Is there a way to delete an item from a dictionary in Python?

Additionally, how can I delete an item from a dictionary to return a copy (i.e., not modifying the original)?

  • 11
    Why do you need a function that returns a dictionary, when you can just modify the dictionary directly? – amillerrhodes May 1 '11 at 1:26
  • 4
    The dictionary pop method changes the dictionary in-place. Therefore it alters the reference to the dictionary that was passed from the caller to the "helper function". So the "helper function" doesn't need to return anything, since the original reference to the dictionary in the caller will already be altered. Don't assign the return from dict.pop() to anything if you don't need it. EG: do stuff with my_dict; my_dict.pop(my_key, None); do more stuff with my_dict # now doesn't have my_key. Use deepcopy(my_dict) if needed. – Mark Mikofski Jul 1 '16 at 23:51
  • Since the original title disagreed with the details and specifically excluded the obvious solution d.pop(), I fixed the title to ask the question specified in the details. – smci May 14 at 22:59
  • 1
    We should add a caveat asking if you really want to do this, as if you do it N times on a dictionary with E elements you'll leak(/use) O(N*E) memory with all the deep copies. If you merely want a read-only (shallow copy), do d.pop(key). But if anything ever modifies the shallow copy, you have a well-known problem with aliasing. It helps if you tell us the wider context. (Is anything else ever modifying the dict values? Are you trying to destructively iterate over a list? if not, what?) – smci May 15 at 1:13

14 Answers 14

up vote 1310 down vote accepted

The del statement removes an element:

del d[key]

However, this mutates the existing dictionary so the contents of the dictionary changes for anybody else who has a reference to the same instance. To return a new dictionary, make a copy of the dictionary:

def removekey(d, key):
    r = dict(d)
    del r[key]
    return r

The dict() constructor makes a shallow copy. To make a deep copy, see the copy module.


Note that making a copy for every dict del/assignment/etc. means you're going from constant time to linear time, and also using linear space. For small dicts, this is not a problem. But if you're planning to make lots of copies of large dicts, you probably want a different data structure, like a HAMT (as described in this answer).

  • 14
    thats a great point about the mutability of dictionaries +1 - though i can't think of a time when i wanted copies of the dictionary, i've always relied on 'everyones' copy being the same. great point. – tMC Apr 30 '11 at 21:38
  • 23
    @tMC If you edit the dict as you're looping through it, it'll give you an error: RuntimeError: dictionary changed size during iteration – VertigoRay Aug 29 '13 at 8:59
  • 11
    What about pop method which in fact does the same? Isn't it more pythonic? (being dict's method, not special reserved word)? – Serge Feb 17 '14 at 9:48
  • 20
    This answer has a weakness, it could be misleading. Readers may misunderstand that dict(d) can give them a copy with 'd'. But it's an incomplete copy. When only doing del keys operations, that's OK. But when you want to do something else to a nested dict, modifying 'r' using that copy method may cause change to the original 'd'. To get an authentic copy, you need first ' import copy ', and then 'r = copy.deepcopy(d) '. – Zen Jul 23 '14 at 10:34
  • 10
    @Zen: Fair enough, I have added a note about shallow vs. deep copy. – Greg Hewgill Jul 24 '14 at 3:33

pop mutates the dictionary.

 >>>lol = {"hello":"gdbye"}
 >>>lol.pop("hello")
    'gdbye'
 >>> lol
     {}

If you want to keep the original you could just copy it.

  • 1
    Also works in lambdas (while del doesn't). – Bora M. Alper Mar 9 '17 at 6:25
  • 7
    "del" is ok, but "pop" seems more "Pythonic", in my opinion. – ivanleoncz May 6 '17 at 2:27
  • @ivanleoncz why? – kevr Jan 23 at 0:45
  • 2
    pop returns the value that was 'popped', which allows you to use this value for whatever further reason. If it's not more "Pythonic", I'd say that seems better, for sure :). It's not a dict, but it works the same way for both: github.com/ivanlmj/python-prototypes/blob/master/3.4/… – ivanleoncz Jan 23 at 0:59

I think your solution is best way to do it. But if you want another solution, you can create a new dictionary with using the keys from old dictionary without including your specified key, like this:

