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I want to iterate over everything in a list except the first few elements, e.g.:

for line in lines[2:]:
    foo(line)

This is concise, but copies the whole list, which is unnecessary. I could do:

del lines[0:2]
for line in lines:
    foo(line)

But this modifies the list, which isn't always good.

I can do this:

for i in xrange(2, len(lines)):
    line = lines[i]
    foo(line)

But, that's just gross.

Better might be this:

for i,line in enumerate(lines):
    if i < 2: continue
    foo(line)

But it isn't quite as obvious as the very first example.

So: What's a way to do it that is as obvious as the first example, but doesn't copy the list unnecessarily?

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6  
I think for i in xrange(2, len(lines)): is fine. –  NullUserException Dec 29 '11 at 17:45
    
just out of curiosity, how large is the list you're iterating over? –  Greg Guida Dec 29 '11 at 17:47
4  
I know this doesn't answer your question, but for only 300 lines of text, I wouldn't be worrying at all about copying. Remember that only references are being copied, not the string data itself... –  thesamet Dec 29 '11 at 18:16
1  
Personally I like the 4th example you put the best. It's no less efficient than the islice approach and in my opinion will be easier to read and understand by anyone else looking at your code. –  Greg Guida Dec 29 '11 at 18:23
2  
@BlueRaja-DannyPflughoeft: cause the pythonic way to iterate is using a for-each loop: for x in stuff:. you don't do for i in xrange(len(stuff)): x=stuff[i].. so why should you if you just want to do the same iteration but slightly differently? –  Claudiu Dec 29 '11 at 20:15
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7 Answers

up vote 23 down vote accepted

You can try itertools.islice(iterable[, start], stop[, step]):

import itertools
for line in itertools.islice(list , start, stop):
     foo(line)
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@NullUserException cheers! was going to add that but my comp had a hiccup –  soulcheck Dec 29 '11 at 17:50
    
What would be awesome is something like: for line in lazy(list)[:2]: foo(line), where lazy wraps the iterable and if you slice it, calls islice instead, etc. That way it looks just like a slice (as it should). –  Claudiu Dec 29 '11 at 19:55
    
@Claudiu as slices are supposed to be objects of the same type as the sliced one that would mean that lazy() creates an iterator. It was discussed on python mailing list and Guido opposed the idea. That doesn't stop independent implementations, but you won't see it in the standard lib very soon. –  soulcheck Dec 29 '11 at 20:48
1  
WARNING: Can be extremely inefficient compared to list1[start:stop]. For example, islice(list1, 100000, 100100) will first iterate over the first 99,999 values (just wont return them). Try it yourself with cProfile; its also in the docs. –  Jeff Dec 19 '13 at 20:29
    
@Jeff Upvoted for being true in cases where calling next start - 1 times overweights list-slice memory allocation. OP specifically mentioned list slicing as an undesired solution in his question. –  soulcheck Dec 19 '13 at 21:04
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Although itertools.islice appears to be the optimal solution for this problem, somehow, the extra import just seems like overkill for something so simple.

Personally, I find the enumerate solution perfectly readable and succinct - although I would prefer to write it like this:

for index, line in enumerate(lines):
    if index >= 2:
        foo(line)
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2  
ah personally i prefer to have as few indents as possible. error-checking + continue/return/break/etc first, then the rest is fall-through –  Claudiu Dec 29 '11 at 19:26
    
@Claudiu: And what you're saying also gets the intent across immediately; you don't need to look to the end of the if block to see if anything is happening after it or in an else block. –  Chris Morgan Jan 1 '12 at 9:41
1  
@ChrisMorgan. More is less. In the example, a separate continue would create a redundant branch in the code, needlessly forcing the reader to parse two blocks of code, rather than one. If the code inside the loop was more complex, then continue statements could certainly be used to improve readability by reducing indents. But that is not what the example is attempting to illustrate. –  ekhumoro Jan 1 '12 at 18:29
    
@ekhumoro: indeed, it depends on the length of the block. I certainly wouldn't go doing it the continue way for less than half a dozen lines. –  Chris Morgan Jan 1 '12 at 22:43
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for fooable in (line for i,line in enumerate(lines) if i >= 2):
    foo(fooable)
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I prefer to use dropwhile for this. It feels natural after using it in Haskell and some other languages, and seems reasonably clear. You can also use it in many other cases where you want to look for a "trigger" condition more complex than the item's index for the start of the iteration.

from itertools import dropwhile

for item in dropwhile(lambda x: x[0] < 2, enumerate(lst)):
  # ... do something with item
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You might build a helper generator:

def rangeit(lst, rng):
  for i in rng:
    yield lst[i]

for e in rangeit(["A","B","C","D","E","F"], range(2,4)):
  print(e)
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Nice. But it's limited to lists and won't work well for arbitrary iterables. –  S.Lott Dec 29 '11 at 17:53
1  
@S.Lott You are right of course. But it meets the requirement of OP and was the first thing which came into my mind - unfortunately I don't memorize all functions of itertools like others seem to ;-) –  Howard Dec 29 '11 at 17:55
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def skip_heading( iterable, items ):
    the_iter= iter( iterable ):
    for i, e in enumerate(the_iter):
        if i == items: break
    for e in the_iter:
        yield e

Now you can for i in skip_heading( lines, 2 ): without worrying.

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This is basically a special case of itertools.islice. –  delnan Dec 29 '11 at 17:48
    
@delnan: Agreed. It's a little bit extensible. Sometimes the real issue is a head/tail processing where the heading has one kind of processing and the tail has a distinct kind of processing. –  S.Lott Dec 29 '11 at 17:49
    
How would this work? I just copied it into a small test project and it doesn't print anything - which is also what I'd expect it to do. –  Voo Dec 29 '11 at 17:50
    
Am I missing something? It looks like items goes unused in this function. I think you have a typo/bug. –  aganders3 Dec 29 '11 at 17:51
    
Perhaps there's a bug? –  S.Lott Dec 29 '11 at 17:51
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The original solution is, in most cases, the appropriate one.

for line in lines[2:]:
    foo(line)

While this does copy the list, it is only a shallow copy, and is quite quick. Don't worry about optimizing until you have profiled the code and found this to be a bottleneck.

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1  
... but if you know that you're going to working with lists with thousands or millions of elements, don't sneer at gifts like itertools.islice. In such cases it's worth checking out. –  Chris Morgan Jan 1 '12 at 9:44
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