67

How can I ignore the "not in list" error message if I call a.remove(x) when x is not present in list a?

This is my situation:

>>> a = range(10)
>>> a
[0, 1, 2, 3, 4, 5, 6, 7, 8, 9]
>>> a.remove(10)
Traceback (most recent call last):
  File "<stdin>", line 1, in <module>
ValueError: list.remove(x): x not in list
>>> a.remove(9)
1
67

A good and thread-safe way to do this is to just try it and ignore the exception:

try:
    a.remove(10)
except ValueError:
    pass  # do nothing!
46

I'd personally consider using a set instead of a list as long as the order of your elements isn't necessarily important. Then you can use the discard method:

>>> S = set(range(10))
>>> S
set([0, 1, 2, 3, 4, 5, 6, 7, 8, 9])
>>> S.remove(10)
Traceback (most recent call last):
  File "<stdin>", line 1, in <module>
KeyError: 10
>>> S.discard(10)
>>> S
set([0, 1, 2, 3, 4, 5, 6, 7, 8, 9])
1
28

As an alternative to ignoring the ValueError

try:
    a.remove(10)
except ValueError:
    pass  # do nothing!

I think the following is a little more straightforward and readable:

if 10 in a:
    a.remove(10)
5
  • 9
    It's a good thought, but as @Niklas B. points out, his is "thread-safe", because no matter what, 10 not being there can only ever cause a caught exception. Whereas in this answer, 10 could be removed from a between the if condition being checked and .remove() being called, resulting in an uncaught ValueError. (If you can make a guarantee about a not being modified by anything else, then this is fine, but with the accepted answer you don't even have to think about that possibility.)
    – tscizzle
    Oct 27 '15 at 14:31
  • 2
    For lambda expressions, it can sometimes be helpful to have a one-liner for the same purpose, and in that case a in 10 and a.remove(10) does the job. It's also not thread-safe though.
    – fuglede
    Aug 25 '16 at 21:21
  • 6
    Kinda torn on this one ... at what point do you abandon the zen of python for thread safety? Certainly if you are writing a library module that is likely to be used in a multithreaded app you will need to make things more complex and/or document its thread safety (or lack thereof), but should one try to do that in general? Sep 1 '16 at 18:05
  • @reteptilian I think it is not actually the "thread safety" rather than it is "Easier to ask for forgiveness than permission."
    – raratiru
    Feb 17 '18 at 0:49
  • If you care about thread safety you should be using explicit locking.
    – radiaph
    Apr 17 '18 at 20:32
5

How about list comprehension?

a = [x for x in a if x != 10]
4
  • Please explain why think this an improvement over the accepted answer.
    – user1600649
    Jul 21 '20 at 21:50
  • 1
    @Melvyn, I primarily offered it as an alternative, not necessarily an "improvement". I like that it's one line and readable.
    – JJL
    Jul 30 '20 at 14:46
  • This creates a new list, which is less efficient than modifying an existing one, especially if the item is not found and no copying of elements needs to be done. Mar 23 at 20:42
  • Furthermore, it may break references to the existing list, e.g. a = ['foo']; b = a; a = [x for x in a if x != 'bar']; a.append('baz'); print(b) will print ['foo'] whereas using remove will print ['foo', 'baz']. As such I don't consider this a viable generalized alternative to try/remove/except or if/in/remove. Mar 23 at 20:46
4

A better way to do this would be

source_list = list(filter(lambda x: x != element_to_remove,source_list))

Because in a more complex program, the exception of ValueError could also be raised for something else and a few answers here just pass it, thus discarding it while creating more possible problems down the line.

1

When I only care to ensure the entry is not in a list, dict, or set I use contextlib like so:

import contextlib

some_list = []
with contextlib.suppress(ValueError):
    some_list.remove(10)

some_set = set()
some_dict = dict()
with contextlib.suppress(KeyError):
    some_set.remove('some_value')
    del some_dict['some_key']
-4

you have typed wrong input. syntax: list.remove(x)

and x is the element of your list. in remove parenthesis ENTER what already have in your list. ex: a.remove(2)

i have entered 2 because it has in list. I hape this data help you.

1
  • 1
    The question is specifically about how to ignore the error when attempting to remove something from a list that isn't in that list.
    – ocket8888
    May 1 '20 at 15:29

Your Answer

By clicking “Post Your Answer”, you agree to our terms of service, privacy policy and cookie policy

Not the answer you're looking for? Browse other questions tagged or ask your own question.