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Winkleson here looking for some help on a very simplistic question... I'm pretty out of it at the moment but I'd like to figure out what I am doing wrong with this problem :) Of course anyother methods to solve the problem would be excellent! Thankyou in advance!

Question:


Remove Item

Create a function that takes a list and a value and returns a list with all occurrences of the given value removed.

Pretty simple right? My head is going to hurt when I facepalm... Anyways here are the calls.

Calls:


>>> remove(['a','b','c','d','e'],'e') 
['a','b','c','d'] 
>>> remove([4,2,7,6,7,8,3,1,3,5],3) 
[4,2,7,6,7,8,1,5] 
>>> remove([4,4,4,4],4) 
[] 
>>> remove([1,2,3,4,5,6,7],'hi') 
[1,2,3,4,5,6,7]

My Code:


def remove(l,o): #l is list, o is object
    for i in l:
        if i == o: #If the current item is the object to be removed...
            l.remove(o) #Remove the object      
    return l #Finally return the list.

So... Here's the issue:


Call: remove([4,4,4,4],4)

Supposed to return:[]

What is returned: [4, 4]

Correct: False


So... If anyone out there knows what's going on it would be great if you were to share your knowledge! Furthermore any other methods of solving would be great as well. Hints would also be great if they aren't too vague. Anyways, Thanks in advance! - Winkleson

P.s. I'm still a beginner programmer so please don't be too hard on me :P Thanks alot!

share|improve this question
1  
A) Get indexes. Remove from right to left ; or B) Build new list with things you want only –  JBernardo Nov 27 '12 at 18:39
    
@JBernardo, option A is O(n**2) –  John La Rooy Nov 27 '12 at 18:46

5 Answers 5

up vote 3 down vote accepted

Your problem is that you're trying to iterate over the list at the same time you're changing the list. In the first iteration:

l = [4, 4, 4, 4]

Python looks at l[0], and deletes it.

Now the list is:

l = [4, 4, 4]

Since it just did l[0], Python now wants to look at l[1]. But since the list has changed, the value that used to be at l[1] is at l[0] instead, and gets skipped.

One option is to build a new list as you go:

def remove(l,o):  
    new_list = []  
    for i in l:        
        if i != o:
            new_list.append(i)       
    return new_list

Since this is a common sort of operation, Python lets you do the same thing with "list comprehensions", which are very handy:

def remove(l,o)
    new_list = [item for item in l if item != o]

(As a side note, it's generally a bad idea to use 1-letter variable names. It's an especially bad idea with "o" and "l", which can easily be mistaken for "0" and "1", respectively.)

share|improve this answer
    
It now makes complete sense :P Also I know I just thought I could rush code the problem as I have multiple questions to get through in a small amount of time (I normally name my lists with l and a num) or as list1, list2, etc. Anyways thanks again! –  Winkleson Nov 27 '12 at 18:49
    
Ok one small problem with your code... Your appending o to new list instead of i :P Therefore your just attaching the object you want to remove from the list and returning it XD Just a heads up :D –  Winkleson Nov 27 '12 at 19:08

Removing items one at a time with list.remove() is not efficient as the remaining elements need to be moved along the list each time you call remove(). Creating a new list with just the elements you want is much more efficient, and avoids the problem of modifying the list while looping over it.

This variant modifies the list in place as you are doing in your question

def remove(L, o):
    L[:] = (item for item in L if item != o)
    return L

the non-inplace variant returns a new list

def remove(L, o):
    return [item for item in L if item != o]
share|improve this answer
    
Thanks, I don't completelty understand your code however... (also I believe that your not using L in the right context (as a constant) I do know what your gettting at.. Thanks again! –  Winkleson Nov 27 '12 at 18:53
    
@Winkleson, You are modifying the list in your attempt. If you don't wish to modify the list, just return [item for item in L if item != o] The square brackets mean it is a list comprehension rather than a generator expression –  John La Rooy Nov 27 '12 at 19:15

You're modifying the list at the same time as iterating over it. This means that the list iterator is likely to get out of sync with the underlying list.

At the start, the list looks like this:

[4, 4, 4, 4]
 ^-iterator

When checking the first element, the iterator has moved to the next element:

[4, 4, 4, 4]
    ^-iterator

When calling remove (note that this behaviour is not guaranteed):

[4, 4, 4, 4]
 ^  ^-iterator
 |
 `this item is removed

After calling remove:

[4, 4, 4]
    ^-iterator

Also, implementing remove in terms of remove is unlikely to gain you many marks. Try building a new list which contains just the appropriate items.

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Immutable lists and my idiotic self do not mix -_- Thanks! –  Winkleson Nov 27 '12 at 18:45

you're very close, but it may be better to create a new list rather than just use the remove function, ie,

def remove(l,o): #l is list, o is object
    newlist = []
    for i in l:
        if i != o: #If the current item is the object to be removed...
            newlist.append(i)      
    return newlist #Finally return the list.
share|improve this answer
    
Thanks as I said to the others I can be a giant derpface..... Thanks again! –  Winkleson Nov 27 '12 at 18:51

You shouldn't mutate a list while looping over its elements. http://unspecified.wordpress.com/2009/02/12/thou-shalt-not-modify-a-list-during-iteration/ explains why.

Make a new list using a list comprehension and return that: http://docs.python.org/tutorial/datastructures.html#list-comprehensions

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OMG I forgot that I was working with immutable lists -_- I needed to create a new list and append the remaining values... ARGH. Thanks man! –  Winkleson Nov 27 '12 at 18:39
    
You're not actually working with immutable lists. You can mutate at the same time as you iterate, it's just a very bad idea. –  PeterBB Nov 27 '12 at 18:44
    
@PeterBB Yeah because it's skipping over the next list due to the shift in values right? –  Winkleson Nov 27 '12 at 19:06
    
That's correct. –  Brenden Brown Nov 27 '12 at 19:29

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