34

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?

  • Can I ask why you're using generators to search for things? – Conrad.Dean Aug 18 '11 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 '11 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 '11 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 '11 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 '11 at 4:15
95

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)
  • 1
    +1, this is the best way to do this. – senderle Aug 18 '11 at 4:03
  • I didn't know the built-in function had changed. That makes it a whole lot easier for sure – c00kiemonster Aug 18 '11 at 4:07
  • 1
    Thank you for answering. But I'm using Python 3.6.3 which is working for my project too. – Victor John Apr 28 '18 at 3:51
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
  • 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. – c00kiemonster Aug 18 '11 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 '11 at 4:02
  • No worries, good way to figure out the newer stuff in Python if nothing else... – c00kiemonster Aug 18 '11 at 4:30

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