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I have a generator function like the following:

def myfunct():
  ...
  yield result

The usual way to call this function would be:

for r in myfunct():
  dostuff(r)

My question, is there a way to get just one element from the generator whenever I like? For example, I'd like to do something like:

while True:
  ...
  if something:
      my_element = pick_just_one_element(myfunct())
      dostuff(my_element)
  ...
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4 Answers 4

up vote 46 down vote accepted

Create an generator using

g = myfunct()

Everytime you would like an item, use

g.next()

or

next(g)

to get it. If the generator exits, it will raise StopIteration, so catch this exception if necessary.

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3  
Note, it will only raise StopIteration when you try to use g.next() after the last item in g has been provided. –  Wilduck Jan 19 '11 at 22:11
5  
next(gen, default) may also be used to avoid the StopIteration exception. For example next(g, None) for a generator of strings will either yield a string or None after the iteration was finished. –  Attila Mar 6 '13 at 14:18
1  
in Python 3000, next() is __next__() –  Jonathan Baldwin Apr 10 at 2:52
1  
@JonathanBaldwin: Your comment is somewhat misleading. In Python 3, you would use the second syntax given in my answer, next(g). This will internally call g.__next__(), but you don't really have to worry about that, just as you usually don't care that len(a) internally calls a.__len__(). –  Sven Marnach Apr 10 at 10:31
1  
I should have been more clear. g.next() is g.__next__() in py3k. The builtin next(iterator) has been around since Python 2.6, and is what should be used in all new Python code, and it's trivial to backimplement if you need to support py <= 2.5. –  Jonathan Baldwin Apr 10 at 19:58

I believe the only way is to get a list from the iterator then get the element you want from that list.

l = list(myfunct())
l[4]
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Sven's answer is probably better, but I'll just leave this here incase it's more inline with your needs. –  keegan3d Jan 19 '11 at 22:00
6  
Make sure that you have a finite generator before doing this. –  Seth Jan 19 '11 at 22:21
1  
Sorry, this has complexity the length of the iterator, while the problem is obviously O(1). –  tohecz Oct 21 at 16:30

I don't believe there's a convenient way to retrieve an arbitrary value from a generator. The generator will provide a next() method to traverse itself, but the full sequence is not produced immediately to save memory. That's the functional difference between a generator and a list.

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generator = myfunct()
while True:
   my_element = generator.next()

make sure to catch the exception thrown after the last element is taken

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