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L=[2,4,5,6,2,1,6,6,3,2,4,5,3,4,5]

I want to know how many times an arbitrary sub-sequence shows up, s=[2,4,5] for instance would return 2 times.

I tried L.count(s) but it does not work because I think it is expecting to look for something like [random numbers ... [2,4,5] ... random numbers] instead of 2,4,5 without the brackets.

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Necessarily contiguous or not? –  DSM Apr 27 '13 at 22:56
    
contiguous yes . –  RTG_FRE Apr 27 '13 at 22:58

2 Answers 2

up vote 3 down vote accepted
>>> L = [2,4,5,6,2,1,6,6,3,2,4,5,3,4,5]
>>> s = [2,4,5]
>>> sum(1 for i in range(len(L)) if L[i:i+len(s)]==s)
2

Almost the same thing, slightly shorter (uses the fact that True can behave like the number 1):

>>> sum(L[i:i+len(s)]==s for i in range(len(L)))
2
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I think it's a bit unreadable, taking advantage of the fact that bool is an int. –  Elazar Apr 27 '13 at 23:04
2  
@Elazar No it is not a bit unreadable, come back here you have read this: stackoverflow.com/a/3175293/1219006 –  jamylak Apr 27 '13 at 23:06
    
@jamylak I did. A year ago, it would have taken me more than a couple of seconds to get that, and I came to Python from C. If I am not the worse programmer in the world (which is possible, I admit) it means it's less readable than using the if construct. It's my own personal view, anyway. –  Elazar Apr 27 '13 at 23:14
    
@Elazar Are you saying you read that linked question a year ago? nvm I misread the first part, didn't see the period. Basically it is considered Pythonic to do this, it can be your own personal view if you dislike it... –  jamylak Apr 27 '13 at 23:16
1  
Your string-based one is dangerous: it'll also find [2, 4, 5] in [22, 4, 5]. –  DSM Apr 27 '13 at 23:56
x=0
for i in range(len(L)):
    if L[i:i+len(s)]==s:
        x+=1

or make it list-comprehension:

len([None for i in range(len(L)) if L[i:i+len(s)]==s])
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