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l  = range(100)                         
for i in l:                         
    print i,                         
    print l.pop(0),                  
    print l.pop(0)

The above python code gives the output quite different from expected. I want to loop over items so that I can skip an item while looping.

Please explain.

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7  
There is no way to tell what you hope to achieve by looking at your code. –  Jonathan Feinberg Oct 28 '09 at 14:59
4  
"different from expected". Really? What did you expect? –  S.Lott Oct 28 '09 at 15:13

7 Answers 7

up vote 15 down vote accepted

I've been bitten before by (someone else's) "clever" code that tries to modify a list while iterating over it. I resolved that I would never do it under any circumstance.

You can use the slice operator mylist[::3] to skip across to every third item in your list.

mylist = [i for i in range(100)]
for i in mylist[::3]:
  print(i),

Other points about my example relate to new syntax in python 3.0.

  • I use a list comprehension to define mylist because it works in Python 3.0 (see below)
  • print is a function in python 3.0

Python 3.0 range() now behaves like xrange() used to behave, except it works with values of arbitrary size. The latter no longer exists.

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4  
If a list object is required, list(range(100)) is both faster and more straightforward than this futile list comprehension. Furthermore, for i in range(100)[::3]: works. –  Lenna Jan 22 '13 at 21:12
    
Also, if you just want to iterate over integers, better still to use range(0, 100, 3) or even xrange(0, 100, 3) (the latter doesn't make a full list in ram). –  Tom Leys Dec 17 '13 at 21:52

Never alter the container you're looping on, because iterators on that container are not going to be informed of your alterations and, as you've noticed, that's quite likely to produce a very different loop and/or an incorrect one. In normal cases, looping on a copy of the container helps, but in your case it's clear that you don't want that, as the container will be empty after 50 legs of the loop and if you then try popping again you'll get an exception.

What's anything BUT clear is, what behavior are you trying to achieve, if any?! Maybe you can express your desires with a while...?

i = 0
while i < len(L):
    print i,                         
    print L.pop(0),                  
    print L.pop(0)

BTW, I'm using L, not l, because lowercase L and lowercase I look far too similar in most fonts, so using both is just looking for trouble and confusion.

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Wait should you increment i in the loop? –  moby May 20 '12 at 17:10
2  
@maq that's not necessary. pop actually removes the element. So you keep looking at element 0 and popping it. Works as intended. –  ashes999 Mar 1 '13 at 22:25
    
Alex, I found that this works on trivial examples, should we still avoid this? e.g. >>> l = list('abcdefab') >>> for i in l: if l.count(i) > 1: l.remove(i) –  Aaron Hall Feb 24 at 1:58

Try this. It avoids mutating a thing you're iterating across, which is generally a code smell.

for i in xrange(0, 100, 3):
    print i

See xrange.

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3  
Python 3.0 range() now behaves like xrange() used to behave, except it works with values of arbitrary size. The latter no longer exists. –  Ewan Todd Oct 28 '09 at 16:08

The general rule of thumb is that you don't modify a collection/array/list while iterating over it.

Use a secondary list to store the items you want to act upon and execute that logic in a loop after your initial loop.

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Use a while loop that checks for the truthfulness of the array:

while array:
    value = array.pop(0)
    # do some calculation here

And it should do it without any errors or funny behaviour.

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1  
Just make sure that you always pop at least once in every loop. –  Tom Leys Dec 17 '13 at 21:53

This slice syntax makes a copy of the list and does what you want:

l  = range(100)  
for i in l[:]:  
    print i,  
    print l.pop(0),  
    print l.pop(0)
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2  
I'm seeing this very late, but this answer is wrong. The code provided will crash after iterating over 50 items, since it's removing two items from the original list each time through the loop, but not skipping any in the sliced one. –  Blckknght Jul 27 '12 at 23:41

I guess this is what you want:

l  = range(100)  
index = 0                       
for i in l:                         
    print i,              
    try:
        print l.pop(index+1),                  
        print l.pop(index+1)
    except:
        pass
    index += 1

It is quite handy to code when the number of item to be popped is a run time decision. But it runs with very a bad efficiency and the code is hard to maintain.

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