>>> a
{0: 'zero', 1: 'one', 2: 'two', 3: 'three'}
>>> {i:a[i] for i in a if i!=0}
{1: 'one', 2: 'two', 3: 'three'}
  • 2
    Really cool. I like the quick method to filter a dictionary without defining a new function. – Joe J Jul 16 '13 at 22:15
  • 6
    Worth mentioning that only works on 2.7+ – David Reynolds Apr 24 '14 at 14:12
  • 5
    For those not familiar with comprehensions, you can also do something like this: {i:a[i] for i in a if i not in [0, 1, 2]} if you want to remove several elements. – kmatheny Feb 4 '15 at 20:01
  • 6
    Better would be {k:v for k,v in a.items() if k != 0} I think. – rlbond Feb 13 '17 at 23:01
  • The best solution for removing an item by key and returning the result of the new dict in the same line. For example if you need to use an an already constructed dict without a single item as **kwargs, some_function(**{k:v for k,v in some_dict.items() if k not 'some_key'}) – Cole Nov 19 '17 at 21:14

The del statement is what you're looking for. If you have a dictionary named foo with a key called 'bar', you can delete 'bar' from foo like this:

del foo['bar']

Note that this permanently modifies the dictionary being operated on. If you want to keep the original dictionary, you'll have to create a copy beforehand:

>>> foo = {'bar': 'baz'}
>>> fu = dict(foo)
>>> del foo['bar']
>>> print foo
{}
>>> print fu
{'bar': 'baz'}

The dict call makes a shallow copy. If you want a deep copy, use copy.deepcopy.

Here's a method you can copy & paste, for your convenience:

def minus_key(key, dictionary):
    shallow_copy = dict(dictionary)
    del shallow_copy[key]
    return shallow_copy
  • 1
    @pythonian29033 , actually, no. The accepted answer works as expected — it returns the dict without one key. The approach from this answer mutates original dict;) There is a significat difference – maxkoryukov May 28 '17 at 20:16
  • 1
    @arussell84, why >>> is often used in the python-examples? Yeah, python-doc contains a lot of such things. But such code is not convenient for copypaste. I am confused... – maxkoryukov May 28 '17 at 20:19
  • @maxkoryukov yup it does! but that function and this answer is exactly the same, with the exception of that answer being inside of a function. and you must not have been coding in python for a while, the >>> mimics the listening notation from python in cli mode – pythonian29033 May 29 '17 at 9:22
  • 2
    @pythonian29033 about >>>. Yes, it is REPL-style, but let's talk frankly: the only one man had wrote this sample, and 1000 have read this. I think, it would be great to write examples in the way allowing easy copy and run. I don't like to remove this angle brackets by hand. Or copy line by line.. So I don't understand: why this angles are still there))) May be I don't know something? – maxkoryukov May 29 '17 at 9:56
  • 2
    I've added a function that can be copy/pasted, for your convenience. – arussell84 May 30 '17 at 14:28

There're a lot of nice answers, but I want to emphasize one thing.

You can use both dict.pop() method and a more generic del statement to remove items from a dictionary. They both mutate the original dictionary, so you need to make a copy (see details below).

And both of them will raise a KeyError if the key you're providing to them is not present in the dictionary:

key_to_remove = "c"
d = {"a": 1, "b": 2}
del d[key_to_remove]  # Raises `KeyError: 'c'`

and

key_to_remove = "c"
d = {"a": 1, "b": 2}
d.pop(key_to_remove)  # Raises `KeyError: 'c'`

You have to take care of this:

by capturing the exception:

key_to_remove = "c"
d = {"a": 1, "b": 2}
try:
    del d[key_to_remove]
except KeyError as ex:
    print("No such key: '%s'" % ex.message)

and

key_to_remove = "c"
d = {"a": 1, "b": 2}
try:
    d.pop(key_to_remove)
except KeyError as ex:
    print("No such key: '%s'" % ex.message)

by performing a check:

key_to_remove = "c"
d = {"a": 1, "b": 2}
if key_to_remove in d:
    del d[key_to_remove]

and

key_to_remove = "c"
d = {"a": 1, "b": 2}
if key_to_remove in d:
    d.pop(key_to_remove)

but with pop() there's also a much more concise way - provide the default return value:

key_to_remove = "c"
d = {"a": 1, "b": 2}
d.pop(key_to_remove, None)  # No `KeyError` here

Unless you use pop() to get the value of a key being removed you may provide anything, not necessary None. Though it might be that using del with in check is slightly faster due to pop() being a function with its own complications causing overhead. Usually it's not the case, so pop() with default value is good enough.


As for the main question, you'll have to make a copy of your dictionary, to save the original dictionary and have a new one without the key being removed.

