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This question already has an answer here:

I have a list

a = ["a", "b", "c", "d", "e"]

I want to remove elements in this list in a for loop like below:

for item in a:
    print item
    a.remove(item)

But it doesn't work. What can I do?

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marked as duplicate by unutbu python Jun 22 '15 at 15:46

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.

1  
Why do you need to delete them at the same time? Just iterate through and then delete the whole list. Also do you actually need to print each item? – jamylak May 19 '12 at 13:33
    
But I rely on items in the list when I iterate over loop. I must get rid of the item immediately if it matches a condition – alwbtc May 19 '12 at 14:27
up vote 34 down vote accepted

You are not permitted to remove elements from the list while iterating over it using a for loop.

The best way to rewrite the code depends on what it is you're trying to do.

For example, your code is equivalent to:

for item in a:
  print item
a[:] = []

Alternatively, you could use a while loop:

while a:
  print a.pop(0)

I'm trying to remove items if they match a condition. Then I go to next item.

You could copy every element that does match the condition into a second list:

result = []
for item in a:
  if condition:
    result.append(item)
a = result

Alternatively, you could use filter or a list comprehension and assign the result back to a:

a = filter(lambda item:... , a)

or

a = [item for item in a if ...]

where ... stands for the condition that you need to check.

share|improve this answer
    
I'm trying to remove items if they match a condition. Then I go to next item. – alwbtc May 19 '12 at 13:35
    
@alwbtc: See the updated answer – NPE May 19 '12 at 13:39
3  
"You are not permitted" - sure you are. Python doesn't complain at you, it just gives a slightly (read: completely) different result to what people might expect. – lvc May 19 '12 at 14:00
    
Why? Can someone point to the description of why this is the case? The list is reevaluated in each iteration, right? So what's the problem? – gamen Dec 5 '13 at 12:00

Iterate through a copy of the loop:

>>> a = ["a", "b", "c", "d", "e"]
>>> for item in a[:]:
    print item
    if item == "b":
        a.remove(item)

a
b
c
d
e
>>> print a
['a', 'c', 'd', 'e']
share|improve this answer
    
One problem with this and the OP's approaches is that they can break down if there are multiple elements that compare equal. – NPE May 19 '12 at 13:42
    
Awesome! This one works for me! – Ishtiaque Khan Oct 13 '15 at 20:47

As other answers have said, the best way to do this involves making a new list - either iterate over a copy, or construct a list with only the elements you want and assign it back to the same variable. The difference between these depends on your use case, since they affect other variables for the original list differently (or, rather, the first affects them, the second doesn't).

If a copy isn't an option for some reason, you do have one other option that relies on an understanding of why modifying a list you're iterating breaks. List iteration works by keeping track of an index, incrementing it each time around the loop until it falls off the end of the list. So, if you remove at (or before) the current index, everything from that point until the end shifts one spot to the left. But the iterator doesn't know about this, and effectively skips the next element since it is now at the current index rather than the next one. However, removing things that are after the current index doesn't affect things.

This implies that if you iterate the list back to front, if you remove an item at the current index, everything to it's right shifts left - but that doesn't matter, since you've already dealt with all the elements to the right of the current position, and you're moving left - the next element to the left is unaffected by the change, and so the iterator gives you the element you expect.

TL;DR:

>>> a = list(range(5))
>>> for b in reversed(a):
    if b == 3:
        a.remove(b)
>>> a
[0, 1, 2, 4]

However, making a copy is usually better in terms of making your code easy to read. I only mention this possibility for sake of completeness.

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How about creating a new list and adding elements you want to that new list. You cannot remove elements while iterating through a list

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import copy

a = ["a", "b", "c", "d", "e"]

b = copy.copy(a)

for item in a:
    print item
    b.remvoe(item)
a = copy.copy(b)

Works: to avoid changing the list you are iterating on, you make a copy of a, iterate over it and remove the items from b. Then you copy b (the altered copy) back to a.

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Probably a bit late to answer this but I just found this thread and I had created my own code for it previously...

    list = [1,2,3,4,5]
    deleteList = []
    processNo = 0
    for item in list:
        if condition:
            print item
            deleteList.insert(0, processNo)
        processNo += 1

    if len(deleteList) > 0:
        for item in deleteList:
            del list[item]

It may be a long way of doing it but seems to work well. I create a second list that only holds numbers that relate to the list item to delete. Note the "insert" inserts the list item number at position 0 and pushes the remainder along so when deleting the items, the list is deleted from the highest number back to the lowest number so the list stays in sequence.

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Remove function removes the first element in the list (0th index element). In the first iteration of your for loop you start with index number 0, print it. As you move to index number 1 you no longer have 'a' at index location 0 but you have 'b' instead. So what you get will be 'c'. So this code piece will print list elements with even index numbers only.

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1  
No it doesn't. mylist.remove(item) removes the first instance of item in mylist - see the documentation. – Alex L May 19 '12 at 14:06

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