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In Python remove() will remove the first occurrence of value in a list.

How to remove all occurrences of a value from a list, without sorting the list?

This is what I have in mind.

>>> x = [1, 2, 3, 4, 2, 2, 3]
>>> def remove_values_from_list(the_list, val):
        while val in the_list:
            the_list.remove(val)
>>> remove_values_from_list(x, 2)
>>> x
[1, 3, 4, 3]
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What's wrong with doing remove repeatedly in a while loop, as you've done? –  John Y Jul 21 '09 at 3:23
3  
@john Y: I am looking for an improved Pythonic way. –  riza Jul 21 '09 at 3:24

7 Answers 7

up vote 142 down vote accepted

Functional approach:

2.x

>>> x = [1,2,3,2,2,2,3,4]
>>> filter(lambda a: a != 2, x)
[1, 3, 3, 4]

3.x

>>> list(filter((2).__ne__, x))
[1, 3, 3, 4]
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1  
Yes, I like this too –  mhawke Jul 21 '09 at 3:30
42  
Use the list comprehension over the filter+lambda; the former is more readable in addition to generally more efficient. –  habnabit Jul 21 '09 at 4:28
6  
s/generally/generally being/ –  habnabit Jul 21 '09 at 4:29
12  
The code for habnabit's suggestion looks like this: [y for y in x if y != 2] –  CoreDumpError Apr 22 '13 at 22:12

You can use a list comprehension:

def remove_values_from_list(the_list, val):
   return [value for value in the_list if value != val]

x = [1, 2, 3, 4, 2, 2, 3]
x = remove_values_from_list(x, 2)
print x
# [1, 3, 4, 3]
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5  
How would you remove items without checking them? –  Alexander Ljungberg Jul 21 '09 at 3:20
6  
This doesn't modify the original list but returns a new list. –  John Y Jul 21 '09 at 3:20
5  
@Selinap: No, this is optimal as it scans the list only once. In your original code both the in operator and remove method scan the entire list (up until they find a match) so you end up scanning the list multiple times that way. –  John Kugelman Jul 21 '09 at 3:24
2  
@mhawke, @John Y: just use x[:] = ... instead of x = and it will be "in-place" rather than just rebinding the name 'x' (speed is essentially the same and MUCH faster than x.remove can be!!!). –  Alex Martelli Jul 21 '09 at 3:33
1  
Removing in-place can be very fast if you don't care about the order: move the last item over the one you're deleting, then when you're done scanning, truncate the items off the end. If you're not removing many elements, this may be faster in a lower level language--it moves less memory around. I suspect it's a wash in Python. –  Glenn Maynard Jul 21 '09 at 3:36

You can use slice assignment if the original list must be modified, while still using an efficient list comprehension (or generator expression).

>>> x = [1, 2, 3, 4, 2, 2, 3]
>>> x[:] = (value for value in x if value != 2)
>>> x
[1, 3, 4, 3]
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1  
This is what filter do right. –  riza Jul 21 '09 at 3:36
    
@Selinap: filter does not modify the list, it returns a new list. –  E.M. Jul 21 '09 at 3:47
    
filter and list comprehensions don't modify a list. slice assignment does. and the original example does. –  Coady Jul 22 '09 at 23:24

To remove all occurrences and leave one in the list:

test = [1, 1, 2, 3]

newlist = list(set(test))

print newlist

[1, 2, 3]

Here is the function I've used for Project Euler:

def removeOccurrences(e):
  return list(set(e))

This simply returns a list and removes all the occurrences, leaving one of each behind.

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1  
I needed to do this on a vector with 250k values, and it works like a charm. –  rschwieb Mar 1 '13 at 0:13
    
are you doing something like project euler? –  Jared Burrows Mar 1 '13 at 5:30
1  
The answer is: yes! And I completely understand if having a vector that long sounds completely crazy to a competent programmer. I approach the problems there as a mathematician, not worrying about optimizing the solutions, and that can lead to solutions longer than the par. (Although I don't have any patience for solutions longer than 5 minutes.) –  rschwieb Mar 1 '13 at 14:08
    
haha this is great. i used it for the same reason. –  Jared Burrows Mar 3 '13 at 0:55
2  
This will remove any ordering from the list. –  asmeurer Jul 16 '13 at 22:03

At the cost of readability, I think this version is slightly faster as it doesn't force the while to reexamine the list, thus doing exactly the same work remove has to do anyway:

x = [1, 2, 3, 4, 2, 2, 3]
def remove_values_from_list(the_list, val):
    for ii in range(the_list.count(val)):
        the_list.remove(val)

remove_values_from_list(x, 2)

print(x)
share|improve this answer
    
For the list you show in your code, this approach is about 36% slower than the list comprehension method (which returns a copy), according to my measurement. –  djsmith Oct 14 '12 at 3:55
    
Good you noticed that. However, because I think it might have slipped your judgement, I was comparing my version with the very first proposal made by the question author. –  Martin Andersson Oct 15 '12 at 8:01

I believe this is probably faster than any other way if you don't care about the lists order, if you do take care about the final order store the indexes from the original and resort by that.

category_ids.sort()
ones_last_index = category_ids.count('1')
del category_ids[0:ones_last_index]
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I understand where your'e going, but this code won't work since you need also the start index and not just 0. –  Shedokan Apr 27 '13 at 10:31

All of the answers above (apart from Martin Andersson's) create a new list without the desired items, rather than removing the items from the original list.

>>> import random, timeit
>>> a = list(range(5)) * 1000
>>> random.shuffle(a)

>>> b = a
>>> print(b is a)
True

>>> b = [x for x in b if x != 0]
>>> print(b is a)
False
>>> b.count(0)
0
>>> a.count(0)
1000

>>> b = a
>>> b = filter(lambda a: a != 2, x)
>>> print(b is a)
False

This can be important if you have other references to the list hanging around.

To modify the list in place, use a method like this

>>> def removeall_inplace(x, l):
...     for _ in xrange(l.count(x)):
...         l.remove(x)
...
>>> removeall_inplace(0, b)
>>> b is a
True
>>> a.count(0)
0

As far as speed is concerned, results on my laptop are (all on a 5000 entry list with 1000 entries removed)

  • List comprehension - ~400us
  • Filter - ~900us
  • .remove() loop - 50ms

So the .remove loop is about 100x slower........ Hmmm, maybe a different approach is needed. The fastest I've found is using the list comprehension, but then replace the contents of the original list.

>>> def removeall_replace(x, l):
....    t = [y for y in l if y != x]
....    del l[:]
....    l.extend(t)
  • removeall_replace() - 450us
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