Some other people here suggest making a full (deep) copy with copy.deepcopy(), which might be an overkill, a "normal" (shallow) copy, using copy.copy() or dict.copy(), might be enough. The dictionary keeps a reference to the object as a value for a key. So when you remove a key from a dictionary this reference is removed, not the object being referenced. The object itself may be removed later automatically by the garbage collector, if there're no other references for it in the memory. Making a deep copy requires more calculations compared to shallow copy, so it decreases code performance by making the copy, wasting memory and providing more work to the GC, sometimes shallow copy is enough.

However, if you have mutable objects as dictionary values and plan to modify them later in the returned dictionary without the key, you have to make a deep copy.

With shallow copy:

def get_dict_wo_key(dictionary, key):
    """Returns a **shallow** copy of the dictionary without a key."""
    _dict = dictionary.copy()
    _dict.pop(key, None)
    return _dict


d = {"a": [1, 2, 3], "b": 2, "c": 3}
key_to_remove = "c"

new_d = get_dict_wo_key(d, key_to_remove)
print(d)  # {"a": [1, 2, 3], "b": 2, "c": 3}
print(new_d)  # {"a": [1, 2, 3], "b": 2}
new_d["a"].append(100)
print(d)  # {"a": [1, 2, 3, 100], "b": 2, "c": 3}
print(new_d)  # {"a": [1, 2, 3, 100], "b": 2}
new_d["b"] = 2222
print(d)  # {"a": [1, 2, 3, 100], "b": 2, "c": 3}
print(new_d)  # {"a": [1, 2, 3, 100], "b": 2222}

With deep copy:

from copy import deepcopy


def get_dict_wo_key(dictionary, key):
    """Returns a **deep** copy of the dictionary without a key."""
    _dict = deepcopy(dictionary)
    _dict.pop(key, None)
    return _dict


d = {"a": [1, 2, 3], "b": 2, "c": 3}
key_to_remove = "c"

new_d = get_dict_wo_key(d, key_to_remove)
print(d)  # {"a": [1, 2, 3], "b": 2, "c": 3}
print(new_d)  # {"a": [1, 2, 3], "b": 2}
new_d["a"].append(100)
print(d)  # {"a": [1, 2, 3], "b": 2, "c": 3}
print(new_d)  # {"a": [1, 2, 3, 100], "b": 2}
new_d["b"] = 2222
print(d)  # {"a": [1, 2, 3], "b": 2, "c": 3}
print(new_d)  # {"a": [1, 2, 3, 100], "b": 2222}
d = {1: 2, '2': 3, 5: 7}
del d[5]
print 'd = ', d

Result: d = {1: 2, '2': 3}

Simply call del d['key'].

However, in production, it is always a good practice to check if 'key' exists in d.

if 'key' in d:
    del d['key']
  • 4
    Hmm, no, in production it is better to follow EAFP ideology. Just remove key in try-except block. At least, this will be an atomic operation;) – maxkoryukov May 28 '17 at 20:09
  • And if you want to be concise — use d.pop('key', None) , it is oneliner. But the actual question was about getting the dictionary without one key, and not about modifying the dict. So comprehensions - is a good choice here;) – maxkoryukov May 28 '17 at 20:14

… how can I delete an item from a dictionary to return a copy (i.e., not modifying the original)?

A dict is the wrong data structure to use for this.

Sure, copying the dict and popping from the copy works, and so does building a new dict with a comprehension, but all that copying takes time—you've replaced a constant-time operation with a linear-time one. And all those copies alive at once take space—linear space per copy.

Other data structures, like hash array mapped tries, are designed for exactly this kind of use case: adding or removing an element returns a copy in logarithmic time, sharing most of its storage with the original.1

Of course there are some downsides. Performance is logarithmic rather than constant (although with a large base, usually 32-128). And, while you can make the non-mutating API identical to dict, the "mutating" API is obviously different. And, most of all, there's no HAMT batteries included with Python.2

The pyrsistent library is a pretty solid implementation of HAMT-based dict-replacements (and various other types) for Python. It even has a nifty evolver API for porting existing mutating code to persistent code as smoothly as possible. But if you want to be explicit about returning copies rather than mutating, you just use it like this:

>>> from pyrsistent import m
>>> d1 = m(a=1, b=2)
>>> d2 = d1.set('c', 3)
>>> d3 = d1.remove('a')
>>> d1
pmap({'a': 1, 'b': 2})
>>> d2
pmap({'c': 3, 'a': 1, 'b': 2})
>>> d3
pmap({'b': 2})

That d3 = d1.remove('a') is exactly what the question is asking for.

