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Python: find first element in a sequence that matches a predicate

Is there a higher order function in Python standard library that encapsulates the following control flow pattern?

>>> def find(pred, coll):
...   for x in coll:
...     if pred(x):
...       return x
>>> find(lambda n : n % 2 == 0, [3, 5, 8, 9, 6])
>>> find(lambda n : n % 2 == 0, [3, 5, 7, 9, 6])
>>> find(lambda n : n % 2 == 0, [3, 5, 7, 9, 1])
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marked as duplicate by Piotr Dobrogost, casperOne Oct 17 '12 at 19:51

This question has been asked before and already has an answer. If those answers do not fully address your question, please ask a new question.

All of the answers were helpful to me, but since @ThiefMaster answered first, I am putting the green tick on his answer. :) I have upvoted all the answers. Thanks everyone. – missingfaktor Oct 17 '12 at 7:25

4 Answers 4

up vote 9 down vote accepted

You can combine ifilter and islice to get just the first matching element.

>>> list(itertools.islice(itertools.ifilter(lambda n: n % 2 == 0, lst), 1))

However, I wouldn't consider this anyhow more readable or nicer than the original code you posted. Wrapped in a function it will be much nicer though. And since next only returns one element there is no need for islice anymore:

def find(pred, iterable):
    return next(itertools.ifilter(pred, iterable), None)

It returns None if no element was found.

However, you still have the rather slow call of the predicate function every loop. Please consider using a list comprehension or generator expression instead:

>>> next((x for x in lst if x % 2 == 0), None)
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+1 itertools and comprehension is the most idiomatic way to do functional programming-style in my opinion :) – Morten Jensen Oct 17 '12 at 7:12
That's filter. I am looking for find. (i.e. a HOF that returns the first element that satisfies the predicate.) – missingfaktor Oct 17 '12 at 7:12
@missingfaktor: Updated my answer – ThiefMaster Oct 17 '12 at 7:17

itertools.ifilter() can do this, if you just grab the first element of the resulting iterable.

itertools.ifilter(pred, col1).next()

Similarly, so could a generator object (again, taking the first item out of the resulting generator):

(i for i in col1 if i % 2 == 0).next()

Since both of these are lazy-evaluated, you'll only evaluate as much of the input iterable as is necessary to get to the first element that satisfies the predicate. Note that if nothing matches the predicate, you'll get a StopIteration exception. You can avoid this by using the next() builtin instead:

next((i for i in col1 if i % 2 == 0), None)
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I hope this doesn't compute the whole collection prematurely? I need only the first element that meets the criterion. – missingfaktor Oct 17 '12 at 7:14
See the note I just edited in as you were writing your comment - both of the methods I mentioned are lazily evaluated. – Amber Oct 17 '12 at 7:14
Okay, thank you for the answer. – missingfaktor Oct 17 '12 at 7:17

I don't know of such a function off the top of my head, but you could just use a generator expression and take the first result.

x = (x for x in [3,5,8,9,6] if (lambda n: n % 2 == 0)(x))
y =

Or just

y = (x for x in [3,5,8,9,6] if (lambda n: n % 2 == 0)(x)).next()
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I think those will raise in case of no elements found – ThiefMaster Oct 17 '12 at 7:16
Yes, this will raise StopIteration if nothing is found. – samfrances Oct 17 '12 at 7:18
(x for x in coll if pred(x)).next()

Raises StopIteration if the item isn't found (which might be preferable to returning None, especially if None is a valid return value).

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