2762

I want to remove a key from a dictionary if it is present. I currently use this code:

if key in my_dict:
    del my_dict[key]

Without the if statement, the code will raise KeyError if the key is not present. How can I handle this more simply?


See Delete an element from a dictionary for more general approaches to the problem of removing a key from a dict (including ones which produce a modified copy).

2

11 Answers 11

4430

To delete a key regardless of whether it is in the dictionary, use the two-argument form of dict.pop():

my_dict.pop('key', None)

This will return my_dict[key] if key exists in the dictionary, and None otherwise. If the second parameter is not specified (i.e. my_dict.pop('key')) and key does not exist, a KeyError is raised.

To delete a key that is guaranteed to exist, you can also use

del my_dict['key']

This will raise a KeyError if the key is not in the dictionary.

12
  • 265
    Sometimes an advantage of using pop() over del: it returns the value for that key. This way you can get and delete an entry from a dict in one line of code.
    – kratenko
    Aug 18, 2013 at 12:21
  • 11
    In the question it is not required to keep the value. This would only add unneeded complexity. The answer from @zigg (below) is much better. Jun 14, 2017 at 2:05
  • 18
    @SalvatoreCosentino I can't follow your argument. How is the code in this answer more complex than the code in in the other answer? Jun 15, 2017 at 13:52
  • 58
    @SalvatoreCosentino No, ignoring the return value of a function is not inefficient at all. Quite the opposite – this solution is much faster than the try/except solution if the key does not exist. You might find one or the other easier to read, which is fine. Both are idiomatic Python, so choose whatever you prefer. But claiming that this answer is more complex or inefficient simply makes no sense. Jun 15, 2017 at 18:44
  • 9
    @user5359531 I don't understand. How is this a problem? None of the methods on Python's built-in types returns self, so it would be rather surprising if this one did. Aug 2, 2018 at 10:09
456

Specifically to answer "is there a one line way of doing this?"

if 'key' in my_dict: del my_dict['key']

...well, you asked ;-)

You should consider, though, that this way of deleting an object from a dict is not atomic—it is possible that 'key' may be in my_dict during the if statement, but may be deleted before del is executed, in which case del will fail with a KeyError. Given this, it would be safest to either use dict.pop or something along the lines of

try:
    del my_dict['key']
except KeyError:
    pass

which, of course, is definitely not a one-liner.

8
  • 36
    Yeah, pop is a definitely more concise, though there is one key advantage of doing it this way: it's immediately clear what it's doing.
    – zigg
    Jul 1, 2012 at 16:30
  • 7
    The try/except statement is more expensive. Raising an exception is slow. Aug 20, 2013 at 5:01
  • 21
    @ChrisBarker I've found if the key exists, try is marginally faster, though if it doesn't, try is indeed a good deal slower. pop is fairly consistent but slower than all but try with a non-present key. See gist.github.com/zigg/6280653. Ultimately, it depends on how often you expect the key to actually be in the dictionary, and whether or not you need atomicity—and, of course, whether or not you're engaging in premature optimization ;)
    – zigg
    Aug 20, 2013 at 12:18
  • 3
    regarding expense of try/except, you can also go if 'key' in mydict: #then del.... I needed to pull out a key/val from a dict to parse correctly, pop was not a perfect solution.
    – Marc
    Jul 9, 2015 at 18:00
  • 1
    @datamafia Like all if k in d solutions, though, that's not atomic and the del may fail. Why didn't pop work for you?
    – zigg
    Jul 14, 2015 at 13:25
196

It took me some time to figure out what exactly my_dict.pop("key", None) is doing. So I'll add this as an answer to save others googling time:

pop(key[, default])

If key is in the dictionary, remove it and return its value, else return default. If default is not given and key is not in the dictionary, a KeyError is raised.

Documentation

1
  • 19
    help() and dir() can be your friends when you need to know what something does. Aug 6, 2013 at 18:08
81

del my_dict[key] is slightly faster than my_dict.pop(key) for removing a key from a dictionary when the key exists

>>> import timeit
>>> setup = "d = {i: i for i in range(100000)}"

>>> timeit.timeit("del d[3]", setup=setup, number=1)
1.79e-06
>>> timeit.timeit("d.pop(3)", setup=setup, number=1)
2.09e-06
>>> timeit.timeit("d2 = {key: val for key, val in d.items() if key != 3}", setup=setup, number=1)
0.00786

But when the key doesn't exist if key in my_dict: del my_dict[key] is slightly faster than my_dict.pop(key, None). Both are at least three times faster than del in a try/except statement:

>>> timeit.timeit("if 'missing key' in d: del d['missing key']", setup=setup)
0.0229
>>> timeit.timeit("d.pop('missing key', None)", setup=setup)
0.0426
>>> try_except = """
... try:
...     del d['missing key']
... except KeyError:
...     pass
... """
>>> timeit.timeit(try_except, setup=setup)
0.133
0
69

If you need to remove a lot of keys from a dictionary in one line of code, I think using map() is quite succinct and Pythonic readable:

myDict = {'a':1,'b':2,'c':3,'d':4}
map(myDict.pop, ['a','c']) # The list of keys to remove
>>> myDict
{'b': 2, 'd': 4}

And if you need to catch errors where you pop a value that isn't in the dictionary, use lambda inside map() like this:

map(lambda x: myDict.pop(x,None), ['a', 'c', 'e'])
[1, 3, None] # pop returns
>>> myDict
{'b': 2, 'd': 4}

or in python3, you must use a list comprehension instead:

[myDict.pop(x, None) for x in ['a', 'c', 'e']]

It works. And 'e' did not cause an error, even though myDict did not have an 'e' key.

