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I have a function. matchCondition(a), which takes an integer and either returns True or False.

I have a list of 10 integers. I want to return the first item in the list (in the same order as the original list) that has matchCondition returning True.

As pythonically as possible.

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marked as duplicate by Ian, Erik Schierboom, Mark Bell, Dirk, matino Jul 18 '13 at 8:59

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.

2 Answers 2

up vote 26 down vote accepted
next(x for x in lst if matchCondition(x)) 

should work, but it will raise StopIteration if none of the elements in the list match. You can suppress that by supplying a second argument to next:

next((x for x in lst if matchCondition(x)), None)

which will return None if nothing matches.


>>> next(x for x in range(10) if x == 7)  #This is a silly way to write 7 ...
>>> next(x for x in range(10) if x == 11)
Traceback (most recent call last):
  File "<stdin>", line 1, in <module>
>>> next((x for x in range(10) if x == 7), None)
>>> print next((x for x in range(10) if x == 11), None)

Finally, just for completeness, if you want all the items that match in the list, that is what the builtin filter function is for:

all_matching = filter(matchCondition,lst)

In python2.x, this returns a list, but in python3.x, it returns an iterable object.

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Interesting application of next, I never would have thought of it. –  Mark Ransom Jan 16 '13 at 20:02
@MarkRansom -- It's an idiom that I picked up around here once upon a time and for whatever reason I've never let it go. As a side note, the performance of generator expressions i've found to be pretty poor. For small lists you don't gain any benefit from the short circuiting...i.e. [x for x in lst if matchCondition(x)][0] is probably faster in a lot of applications (or the corresponding expression using filter, but that's not python2 python3 compatible ... –  mgilson Jan 16 '13 at 20:04
But to make it safe in the case of no matching results you would need ([x for x in lst if matchCondition(x)] or [None])[0] which is really ugly. –  Mark Ransom Jan 16 '13 at 20:07
@MarkRansom -- Never even thought of doing it that way, but I agree -- That's not the way to go and performance isn't everything (hence my answer). I just figured that it should be documented somewhere that this isn't always the best performing variation of this answer. –  mgilson Jan 16 '13 at 20:13

Use the break statement:

for x in lis:
  if matchCondition(x):
     print x
     break            #condition met now break out of the loop

now x contains the item you wanted.


>>> for x in xrange(10):
   ....:     if x==5:
   ....:         break

>>> x
>>> 5
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This is fine unless none of the conditions match then it just returns collection[-1] –  Jakob Bowyer Jan 16 '13 at 19:58
The proof - I smiled :) –  phant0m Jan 17 '13 at 0:43
@JakobBowyer to handle that we have the for-else` loop. –  Ashwini Chaudhary Jan 17 '13 at 9:20

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