Possible Duplicate:
Remove items from a list while iterating in Python

I'm trying to remove an item from a list in python:

x = ["ok", "jj", "uy", "poooo", "fren"]
for item in x:
    if len(item) != 2:
        print "length of %s is: %s" %(item, len(item))
        x.remove(item)

But it doesn't remove "fren" item. Any ideas?

marked as duplicate by Sven Marnach, user395760, Jochen Ritzel, Duncan, ChrisF Nov 29 '11 at 21:29

This question has been asked before and already has an answer. If those answers do not fully address your question, please ask a new question.

You can't remove items from a list while iterating over it. It's much easier to build a new list based on the old one:

y = [s for s in x if len(s) == 2]
  • Well, to nitpick: You "can", but you'll get useless results and other containers outright disallow it. – user395760 Nov 29 '11 at 14:58
  • 1
    @delnan: Well, to nitpick even more, you can and even get useful results if you iterate over the list in reverse order. But this is probably not faster (and definitely much more confusing) than just creating a new list as Sven suggested. – Tim Pietzcker Nov 30 '11 at 8:23
  • Yeah I do it in reverse order, works without copying: x = len(system_list) # remove all null entries for i in range(x-1, -1, -1): if not system_list[i]: del system_list[i] – radtek Mar 4 '14 at 18:46
  • @radtek: Since removing an item from a list is an O(n) operation, that approach has O(n²) worst-case complexity. – Sven Marnach Mar 4 '14 at 18:59

hymloth and sven's answers work, but they do not modify the list (the create a new one). If you need the object modification you need to assign to a slice:

x[:] = [value for value in x if len(value)==2]

However, for large lists in which you need to remove few elements, this is memory consuming, but it runs in O(n).

glglgl's answer suffers from O(n²) complexity, because list.remove is O(n).

Depending on the structure of your data, you may prefer noting the indexes of the elements to remove and using the del keywork to remove by index:

to_remove = [i for i, val in enumerate(x) if len(val)==2]
for index in reversed(to_remove): # start at the end to avoid recomputing offsets
    del x[index]

Now del x[i] is also O(n) because you need to copy all elements after index i (a list is a vector), so you'll need to test this against your data. Still this should be faster than using remove because you don't pay for the cost of the search step of remove, and the copy step cost is the same in both cases.

[edit] Very nice in-place, O(n) version with limited memory requirements, courtesy of @Sven Marnach. It uses itertools.compress which was introduced in python 2.7:

from itertools import compress

selectors = (len(s) == 2 for s in x)
for i, s in enumerate(compress(x, selectors)): # enumerate elements of length 2
    x[i] = s # move found element to beginning of the list, without resizing
del x[i+1:]  # trim the end of the list
  • 3
    Here's an in-place O(n) version that only needs O(1) additional memory: ideone.com/F10fB. It isn't any more complex than your O(n^2) version. (+1 for a detailed answer, btw) – Sven Marnach Nov 29 '11 at 15:26
  • nice one. You should post it as an answer on SO. – gurney alex Nov 29 '11 at 15:52
  • Why would you assign to x[:] instead of just x? – Kirk Strauser Nov 29 '11 at 15:56
  • The code doesn't really fit in my answer, but it fits well in the discussion in your answer. Care to integrate it? (Note that itertools.compress() was introduced in Python 2.7.) – Sven Marnach Nov 29 '11 at 16:03
  • @KirkStrauser: To change the semantics to in-place manipulation. see also stackoverflow.com/a/1208792/279627 – Sven Marnach Nov 29 '11 at 16:04
x = [i for i in x if len(i)==2]

This stems from the fact that on deletion, the iteration skips one element as it semms only to work on the index.

Workaround could be:

x = ["ok", "jj", "uy", "poooo", "fren"]
for item in x[:]: # make a copy of x
    if len(item) != 2:
        print "length of %s is: %s" %(item, len(item))
        x.remove(item)
  • 1
    Note that this is O(n^2). – Sven Marnach Nov 29 '11 at 15:04
  • hmm... you are right. So in terms of time, hymloth's and your solutions seem to be the best AFAICT... – glglgl Nov 29 '11 at 15:22

The already-mentioned list comprehension approach is probably your best bet. But if you absolutely want to do it in-place (for example if x is really large), here's one way:

x = ["ok", "jj", "uy", "poooo", "fren"]
index=0
while index < len(x):
    if len(x[index]) != 2:
        print "length of %s is: %s" %(x[index], len(x[index]))
        del x[index]
        continue
    index+=1

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