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Say I have the following loop:

i = 0
l = [0, 1, 2, 3]
while i < len(l):
    if something_happens:
         l.append(something)
    i += 1

Will the len(i) condition being evaluated in the while loop be updated when something is appended to l?

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3  
If that's your code, it'll never exit for a different reason: at the beginning of the loop, i < len(l). As the loop continues, l can only get bigger, and i stays the same. –  ojrac May 14 '09 at 17:23
    
@orjac i think he omitted the "i" increment on purpose for the sake of brevety –  albertein May 14 '09 at 17:27
    
yes... i know that you have to increment i. –  Allan Lavell May 14 '09 at 17:29
2  
I assumed that, if it's worth asking SO, he'd tried it and the loop never exited -- which is why I was looking for other bugs. ;) –  ojrac May 14 '09 at 19:02

2 Answers 2

up vote 11 down vote accepted

Yes it will.

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Your code will work, but using a loop counter is often not considered very "pythonic". Using for works just as well and eliminates the counter:

>>> foo = [0, 1, 2]
>>> for bar in foo:
    if bar % 2: # append to foo for every odd number
        foo.append(len(foo))
    print bar

0
1
2
3
4

If you need to know how "far" into the list you are, you can use enumerate:

>>> foo = ["wibble", "wobble", "wubble"]
>>> for i, bar in enumerate(foo):
    if i % 2: # append to foo for every odd number
        foo.append("appended")
    print bar

wibble
wobble
wubble
appended
appended
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