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I have a list of long strings and I'd like to get the indexes of the list elements that match a substring of strings in another list. Checking if a list item contains a a single string inside a list is easy to do with list comprehensions, like this question:

my_list = ['abc-123', 'def-456', 'ghi-789', 'abc-456']
thing_to_find = "abc"
matching = [i for i, x in enumerate(my_list) if thing_to_find in x]

However, I'd like to check not only if "abc" is in x, but if any strings in another list are in the list, like so:

my_list = ['abc-123', 'def-456', 'ghi-789', 'abc-456']
things_to_find = ['abc', 'def']

This obviously doesn't work (but it would be really cool if it did):

matching = [i for i, x in enumerate(my_list) if things_to_find in x]

I can find the list indexes if I run commands individually, but it's tedious and horrible:

print([i for i, x in enumerate(my_list) if 'abc' in x])
# [0, 3]
print([i for i, x in enumerate(my_list) if 'def' in x])
# [1]

What's the best way to find the indexes of all instances where elements from one list are found in another list?

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6 Answers 6

up vote 3 down vote accepted

You are looking for the any() function here:

matching = [i for i, x in enumerate(my_list) if any(thing in x for thing in things_to_find)]


>>> my_list = ['abc-123', 'def-456', 'ghi-789', 'abc-456']
>>> things_to_find = ['abc', 'def']
>>> [i for i, x in enumerate(my_list) if any(thing in x for thing in things_to_find)]
[0, 1, 3]
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This has quadratic performance - good for short things_to_find, poor for longer such lists. –  Marcin Aug 13 '13 at 14:41
@Marcin: to avoid that, you'd need to use a more efficient data structure that support searching for prefixes, or requires the input string to be split. –  Martijn Pieters Aug 13 '13 at 14:42
Like, say a compiled regex? Still, +1 –  Marcin Aug 13 '13 at 14:43
The actual things_to_find list has about 50 elements. With timeit, the any(in) solution takes 1.83 seconds, while the regex version takes 10.4. At what point will the regex be faster and more efficient? –  Andrew Aug 13 '13 at 14:48
That depends on the regular expression and how the distribution of matches; any() exits early so if most of your matches are early in the things_to_find list it'll work fast, but if most of your text does not have a match a good regular expression pattern could be faster. –  Martijn Pieters Aug 13 '13 at 14:52

Maybe something like?:

my_list = ['abc-123', 'def-456', 'ghi-789', 'abc-456']
things_to_find = ['abc', 'def']
for n, e in enumerate(my_list):
    for m in things_to_find:
        if m in e:
            print '%s is in %s at %s' % (m, e, n)


abc is in abc-123 at 0
def is in def-456 at 1
abc is in abc-456 at 3
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You are close:

matching = [i for i, x in enumerate(my_list) for keyword in things_to_find if keyword in x]

which gives [0,1,3].

You need to iterate through the things_to_find list as well, and see if the keyword is in x.

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-1 because any would be more readable, idiomatic, and efficient. –  Marcin Aug 13 '13 at 14:44

Might be a little slow, but why not try:

my_list = ['abc-123', 'def-456', 'ghi-789', 'abc-456']
things_to_find = ['abc', 'def']
for thing_to_find in things_to_find:
    matching = [i for i, x in enumerate(my_list) if thing_to_find in x]
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I like how this could easily make a dict of things to occurrences with this. +1 –  mr2ert Aug 13 '13 at 14:42

Build a regex, then test each list element against that:

import re
#must use search, not match because no wildcards, unless only looking for prefixes
regex = re.compile('|'.join(re.escape(interest) for interest in things_to_find))

Don't rebuild the regex every time you do the search - only rebuild when things_to_find changes.

I suspect you don't want the indices, but the elements:

[x for x in my_list if]

Or, if you really do want the indices:

[i for i,x in enumerate(my_list) if]

This will likely perform better than an any(in) solution (which is quadratic) for large things_to_find lists, but will be overkill for short lists. You'll also see more of a gain where the things in things_to_find are similar; and less of a gain if you can sort things_to_find such that more likely matches occur first, and if matches are likely.

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You do not need to add .* here. Use instead and avoid the backtracking. You also want to use re.escape() on interest to avoid enabling potential regular expression metacharacters in the things of interest. –  Martijn Pieters Aug 13 '13 at 15:07
@MartijnPieters Good point. –  Marcin Aug 13 '13 at 15:10
my_list = ['abc-123', 'def-456', 'ghi-789', 'abc-456']
things_to_find = ['abc', 'def']
matching = [[i for i, x in enumerate(my_list) if y in x]for y in things_to_find]
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