93

I have a dictionary

d = {'a':1, 'b':2, 'c':3}

I need to remove a key, say c and return the dictionary without that key in one function call

{'a':1, 'b':2}

d.pop('c') will return the key value - 3 - instead of the dictionary.

I am going to need one function solution if it exists, as this will go into comprehensions

4
  • d.pop('c') return d? Jul 16, 2013 at 0:00
  • @VictorCastilloTorres, it returns the value of 'c', which is 3 in this case.
    – Xeos
    Jul 16, 2013 at 0:08
  • I think that it's not True because first you remove the value of c and now d = {'a':1, 'b':2}and if you return d this one will returns {'a':1, 'b':2} Jul 16, 2013 at 0:12
  • Oh.. I see what you mean. I did not realise that all of your comment was code. I thought you were asking if d.pop('c') will return d :) Yes, that would work, but I can't use it. I need to use it inside comprehension.
    – Xeos
    Jul 16, 2013 at 0:15

7 Answers 7

116

How about this:

{i:d[i] for i in d if i!='c'}

It's called Dictionary Comprehensions and it's available since Python 2.7.

or if you are using Python older than 2.7:

dict((i,d[i]) for i in d if i!='c')
7
  • Yep, totally works. I have got it to work with: dict(set(d.items()) - {('c', 0)}) But it's because I knew the value the 'c' will take. Your solution is more.. comprehensive
    – Xeos
    Jul 16, 2013 at 0:10
  • 1
    Turns out performance on small data sets (what I need to operate on) is around the same.
    – Xeos
    Jul 16, 2013 at 0:30
  • dict((i,d[i]) for i in d if i!='c') -- Brownie points for you for not creating another intermediate list/tuple :)
    – haridsv
    Apr 2, 2016 at 14:30
  • 1
    Your answer is technically good, but it would be better if you can explain a bit some details, e.g. how it actually works. Apr 6, 2017 at 14:26
  • 15
    I recommend using a variable name of k rather than i because it is storing a dict key, not an index. Also note that you can iterate over k, v in f.items(), allowing you to refer to the value with v instead of d[i]. In the end: {k: v for k, v in d.items() if k != 'c'}
    – tar
    Feb 4, 2020 at 20:19
31

Why not roll your own? This will likely be faster than creating a new one using dictionary comprehensions:

def without(d, key):
    new_d = d.copy()
    new_d.pop(key)
    return new_d
5
  • 1
    Yeah, that is a solution. Unfortunetly I am stuck with native methods and I can't add any of my own. But this totally would work.
    – Xeos
    Jul 16, 2013 at 0:13
  • 5
    Just out of curiosity, how come you can't define your own functions? Jul 16, 2013 at 0:17
  • 3
    It's an assignment I need to complete using only comprehensions and native functions, so no external modules as well.
    – Xeos
    Jul 16, 2013 at 0:28
  • 4
  • I would use `copy.deepcopy() for the general case
    – Ouss
    Apr 26 at 19:11
16

If you need an expression that does this (so you can use it in a lambda or comprehension) then you can use this little hack trick: create a tuple with the dictionary and the popped element, and then get the original item back out of the tuple:

(foo, foo.pop(x))[0]

For example:

ds = [{'a': 1, 'b': 2, 'c': 3}, {'a': 4, 'b': 5, 'c': 6}]
[(d, d.pop('c'))[0] for d in ds]
assert ds == [{'a': 1, 'b': 2}, {'a': 4, 'b': 5}]

Note that this actually modifies the original dictionary, so despite being a comprehension, it's not purely functional.

8

When you invoke pop the original dictionary is modified in place.

You can return that one from your function.

>>> a = {'foo': 1, 'bar': 2}
>>> a.pop('foo')
1
>>> a
{'bar': 2}
1
  • 1
    Nice trick: an alternative to [a.pop('foo'),a][1] . actually this is a construct i'd like to use more generally. it is essentially returning the result of a series of statement Mar 12, 2021 at 22:14
1

solution from me

item = dict({"A": 1, "B": 3, "C": 4})
print(item)
{'A': 1, 'B': 3, 'C': 4}

new_dict = (lambda d: d.pop('C') and d)(item)
print(new_dict)
{'A': 1, 'B': 3}
1

Dict comprehension seems to be more elegant

{k:v for k,v in d.items() if k != 'c'}
0

this will work,

(lambda dict_,key_:dict_.pop(key_,True) and dict_)({1:1},1)

EDIT this will drop the key if exist in the dictionary and will return the dictionary without the key,value pair

in python there are functions that alter an object in place, and returns a value instead of the altered object, {}.pop function is an example.

we can use a lambda function as in the example, or more generic below (lambda func:obj:(func(obj) and False) or obj) to alter this behavior, and get a the expected behavior.

1

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