I want to remove a value from a list if it exists in the list (which it may not).
a = [1, 2, 3, 4]
b = a.index(6)
del a[b]
print(a)
The above gives the error:
ValueError: list.index(x): x not in list
So I have to do this:
a = [1, 2, 3, 4]
try:
b = a.index(6)
del a[b]
except:
pass
print(a)
But is there not a simpler way to do this?
except
is bad practice. Use except Exception
at a minimum.
To remove the first occurrence of an element, use list.remove
:
>>> xs = ['a', 'b', 'c', 'd']
>>> xs.remove('b')
>>> print(xs)
['a', 'c', 'd']
To remove all occurrences of an element, use a list comprehension:
>>> xs = ['a', 'b', 'c', 'd', 'b', 'b', 'b', 'b']
>>> xs = [x for x in xs if x != 'b']
>>> print(xs)
['a', 'c', 'd']
Usually Python will throw an Exception if you tell it to do something it can't so you'll have to do either:
if c in a:
a.remove(c)
or:
try:
a.remove(c)
except ValueError:
pass
An Exception isn't necessarily a bad thing as long as it's one you're expecting and handle properly.
a.remove(c)
might fail anyway despite the if c in a
check (a
could be modified in another thread after the c in a
check but before the a.remove(c)
call). try/except
or locks could be used to avoid the race condition.
You can do
a=[1,2,3,4]
if 6 in a:
a.remove(6)
but above need to search 6 in list a 2 times, so try except would be faster
try:
a.remove(6)
except:
pass
Consider:
a = [1,2,2,3,4,5]
To take out all occurrences, you could use the filter function in python. For example, it would look like:
a = list(filter(lambda x: x!= 2, a))
So, it would keep all elements of a != 2
.
To just take out one of the items use
a.remove(2)
filter()
in another list()
? According to the manual, it already returns a list.
Here's how to do it inplace (without list comprehension):
def remove_all(seq, value):
pos = 0
for item in seq:
if item != value:
seq[pos] = item
pos += 1
del seq[pos:]
O(n*n)
unnecessarily (compare 1e6 and 1e12 – you don't want to risk the latter). while 1: L.remove(value)
and return on ValueError
might work well with a few value
s or small lists in CPython.
As stated by numerous other answers, list.remove()
will work, but throw a ValueError
if the item wasn't in the list. With python 3.4+, there's an interesting approach to handling this, using the suppress contextmanager:
from contextlib import suppress
with suppress(ValueError):
a.remove('b')
If you know what value to delete, here's a simple way (as simple as I can think of, anyway):
a = [0, 1, 1, 0, 1, 2, 1, 3, 1, 4]
while a.count(1) > 0:
a.remove(1)
You'll get [0, 0, 2, 3, 4]
while 1 in a:
as the loop structure?
O(n^2)
where a comprehension would be O(n)
.
In one line:
a.remove('b') if 'b' in a else None
sometimes it usefull.
Even easier:
if 'b' in a: a.remove('b')
Another possibility is to use a set instead of a list, if a set is applicable in your application.
IE if your data is not ordered, and does not have duplicates, then
my_set=set([3,4,2])
my_set.discard(1)
is error-free.
Often a list is just a handy container for items that are actually unordered. There are questions asking how to remove all occurences of an element from a list. If you don't want dupes in the first place, once again a set is handy.
my_set.add(3)
doesn't change my_set from above.
If your elements are distinct, then a simple set difference will do.
c = [1,2,3,4,'x',8,6,7,'x',9,'x']
z = list(set(c) - set(['x']))
print z
[1, 2, 3, 4, 6, 7, 8, 9]
This example is fast and will delete all instances of a value from the list:
a = [1,2,3,1,2,3,4]
while True:
try:
a.remove(3)
except:
break
print a
>>> [1, 2, 1, 2, 4]
break
on except ValueError
.
Finding a value in a list and then deleting that index (if it exists) is easier done by just using list's remove method:
>>> a = [1, 2, 3, 4]
>>> try:
... a.remove(6)
... except ValueError:
... pass
...
>>> print a
[1, 2, 3, 4]
>>> try:
... a.remove(3)
... except ValueError:
... pass
...
>>> print a
[1, 2, 4]
If you do this often, you can wrap it up in a function:
def remove_if_exists(L, value):
try:
L.remove(value)
except ValueError:
pass
We can also use .pop:
>>> lst = [23,34,54,45]
>>> remove_element = 23
>>> if remove_element in lst:
... lst.pop(lst.index(remove_element))
...
23
>>> lst
[34, 54, 45]
>>>
Many of the answers here involve creating a new list. This involves copying all the data from the old list to the new list (except for the removed items). If your list is huge, you may not be able to afford it (or you should not want to).
In these cases, it is much faster to alter the list in place. If you have to remove more than 1 element from the list it can be tricky. Suppose you loop over the list, and remove an item, then the list changes and a standard for-loop will not take this into account. The result of the loop may not be what you expected.
