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I loop through a list and remove the elements that satisfy my condition. But why doesn't this work, as noted below? Thank you.

>>> a=[ i for i in range(4)]
>>> a
[0, 1, 2, 3]
>>> for e in a:
...     if (e > 1) and (e < 4):
...         a.remove(e)
... 
>>> a
[0, 1, 3]
>>> a=[ i for i in range(4)]
>>> for e in a:
...     if (e > -1) and (e < 3):
...         a.remove(e)
... 
>>> a
[1, 3]
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5 Answers

up vote 8 down vote accepted

You cannot change something while you're iterating it. The results are weird and counter-intuitive, and nearly never what you want. In fact, many collections explicitly disallow this (e.g. sets and dicts).

Instead, iterate over a copy (for e in a[:]: ...) or, instead of modifying an existing list, filter it to get a new list containing the items you want ([e for e in a if ...]). Note that in many cases, you don't have to iterate again to filter, just merge the filtering with the generation of the data.

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Why don't you just do this initially in the list comprehension? E.g.

[i for i in range(4) if i <= 1 or i >= 4]

You can also use this to construct a new list from the existing list, e.g.

[x for x in a if x <= 1 or x >= 4]
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This returns the items that should actually be removed. –  Sven Marnach Feb 10 '11 at 18:16
    
@Sven sorry, I'll fix it –  Rafe Kettler Feb 10 '11 at 18:16
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The idea of filtering is a good one, however it misses the point which is that some lists may be very large and the number of elements to remove may be very small.

In which case the answer is to remember the list indexes of the elements to remove and then iterate through the list of indexes, sorted from largest to smallest, removing the elements.

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Say you have a 1 million element list and 4 get removed. Filtering it means shuffling about 1,000,000 elements while your suggestion would involve shuffling about twice as many on average. Of course other factors will mean it isn't as simple as that, but unless you've actually timed the code I'd say stick with the simplest (filtering) as you aren't going to gain much if anything by making it more complex. –  Duncan Feb 10 '11 at 18:56
    
I wouldn't consider finding the elements to be "shuffling". And at the end, you have a list of 4 elements which you iterate in reverse order, and the deletions involve unlinking list elements, so again, where is the shuffle? –  Michael Dillon Feb 10 '11 at 20:10
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The easiest way to visualize it is to think of the iteration working on list-offsets instead of the actual items - do something to the first item, then the second item, then the third item, until it runs out of items. If you change the number of items in the list, it changes the offsets of all the remaining items in the list:

lst = [1,2,3,4]
for item in lst:
    if item==2:
        lst.remove(item)
    else:
        print item
print lst

results in

1
4
[1,3,4]

which makes sense if you step through it like so:

[1,2,3,4]
 ^
 first item is not 2, so print it -> 1

[1,2,3,4]
   ^
   second item is 2, so remove it

[1,3,4]
     ^
     third item is 4, so print it -> 4

The only real solution is do not change the number of items in the list while you are iterating over it. Copy the items you want to keep to a new list, or keep track of the values you want to remove and do the remove-by-value in a separate pass.

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+1 for explaining the nasty details. –  delnan Feb 10 '11 at 19:06
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It is not safe to remove elements from a list while iterating though it. For that exists the filter function. It takes a function(that admits one argument) and an iterable(in this case your list). It returns a new iterable of the same type(list again here) with the elements where the function applied to that element returned True:

In your case you can use a lambda function like this:

a = filter(lambda x: x > 1 and x < 4, range(4))

or if you have the list already:

a = range(4)
a = filter(lambda x: x > 1 and x < 4, a)

remember that if you are using python3 it will return an iterator and not a list.

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For simple cases like this, I would prefer a list comprehension over filter. –  Rafe Kettler Feb 10 '11 at 18:19
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