:], n))
        return f
share|improve this answer

And if how you choose them matters, random.sample(population, k), Return a k length list of unique elements chosen from the population sequence. Used for random sampling without replacement.

share|improve this answer

Not the answer you're looking for? Browse other questions tagged or ask your own question.