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I'd like to know what happens when I pass the result of a generator function to python's enumerate(). Example:

def veryBigHello():
    i = 0
    while i < 10000000:
        i += 1
        yield "hello"

numbered = enumerate(veryBigHello())
for i, word in numbered:
    print i, word

Is the enumeration iterated lazily, or does it slurp everything into the first? I'm 99.999% sure it's lazy, so can I treat it exactly the same as the generator function, or do I need to watch out for anything?

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I presume you mean to increment i in veryBigHello. –  robert Aug 3 '10 at 13:24
    
@robert: if I am not mistaking i is automatically increased –  the_drow Aug 3 '10 at 13:27
    
@the_drow Not in the veryBigHello function itself. –  Will McCutchen Aug 3 '10 at 14:16
    
@Will: Oh, correct. But that's just nitpicking. It's an example. Fixed anyway. –  the_drow Aug 4 '10 at 6:25
    
@robert: whoops, yes! Thanks @the_drow - did you modify the post for me? –  Adam Aug 4 '10 at 7:31

4 Answers 4

up vote 24 down vote accepted

It's lazy. It's fairly easy to prove that's the case:

>>> def abc():
...     letters = ['a','b','c']
...     for letter in letters:
...         print letter
...         yield letter
...
>>> numbered = enumerate(abc())
>>> for i, word in numbered:
...     print i, word
...
a
0 a
b
1 b
c
2 c
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It's even easier to tell than either of the previous suggest:

$ python
Python 2.5.5 (r255:77872, Mar 15 2010, 00:43:13)
[GCC 4.3.4 20090804 (release) 1] on cygwin
Type "help", "copyright", "credits" or "license" for more information.
>>> abc = (letter for letter in 'abc')
>>> abc
<generator object at 0x7ff29d8c>
>>> numbered = enumerate(abc)
>>> numbered
<enumerate object at 0x7ff29e2c>

If enumerate didn't perform lazy evaluation it would return [(0,'a'), (1,'b'), (2,'c')] or some (nearly) equivalent.

Of course, enumerate is really just a fancy generator:

def myenumerate(iterable):
   count = 0
   for _ in iterable:
      yield (count, _)
      count += 1

for i, val in myenumerate((letter for letter in 'abc')):
    print i, val
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Since you can call this function without getting out of memory exceptions it definitly is lazy

def veryBigHello():
    i = 0
    while i < 1000000000000000000000000000:
        yield "hello"

numbered = enumerate(veryBigHello())
for i, word in numbered:
    print i, word
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just wanted to be part of the fun

print "".join((c for i in range(12) for c,e in {'H':(0,),'e':(1,),'l':(2,3,9),'o':(4,7),' ':(5,),'w':(6,),'r':(8,),'d':(10,),'!':(11,)}.items() if i in e))

generator and list comprehension are fun there is single occurence of the same number or the same 'character'

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2  
This might be a nice piece of code, but how does it answer the question? –  Dirk Jan 18 at 20:13

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