0
62

You can use a dictionary comprehension to create a new dictionary with that key removed:

>>> my_dict = {k: v for k, v in my_dict.items() if k != 'key'}

You can delete by conditions. No error if key doesn't exist.

3
  • 6
    This answer is different than the others because it has no side-effects (it does not mutate the original dictionary). Aug 5, 2020 at 23:33
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    While this is probably the way I would do it aswell, this makes a whole new dictionary in memory, copying (references to) objects to the new dictionary. It then saves it onto the old name. For big dictionaries this can take some time. del dict[key] or dict.pop(key) will be faster in all cases.
    – mazunki
    Nov 20, 2020 at 19:51
  • del and pop are faster, but sometimes you just don't want to modify the original dictionary. It would make more sense if in the example above, the comprehension result was assigned to another variable.
    – Ramon Dias
    May 17, 2022 at 22:06
11

You can use exception handling if you want to be very verbose:

try: 
    del dict[key]

except KeyError: pass

This is slower, however, than the pop() method, if the key doesn't exist.

my_dict.pop('key', None)

It won't matter for a few keys, but if you're doing this repeatedly, then the latter method is a better bet.

The fastest approach is this:

if 'key' in dict: 
    del myDict['key']

But this method is dangerous because if 'key' is removed in between the two lines, a KeyError will be raised.

11

We can delete a key from a Python dictionary by the some of the following approaches.

Using the del keyword; it's almost the same approach like you did though -

 myDict = {'one': 100, 'two': 200, 'three': 300 }
 print(myDict)  # {'one': 100, 'two': 200, 'three': 300}
 if myDict.get('one') : del myDict['one']
 print(myDict)  # {'two': 200, 'three': 300}

Or

We can do like the following:

But one should keep in mind that, in this process actually it won't delete any key from the dictionary rather than making a specific key excluded from that dictionary. In addition, I observed that it returned a dictionary which was not ordered the same as myDict.

myDict = {'one': 100, 'two': 200, 'three': 300, 'four': 400, 'five': 500}
{key:value for key, value in myDict.items() if key != 'one'}

If we run it in the shell, it'll execute something like {'five': 500, 'four': 400, 'three': 300, 'two': 200} - notice that it's not the same ordered as myDict. Again if we try to print myDict, then we can see all keys including which we excluded from the dictionary by this approach. However, we can make a new dictionary by assigning the following statement into a variable:

var = {key:value for key, value in myDict.items() if key != 'one'}

Now if we try to print it, then it'll follow the parent order:

print(var) # {'two': 200, 'three': 300, 'four': 400, 'five': 500}

Or

Using the pop() method.

myDict = {'one': 100, 'two': 200, 'three': 300}
print(myDict)

if myDict.get('one') : myDict.pop('one')
print(myDict)  # {'two': 200, 'three': 300}

The difference between del and pop is that, using pop() method, we can actually store the key's value if needed, like the following:

myDict = {'one': 100, 'two': 200, 'three': 300}
if myDict.get('one') : var = myDict.pop('one')
print(myDict) # {'two': 200, 'three': 300}
print(var)    # 100

Fork this gist for future reference, if you find this useful.

0
6

I prefer the immutable version

foo = {
    1:1,
    2:2,
    3:3
}
removeKeys = [1,2]
def woKeys(dct, keyIter):
    return {
        k:v
        for k,v in dct.items() if k not in keyIter
    }

>>> print(woKeys(foo, removeKeys))
{3: 3}
>>> print(foo)
{1: 1, 2: 2, 3: 3}
6

Another way is by using items() + dict comprehension.

items() coupled with dict comprehension can also help us achieve the task of key-value pair deletion, but it has the drawback of not being an in place dict technique. Actually a new dict if created except for the key we don’t wish to include.

test_dict = {"sai" : 22, "kiran" : 21, "vinod" : 21, "sangam" : 21}

# Printing dictionary before removal
print ("dictionary before performing remove is : " + str(test_dict))

# Using items() + dict comprehension to remove a dict. pair
# removes  vinod
new_dict = {key:val for key, val in test_dict.items() if key != 'vinod'}

# Printing dictionary after removal
print ("dictionary after remove is : " + str(new_dict))

Output:

dictionary before performing remove is : {'sai': 22, 'kiran': 21, 'vinod': 21, 'sangam': 21}
dictionary after remove is : {'sai': 22, 'kiran': 21, 'sangam': 21}
0
0
Remove multiple keys

Marc Maxmeister's post discusses this but creates an unnecessary (imo) list while doing so. You can simply use a for-loop and throw away the popped values.

my_dict = {'a': 1, 'b': 2, 'c': 3, 'd': 4}
lst = ['a', 'c', 'e']
for k in lst: my_dict.pop(k, None)
print(my_dict)                                              # {'b': 2, 'd': 4}

or if you want to use map, then exhaust the map using a deque with max length 0.

from collections import deque
from itertools import repeat
deque(map(my_dict.pop, ['a', 'c', 'e'], repeat(None)), 0)
print(my_dict)                                              # {'b': 2, 'd': 4}
Split dict into two

One case where dict.pop() may be useful is if you want to create a new dictionary with the popped key-value pairs, effectively splitting a dictionary into two in one for-loop.

new_dict = {k: v for k in lst if (v:=my_dict.pop(k, 'NULL')) != 'NULL'}
print(my_dict)                                              # {'b': 2, 'd': 4}
print(new_dict)                                             # {'a': 1, 'c': 3}

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