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I am perfectly aware of that..

sample=[[1,[1,0]],[1,1]]
[1,[1,0]] in sample

This will return True.

But what I want to do here is this.

sample=[[1,[1,0]],[1,1]]
[1,0] in sample

I want the return to be True, but this returns False. I can do this:

sample=[[1,[1,0]],[1,1]]
for i in range(len(sample)):
    [1,0] in sample[i]

But I am wondering if there is any better or efficient way of doing it.

share|improve this question
    
You can use for index, elem in enumerate(sample): [1, 0] in elem over range(len()) --unrelated, just cleaner – cat Feb 14 at 16:14
up vote 4 down vote accepted

you can use chain from itertools to merge the lists and then search in the returned list.

>>> sample=[[1,[1,0]],[1,1]]
>>> from itertools import chain
>>> print [1,0]  in chain(*sample)
True
share|improve this answer
    
This would fail however if any element of the initial list is not iterable. – schwobaseggl Feb 14 at 10:43
2  
the question says list of lists. if you want to find lists in an arbitrary structure this would be entering parsing territory. where pattern matching or visitors would perhaps apply. (note that both would require traversal of a set of known structures). – Alex Feb 14 at 12:39

A recursive solution that would work for arbitrary (max recursion depth aside) deep nesting. Also works if any elements of the outermost list are not iterables themselves.

from functools import partial

def contains_nested(some_iterable, elmnt):
    try:
        if elmnt in some_iterable:
            return True
    except TypeError:  # some_iterable is not iterable
        return False
    else:
        return any(map(partial(contains_nested, elmnt=elmnt), some_iterable))
share|improve this answer

I don't know how to solve this completely without a loop. But in Python you should never write for i in range(len(sample)).

So the answer to your question: Yes there is a better and faster way you could loop your list for i in sample

The way Python handles the loops is really fast and works also very well with a lot of entriey (more than 50.000).

share|improve this answer

You can flatten your sample list and then search in that flattened list:

> sample = [[1, [1, 0]], [1, 1]]
> [1, 0] in [item for sublist in sample for item in sublist]
> True
share|improve this answer
    
But then [1,1] will fail since it'll be flatten to 1,1. – Maroun Maroun Feb 14 at 9:44
    
@MarounMaroun yes, it will not find the 1,1 but the "working" for loop given in the question will not find this either, so I thought it should be this way. – bastelflp Feb 14 at 9:51
    
Flatten the list may not able to handle all issues – Eric Young Feb 14 at 10:02

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