If you've got mutable data structures like dict and list embedded in the pmap, you'll still have aliasing issues—you can only fix that by going immutable all the way down, embedding pmaps and pvectors.


1. HAMTs have also become popular in languages like Scala, Clojure, Haskell because they play very nicely with lock-free programming and software transactional memory, but neither of those is very relevant in Python.

2. In fact, there is an HAMT in the stdlib, used in the implementation of contextvars. The earlier withdrawn PEP explains why. But this is a hidden implementation detail of the library, not a public collection type.

No, there is no other way than

def dictMinus(dct, val):
   copy = dct.copy()
   del copy[val]
   return copy

However, often creating copies of only slightly altered dictionaries is probably not a good idea because it will result in comparatively large memory demands. It is usually better to log the old dictionary(if even necessary) and then modify it.

  • You have a good point about memory usage; I never thought of that. – Fox Wilson Aug 17 '13 at 14:44
>>> def delete_key(dict, key):
...     del dict[key]
...     return dict
... 
>>> test_dict = {'one': 1, 'two' : 2}
>>> print delete_key(test_dict, 'two')
{'one': 1}
>>>

this doesn't do any error handling, it assumes the key is in the dict, you might want to check that first and raise if its not

  • 9
    How is your method any different than just del test_dict[key]? – Mad Physicist Dec 14 '15 at 20:40

Here a top level design approach:

def eraseElement(d,k):
    if isinstance(d, dict):
        if k in d:
            d.pop(k)
            print(d)
        else:
            print("Cannot find matching key")
    else:
        print("Not able to delete")


exp = {'A':34, 'B':55, 'C':87}
eraseElement(exp, 'C')

I'm passing the dictionary and the key I want into my function, validates if it's a dictionary and if the key is okay, and if both exist, removes the value from the dictionary and prints out the left-overs.

Output: {'B': 55, 'A': 34}

Hope that helps!

nice one-liner to check if the key is present, delete it, return the value, or default:

ret_val = ('key' in body and body.pop('key')) or 5
  • 1
    Will give wrong results for falsy values. – thomie Mar 24 at 16:36

Below code snippet will help you definitely, I have added comments in each line which will help you in understanding the code.

def execute():
   dic = {'a':1,'b':2}
   dic2 = remove_key_from_dict(dic, 'b')  
   print(dict2)           # {'a': 1}
   print(dict)            # {'a':1,'b':2}

def remove_key_from_dict(dictionary_to_use, key_to_delete):
   copy_of_dict = dict(dictionary_to_use)     # creating clone/copy of the dictionary
   if key_to_delete in copy_of_dict :         # checking given key is present in the dictionary
       del copy_of_dict [key_to_delete]       # deleting the key from the dictionary 
   return copy_of_dict                        # returning the final dictionary

or you can also use dict.pop()

d = {"a": 1, "b": 2}

res = d.pop("c")  # No `KeyError` here
print (res)       # this line will not execute

or the better approach is

res = d.pop("c", "key not found")
print (res)   # key not found
print (d)     # {"a": 1, "b": 2}

res = d.pop("b", "key not found")
print (res)   # 2
print (d)     # {"a": 1}

Here's another variation using list comprehension:

original_d = {'a': None, 'b': 'Some'}
d = dict((k,v) for k, v in original_d.iteritems() if v)
# result should be {'b': 'Some'}

The approach is based on an answer from this post: Efficient way to remove keys with empty strings from a dict

  • If you're going to answer a years-old question that already has a simple, appropriate, accepted answer, at least make sure your answer is right. This doesn't do what the OP asked for. – user2357112 Aug 30 '13 at 1:12
  • I don't generally check dates on questions I think could have valuable info added to them. Additionally, per one of the comments on the question I linked to: "Usually this is exactly what someone wants and is probably what the OP needs, but it is not what the OP asked for" stackoverflow.com/questions/12118695/… I knew it wasn't a direct answer to the question; rather an expansion to the options. – BigBlueHat Aug 30 '13 at 1:49
  • 3
    This answer, although not complete, lets us learn that we can remove items with if conditions too. just changing if v to if k is not 'a' answers the op. But i don't think that's an efficient way, this removes the element in O(n) rather than O(log n) as pop or del does. – holgac May 10 '14 at 14:24

protected by Aniket Thakur Sep 11 '15 at 3:09

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