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

I would like to get 0 for 1,2 and 3 and to get 1 for 4, 5 and 6.

of course I can do something like that:

def get_index(my_list, my_item):
    for i, j in enumerate(my_list):
        if my_item in j:
            return i
    raise ValueError("Item not in any list")

Is there a better way of doing it?

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I think there's little room for improvement in your solution. –  hochl Oct 20 '12 at 12:42
    
Isn't there a nice Python one-liner? –  zenpoy Oct 20 '12 at 12:47
1  
next(i for i,j in enumerate(a) if my_item in j) is a one-liner, but it raises StopIteration instead on failure, and so your error message is better. You could add a default value of None or something, but I think I still prefer your solution. If you're doing this multiple times though it'd probably be better to build an index dict. –  DSM Oct 20 '12 at 12:48
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2 Answers

up vote 2 down vote accepted

Updated Answer:

This is an improved version of my original answer, thanks to input from zenply, the OP.

b = [[1,2,3],[4,5,6],[1,4,5], [4,7,8]]

def create_dict_2(a):
    my_dict = {}
    for index, sublist in enumerate(a):
        for ele in sublist:
            if not ele in my_dict:
                my_dict[ele] = index
    return my_dict

Result:

>>> my_dict = create_dict(b)
>>> my_dict[4]
1
>>> my_dict[5]
1
>>> my_dict[1]
0
>>> my_dict[7]
3
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This is subtly different from the OP's in the case of duplicate elements; the OP's code returns the index of first occurrence and this returns the last. [Probably that's not relevant, but it's worth noting.] –  DSM Oct 20 '12 at 12:53
    
@DSM, Yes, you right, my solution is only the same if all occurrences are unique. Good Point. –  Akavall Oct 20 '12 at 12:59
    
If you loop over a in reverse, it should recover the OP's behaviour, I think. –  DSM Oct 20 '12 at 13:01
    
@DSM I updated my answer to reflect your point. Thanks. –  Akavall Oct 20 '12 at 13:14
    
@Akavall the correct way of correcting the original enswer would be to add if not ele in my_dict: before updating the dictionary - this way you also updating the dictionary once and not o(n) times in the worst case. –  zenpoy Oct 20 '12 at 13:16
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Not sure if this is more readable, but it does handle the case where there's more than one sublist with the item in it:

def get_index(my_list, my_item):
    indices = [i for i, sublist in enumerate(my_list) if my_item in sublist]
    if len(indices) == 1:
        return indices[0]
    raise ValueError("Item not in any list or in multiple lists")
share|improve this answer
    
I didn't say it explicitly in the question, but I do prefer getting the first index. –  zenpoy Oct 20 '12 at 12:56
    
In that case, you could do it in one line: [i for i, sublist in enumerate(my_list) if my_item in sublist][0] although then you get an IndexError if it's not there. –  jobby Oct 20 '12 at 13:00
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