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In Python, I would like to get the first item from a list matching a condition. For example, the following function is adequate:

def first(the_iterable, condition = lambda x: True):
    for i in the_iterable:
        if condition(i):
            return i

This function could be used something like this:

>>> first(range(10))
0
>>> first(range(10), lambda i: i > 3)
4

However, I can't think of a good built-in / one-liner to let me do this (and I don't particularly want to copy this function around if I don't have to). Any ideas?

(It's important that the resulting method not process the entire list, which could be quite large.)

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7 Answers 7

up vote 62 down vote accepted

In Python 2.6 or better:

  • next(x for x in the_iterable if x > 3)

    if you want StopIteration to be raised if no matching element is found,

  • next( (x for x in the_iterable if x>3), default_value)

    if you want default_value (e.g. None) to be returned instead.
    Note that you need an extra pair of parentheses around the generator expression in this case - they are needed always when the generator expression isn't the only argument.

I see most answers resolutely ignore the next built-in and so I assume that for some mysterious reason they're 100% focused on versions 2.5 and older -- without mentioning the Python-version issue (but then I don't see that mention in the answers that do mention the next built-in, which is why I thought it necessary to provide an answer myself -- at least the "correct version" issue gets on record this way;-).

In 2.5, the .next() method of iterators immediately raises StopIteration if the iterator immediately finishes -- i.e., for your use case, if no item in the iterable satisfies the condition. If you don't care (i.e., you know there must be at least one satisfactory item) then just use .next() (best on a genexp, line for the next built-in in Python 2.6 and better).

If you do care, wrapping things in a function as you had first indicated in your Q seems best, and while the function implementation you proposed is just fine, you could alternatively use itertools, a for...: break loop, or a genexp, or a try/except StopIteration as the function's body, as various answers suggested. There's not much added value in any of these alternatives so I'd go for the starkly-simple version you first proposed.

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3  
Doesn't work as you describe. It raises StopIteration when no element found –  Suor Oct 5 '11 at 4:17
    
You can use next with a default argument and it wont raise an error. –  jamylak Apr 20 '12 at 4:45
    
Since this comes up in search results, I've followed @Suor's comment from 2011 and reworded the first paragraph a bit to make things more clear. Please go ahead and amend my edit if you need to. –  Kos Jan 18 '13 at 17:53

Similar to using ifilter, you could use a generator expression:

>>> (x for x in xrange(10) if x > 5).next()
6

In either case, you probably want to catch StopIteration though, in case no elements satisfy your condition.

Technically speaking, I suppose you could do something like this:

>>> foo = None
>>> for foo in (x for x in xrange(10) if x > 5): break
... 
>>> foo
6

It would avoid having to make a try/except block. But that seems kind of obscure and abusive to the syntax.

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+1: Not obscure, nor abusive. All things considered, the last one seems pretty clean. –  S.Lott Mar 2 '10 at 10:56
    
The last one isn't at all clean—for foo in genex: break is just a way of doing foo = next(genex) without making the assignment clear and with the exception that would be raised if the operation doesn't make sense being squashed. Ending up with a failure code instead of catching an exception is usually a bad thing in Python. –  Mike Graham Mar 2 '10 at 16:49

For older versions of Python where the next built-in doesn't exist:

(x for x in range(10) if x > 3).next()
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The itertools module contains a filter function for iterators. The first element of the filtered iterator can be obtained by calling next() on it:

from itertools import ifilter

print ifilter((lambda i: i > 3), range(10)).next()
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Generator expressions are simpler. –  EOL Mar 2 '10 at 8:34
1  
(i)filter and (i)map can make sense for cases where the functions being applied already exist, but in a situation like this it makes a lot more sense just to use a generator expression. –  Mike Graham Mar 2 '10 at 16:53

I would write this

next(x for x in xrange(10) if x > 3)
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I guess i > 3 should be x > 3 in your example –  Ricky Robinson Sep 26 at 9:01
    
@RickyRobinson, Thanks. Fixed. –  Mike Graham Sep 27 at 14:39

Since you've requested a built-in one-liner, this will avoid the issue of a StopIteration exception, though it requires that your iterable is small so you can cast it to a list, since that is the only construct I know of which will swallow a StopIteration and let you peek at the values:

(lambda x:x[0] if x else None)(list(y for y in ITERABLE if CONDITION))

(If no element matches, you will get None rather than a StopIteration exception.)

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Oneliner:

thefirst = [i for i in range(10) if i > 3][0]

If youre not sure that any element will be valid according to the criteria, you should enclose this with try/except since that [0] can raise an IndexError.

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TypeError: 'generator' object is unsubscriptable –  Josh Lee Mar 2 '10 at 8:42
    
My bad, should be list comprehension not a generator, fixed... thanks! :) –  Mizipzor Mar 2 '10 at 8:54
    
There is no reason to evaluate the whole iterable (which may not be possible). It is more robust and efficient to use one of the other solutions provided. –  Mike Graham Mar 2 '10 at 16:55

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