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

I know I can just call .pop on the dictionary, but that returns the element that was removed. What I'm looking for is something returns the dictionary minus the element in question.

At present I have a helper function that accepts the dictionary in question as parameter, and then returns a dictionary with the element removed, Is there a more elegant solution?

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2  
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
7  
@lightdee that is wrong. –  XORcist Feb 16 '13 at 16:04
    
lightdee's comment might refer to this statement in the documentation: "The pop() method is only supported by the list and array types." –  bernie Mar 28 '13 at 19:47
2  
@lightdee You linked to the pop() method of mutable sequences, but the standard dict is not a sequence; it's an unordered mapping. dict.pop() is explicitly documented further down the page. –  AirThomas Sep 16 '13 at 19:17

8 Answers 8

up vote 245 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.

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5  
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
4  
@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
    
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 at 9:48
    
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 at 10:34
1  
@Zen: Fair enough, I have added a note about shallow vs. deep copy. –  Greg Hewgill Jul 24 at 3:33

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'}
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Really cool. I like the quick method to filter a dictionary without defining a new function. –  Joe J Jul 16 '13 at 22:15
2  
Worth mentioning that only works on 2.7+ –  David Reynolds Apr 24 at 14:12
d = {1: 2, '2': 3, 5: 7}
del d[5]
print 'd = ', d

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

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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'}
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maybe I dont get your question but pop mutates the dictionary...

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

if you want to keep the original I guess you could just copy it

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If in doubt about the question, first comment on the question to get more clarity on the OP, instead of adding an answer which is neither here nor there –  aravind Mar 21 at 16:45
2  
I only added the maybe "I dont get your question" because the answer seemed pretty obvious to me... I also think its helpful to give the person who asks the question a wide range of answers to choose from... –  Crystal Mar 24 at 13:47
    
Is my answer neither here nor there? –  Crystal Mar 24 at 13:52
1  
Seems like a good answer to me! Just a tip, you can use the @ symbol to tag someone if they're not the answerer -- it sends them a notification. –  Ryan Amos May 21 at 0:03
>>> 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

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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.

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You have a good point about memory usage; I never thought of that. –  fwilson Aug 17 '13 at 14:44

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 values from a dict

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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
1  
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. –  revani May 10 at 14:24

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