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I'm trying to remove the last element of a list in Python:

di = {"a": 3, "children": [{"b": 5}, {"c": 6}]}
for el in di['children']:
  di['children'].remove(el)

What I'd expect is

print di
{'a': 3, 'children: []}

But what I get is

print di
{'a': 3, 'children': [{'c': 6}]}

Does anybody have an idea what's going wrong?

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5  
If you want to remove all elements, what's wrong with di['children']=[]? –  georg Oct 30 '12 at 22:49

7 Answers 7

up vote 10 down vote accepted

As everyone else has explained, you can't modify a list while iterating over it.

You can modify a list while iterating over a copy of it, but it's probably better to just generate a new filtered list:

di = {"a": 3, "children": [{"b": 5}, {"c": 6}]}
di['children'] = [el for el in di['children'] if el not in di['children']]

Why is this better? Well, it means you're avoiding mutating the list, which makes your code easier to reason about, easier to trace through, usually easier to write, and often faster and more space-efficient. The fact that you don't have to worry about mutating-while-iterating problems is a perfect example of the "easier to reason about" part.

In some cases, it does turn out to be harder to write, or slower, or less space-efficient, which is why this is just a guideline rather than a hard rule. But it's always at least worth thinking "can I rewrite this as an immutable filter instead of a mutator", even if the answer may sometimes turn out to be "no".

Also really, isn't your algorithm guaranteed to be equivalent to just emptying the whole thing out? In that case:

di = {"a": 3, "children": [{"b": 5}, {"c": 6}]}
di['children'] = []
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+1 for explaining why the very idea is bad. –  georg Oct 30 '12 at 22:51
    
] Sorry, but that was really bothering me. Nice explanation. –  mayhewr Oct 30 '12 at 23:03

You shouldn't modify the list as you iterate it. You should instead iterate over a copy. See the python docs.

Try this...

di = {"a": 3, "children": [{"b": 5}, {"c": 6}]}
for el in di['children'][:]:
    di['children'].remove(el)
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1  
why not replace for an empty list?? You are making a copy and them removing every item... Quite bad code design –  JBernardo Oct 30 '12 at 22:53
1  
@JBernardo I'm assuming he's simplified the code or I would totally agree. –  mayhewr Oct 30 '12 at 22:55
    
yes, I'm applying it to larger objects. Thanks to everybody, knowing the solution, the mistake is obvious :) –  mni Oct 30 '12 at 23:00
    
And it's a bad idea in most every language I know to modify a collection as you iterate over it. –  hughdbrown Oct 30 '12 at 23:01
    
You can modify the list as you iterate it (but you probably shouldn't). –  Andy Hayden Oct 30 '12 at 23:06

You're modifying the list as you iterate over it, which is a bad idea.

Try iterating over a copy of the list, while removing the elements from the original.

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I'd recommend making a new list from the old, filtering to contain only the elements you want. –  hughdbrown Oct 30 '12 at 23:02

You are modifying a list as you are iterating over it - when you remove the first entry, the second entry becomes the first and the end of the list has been reached. Instead, use:

del di["children"][:]

This will preserve the original list (unlike di["children"] = []) so if you have other references to them they will also reflect the truncation.

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You can only remove elements in the loop when you going through a list in backward direction.

So I think just wrap di['children'] in reversed() iterator like this

for el in reversed(di['children']):

It's because removing element causes changing numeration of elements, and all following elements will have number minus 1. But, if you going backward, you shouldn't care about indexes of following elements, just about elements before deleted.

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3  
+1 because this actually does successfully modify the list while iterating over it, without making a copy to iterate over, at least in Python 2.4+. It's usually not a good idea, but it's worth knowing that it's possible when necessary. –  abarnert Oct 30 '12 at 23:23
 for i in di:
    if type(di[i])==list:
       di[i]=[]
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3  
this is not how typechecking is done, plus a much better answers were given above. –  SilentGhost Oct 31 '12 at 14:25
1  
Plus, it gives the completely wrong answer. It replaces every list in list di with an empty list, while the OP is trying to remove every element of a particular list in dict di. –  abarnert Oct 31 '12 at 17:19
del di['children'][1]

Delete last element in the list.

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