79

I am using generators to perform searches in lists like this simple example:

>>> a = [1,2,3,4]
>>> (i for i, v in enumerate(a) if v == 4).next()
3

(Just to frame the example a bit, I am using very much longer lists compared to the one above, and the entries are a little bit more complicated than int. I do it this way so the entire lists won't be traversed each time I search them)

Now if I would instead change that to i == 666, it would return a StopIteration because it can't find any 666 entry in a.

How can I make it return None instead? I could of course wrap it in a try ... except clause, but is there a more pythonic way to do it?

9
  • Can I ask why you're using generators to search for things? Aug 18, 2011 at 3:45
  • What do you expect to happen if you search for something you already passed over? Why not just use the more 'pythonic' way like if i in a: ...?
    – Manny D
    Aug 18, 2011 at 3:46
  • @Manny D, if i in a doesn't help if you want to get the index of the found item.
    – senderle
    Aug 18, 2011 at 4:04
  • @senderle You could use a.index(i). You don't get the nicety of using enumerate, true, but I'm really getting at why you'd use a generator to search a list.
    – Manny D
    Aug 18, 2011 at 4:11
  • 1
    @Manny D, true, but only for iterables with a defined index method. Additionally, if you want to test for something other than simple equality -- say if you want to find the first item that's > 5 -- then index doesn't help. Still, you're right that in the specific example c00kiemonster gave, index is the more sensible approach.
    – senderle
    Aug 18, 2011 at 4:15

2 Answers 2

171

If you are using Python 2.6+ you should use the next built-in function, not the next method (which was replaced with __next__ in 3.x). The next built-in takes an optional default argument to return if the iterator is exhausted, instead of raising StopIteration:

next((i for i, v in enumerate(a) if i == 666), None)
3
  • I didn't know the built-in function had changed. That makes it a whole lot easier for sure Aug 18, 2011 at 4:07
  • 2
    Thank you for answering. But I'm using Python 3.6.3 which is working for my project too.
    – M.Bonjour
    Apr 28, 2018 at 3:51
  • @Johnny: in Python 3.x, the .next method was replaced. But the next function is the same as before, and is what should be used regardless of the version. May 30, 2022 at 20:08
7

You can chain the generator with (None,):

from itertools import chain
a = [1,2,3,4]
print chain((i for i, v in enumerate(a) if v == 6), (None,)).next()

but I think a.index(2) will not traverse the full list, when 2 is found, the search is finished. you can test this:

>>> timeit.timeit("a.index(0)", "a=range(10)")
0.19335955439601094
>>> timeit.timeit("a.index(99)", "a=range(100)")
2.1938486138533335
2
  • 1
    The chain thing was very clever, didn't think of that one. Yes index() isn't bad, but in my real case I can't really use it as the list entries are objects rather than variables. EDIT: I am comparing object attributes and other fun stuff rather than just looking for the object itself. Aug 18, 2011 at 3:48
  • 1
    Sorry to say this, but this is an over-complicated solution. The next built-in function already offers this functionality in a clean way. @c00kiemonster, I think you should use (and accept) zeekay's answer.
    – senderle
    Aug 18, 2011 at 4:02

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