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I need to create a list of size N from already given list.

N = 3
a_list = [10,4,18,2,6,19,24,1,20]

The O/P should be:

[10,4,18] [4,18,2] [18,2,6] [2,6,19] [6,19,24] [19,24,1] [24,1,20]

It's like a window size of N=3 , which slides one step to its right.

How will I do it?

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no, that will be to get [10,4,18],[2,6,19],[24,1,20] –  CT Zhu Dec 6 '13 at 6:43
1  
@alko - I checked this thread already. But the problem was different –  user1162512 Dec 6 '13 at 6:50

3 Answers 3

up vote 5 down vote accepted

A faster way:

>>> zip(a_list,a_list[1:],a_list[2:])
[(10, 4, 18), (4, 18, 2), (18, 2, 6), (2, 6, 19), (6, 19, 24), (19, 24, 1), (24, 1, 20)]

Comparison:

In [6]: %timeit [a_list[i:i+n] for i in xrange(len(a_list)-n+1)]
100000 loops, best of 3: 9.61 us per loop

In [7]: %timeit zip(a_list,a_list[1:],a_list[2:])
100000 loops, best of 3: 5.23 us per loop

Or more general:

>>> zip(*[a_list[i:] for i in range(3)]) #3 (or 2, 4, 5, etc)is the length of step

For larger list, probably you have to use numpy to get a faster solution than @Ashwini Chaudhary's (http://www.rigtorp.se/2011/01/01/rolling-statistics-numpy.html):

import numpy as np
lista=np.array(lis)
def rolling_window(a, window):
    shape = a.shape[:-1] + (a.shape[-1] - window + 1, window)
    strides = a.strides + (a.strides[-1],)
    return np.lib.stride_tricks.as_strided(a, shape=shape, strides=strides)

%timeit [lis[i:i+n] for i in xrange(len(lis)-n+1)] 
%timeit rolling_window(lista, n)

1 loops, best of 3: 171 ms per loop
100000 loops, best of 3: 19.7 µs per loop
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What if I've n=5? –  user1162512 Dec 6 '13 at 6:31
    
Here you go, see edit. –  CT Zhu Dec 6 '13 at 6:32
    
Please explain. how will zip(*[a_list[i:] for i in range(3)]) be valid for n=5 –  user1162512 Dec 6 '13 at 6:33
1  
how about map(int,s[:-1].split(' ')), s is your line 10 4 18 2 6 19 24 1 20\n, because when you readline() there is a \n in the end. –  CT Zhu Dec 6 '13 at 6:39
1  
@Ashwini Chaudhary. That's interesting. Can't keep wondering about why it is so. For large dimension, probably there is no better way than yours except using numpy, see edit. Cheers. –  CT Zhu Dec 6 '13 at 16:30

Use list comprehension and slicing:

>>> lis = [10,4,18,2,6,19,24,1,20]
>>> n = 3
>>> [lis[i:i+n] for i in xrange(len(lis)-n+1)]
[[10, 4, 18], [4, 18, 2], [18, 2, 6], [2, 6, 19], [6, 19, 24], [19, 24, 1], [24, 1, 20]]
>>> n = 4
>>> [lis[i:i+n] for i in xrange(len(lis)-n+1)]
[[10, 4, 18, 2], [4, 18, 2, 6], [18, 2, 6, 19], [2, 6, 19, 24], [6, 19, 24, 1], [19, 24, 1, 20]]

For a bigger list the zip based approach is actually slower:

In [27]: n = 100                                                                                 

In [28]: lis = [10,4,18,2,6,19,24,1,20]*10000                                                    

In [30]: %timeit zip(*[lis[i:] for i in xrange(n)])                                              
1 loops, best of 3: 593 ms per loop                                                              

In [31]: %timeit [lis[i:i+n] for i in xrange(len(lis)-n+1)]                                      
10 loops, best of 3: 114 ms per loop    
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1  
Dang, i was slightly late. +1 sir. –  aIKid Dec 6 '13 at 6:14
    
Thanks. I was actually also actually thinking of using slicing, but was not clear on my thoughts. Thanks. –  user1162512 Dec 6 '13 at 6:18
    
Now I've a string in my file as 10 4 18 2 6 19 24 1 20 . I'm able to read that string but how should I convert this 'Line' to an List? –  user1162512 Dec 6 '13 at 6:25
    
What I'm doing is list((f1.readline()).replace(" ","")). it returns me ['1', '0', '4', '1', '8', '2', '6', '1', '9', '2', '4', '1', '2', '0', '\n'] –  user1162512 Dec 6 '13 at 6:29
    
@user1162512 lis = '10 4 18 2 6 19 24 1 20'.split() –  Ashwini Chaudhary Dec 6 '13 at 7:37

try this

>>> lis = [10,4,18,2,6,19,24,1,20]
>>> n=3
>>> [lis[i:i+n] for i in range(len(lis))][:-2]

the output is

[[10, 4, 18], [4, 18, 2], [18, 2, 6], [2, 6, 19], [6, 19, 24], [19, 24, 1], [24, 1, 20]]
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