Example:
a = [0, 1, 2, 3, 4, 5]
for i in a:
a.remove(i) # Remove all items
print(a)
Out: [1, 3, 5]
A simple solution is to loop through the list in reverse order. In this case you get:
a = [0, 1, 2, 3, 4, 5]
for i in reversed(a):
a.remove(i) # Remove all items
print(a)
Out: []
Then, if you need to only remove elements having some specific values, you can simply put an if statement
in the loop resulting in:
a = [0, 1, 2, 3, 4, 5]
for i in reversed(a):
if i == 2 or i == 3: # Remove all items having value 2 or 3.
a.remove(i)
print(a)
Out: [0, 1, 4, 5]
With a for loop and a condition:
def cleaner(seq, value):
temp = []
for number in seq:
if number != value:
temp.append(number)
return temp
And if you want to remove some, but not all:
def cleaner(seq, value, occ):
temp = []
for number in seq:
if number == value and occ:
occ -= 1
continue
else:
temp.append(number)
return temp
list1=[1,2,3,3,4,5,6,1,3,4,5]
n=int(input('enter number'))
while n in list1:
list1.remove(n)
print(list1)
Overwrite the list by indexing everything except the elements you wish to remove
>>> s = [5,4,3,2,1]
>>> s[0:2] + s[3:]
[5, 4, 2, 1]
More generally,
>>> s = [5,4,3,2,1]
>>> i = s.index(3)
>>> s[:i] + s[i+1:]
[5, 4, 2, 1]
When nums
is the list and c
is the value to be removed:
To remove the first occurrence of c
in the list, just do:
if c in nums:
nums.remove(c)
To remove all occurrences of c
from the list do:
while c in nums:
nums.remove(c)
Adding the exception handling would be the best practice, but I mainly wanted to show how to remove all occurrences of an element from the list.
Say for example, we want to remove all 1's from x. This is how I would go about it:
x = [1, 2, 3, 1, 2, 3]
Now, this is a practical use of my method:
def Function(List, Unwanted):
[List.remove(Unwanted) for Item in range(List.count(Unwanted))]
return List
x = Function(x, 1)
print(x)
And this is my method in a single line:
[x.remove(1) for Item in range(x.count(1))]
print(x)
Both yield this as an output:
[2, 3, 2, 3, 2, 3]
Hope this helps. PS, pleas note that this was written in version 3.6.2, so you might need to adjust it for older versions.
arr = [1, 1, 3, 4, 5, 2, 4, 3]
# to remove first occurence of that element, suppose 3 in this example
arr.remove(3)
# to remove all occurences of that element, again suppose 3
# use something called list comprehension
new_arr = [element for element in arr if element!=3]
# if you want to delete a position use "pop" function, suppose
# position 4
# the pop function also returns a value
removed_element = arr.pop(4)
# u can also use "del" to delete a position
del arr[4]
This removes all instances of "-v"
from the array sys.argv
, and does not complain if no instances were found:
while "-v" in sys.argv:
sys.argv.remove('-v')
You can see the code in action, in a file called speechToText.py
:
$ python speechToText.py -v
['speechToText.py']
$ python speechToText.py -x
['speechToText.py', '-x']
$ python speechToText.py -v -v
['speechToText.py']
$ python speechToText.py -v -v -x
['speechToText.py', '-x']
Maybe your solutions works with ints, but It Doesnt work for me with dictionarys.
In one hand, remove() has not worked for me. But maybe it works with basic Types. I guess the code bellow is also the way to remove items from objects list.
In the other hand, 'del' has not worked properly either. In my case, using python 3.6: when I try to delete an element from a list in a 'for' bucle with 'del' command, python changes the index in the process and bucle stops prematurely before time. It only works if You delete element by element in reversed order. In this way you dont change the pending elements array index when you are going through it
Then, Im used:
c = len(list)-1
for element in (reversed(list)):
if condition(element):
del list[c]
c -= 1
print(list)
where 'list' is like [{'key1':value1'},{'key2':value2}, {'key3':value3}, ...]
Also You can do more pythonic using enumerate:
for i, element in enumerate(reversed(list)):
if condition(element):
del list[(i+1)*-1]
print(list)
this is my answer, just use while and for
def remove_all(data, value):
i = j = 0
while j < len(data):
if data[j] == value:
j += 1
continue
data[i] = data[j]
i += 1
j += 1
for x in range(j - i):
data.pop()
Benchmark of some of the simplest method:
import random
from copy import copy
sample = random.sample(range(100000), 10000)
remove = random.sample(range(100000), 1000)
%%timeit
sample1 = copy(sample)
remove1 = copy(remove)
for i in reversed(sample1):
if i in remove1:
sample1.remove(i)
# 271 ms ± 16 ms per loop (mean ± std. dev. of 7 runs, 1 loop each)
# remove all instances
%%timeit
sample1 = copy(sample)
remove1 = copy(remove)
filtered = list(filter(lambda x: x not in remove1, sample1))
# 280 ms ± 18.9 ms per loop (mean ± std. dev. of 7 runs, 1 loop each)
# remove all instances
%%timeit
sample1 = copy(sample)
remove1 = copy(remove)
filtered = [ele for ele in sample1 if ele not in remove1]
# 293 ms ± 72.1 ms per loop (mean ± std. dev. of 7 runs, 1 loop each)
# remove all instances
%%timeit
sample1 = copy(sample)
remove1 = copy(remove)
for val in remove1:
if val in sample1:
sample1.remove(val)
# 558 ms ± 40.7 ms per loop (mean ± std. dev. of 7 runs, 1 loop each)
# only remove first occurrence
%%timeit
sample1 = copy(sample)
remove1 = copy(remove)
for val in remove1:
try:
sample1.remove(val)
except:
pass
# 609 ms ± 11.7 ms per loop (mean ± std. dev. of 7 runs, 1 loop each)
# only remove first occurrence
This is a less efficient solution, but it still works:
a = [ ]
// that is your list
b
// element(s) you need to delete
counter = a.count(b)
while counter > 0:
if b in a:
a.remove(b)
counter -= 1
print(a)
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