120

What is the proper way to remove keys from a dictionary with value == None in Python?

2
  • 6
    You'll have to clarify what you mean, as every key in a dictionary must have a value, even if that value is '' or 0 or None. Commented Nov 19, 2015 at 6:57
  • 2
    {k: v for k, v in original.items() if v is not None}
    – Shivam Jha
    Commented Jul 1, 2020 at 19:22

8 Answers 8

203

Generally, you'll create a new dict constructed from filtering the old one. dictionary comprehensions are great for this sort of thing:

{k: v for k, v in original.items() if v is not None}

If you must update the original dict, you can do it like this ...

filtered = {k: v for k, v in original.items() if v is not None}
original.clear()
original.update(filtered)

This is probably the most "clean" way to remove them in-place that I can think of (it isn't safe to modify a dict while you're iterating over it)


Use original.iteritems() on python2.x

6
  • Currently the other two answers to this question appear to be iterating over the dictionary while deleting from it. Is that what you mentioned in the last sentence? Iterating over dict.keys or dict.items?
    – RobertL
    Commented Nov 19, 2015 at 23:05
  • 1
    @RobertL -- Yeah. Iterating over dict is always unsafe if you are going to be mutating the dictionary in the process. Iterating over dict.keys() and dict.items() is fine on python2.x, but unsafe on python3.x. See stackoverflow.com/a/6777632/748858 for example.
    – mgilson
    Commented Nov 20, 2015 at 1:24
  • Thanks for updating with Python 3 syntax. As Python 2 becomes older, this answer becomes more clumsy. Perhaps it's time to provide the Python 3+ answer first and the legacy syntax as a footnote. Commented Aug 20, 2018 at 17:26
  • 1
    @JasonR.Coombs -- Agreed. I flip-flopped this one to default to python3.x -- Actually that would work on python2.x as well, it'd just be slightly less efficient.
    – mgilson
    Commented Aug 20, 2018 at 19:49
  • 2
    This doesn't seem to work if you have nested dictionaries Commented Apr 7, 2021 at 8:17
20

if you need to delete None values recursively, better to use this one:

def delete_none(_dict):
    """Delete None values recursively from all of the dictionaries"""
    for key, value in list(_dict.items()):
        if isinstance(value, dict):
            delete_none(value)
        elif value is None:
            del _dict[key]
        elif isinstance(value, list):
            for v_i in value:
                if isinstance(v_i, dict):
                    delete_none(v_i)

    return _dict

with advice of @dave-cz, there was added functionality to support values in list type.

@mandragor added additional if statement to allow dictionaries which contain simple lists.

Here's also solution if you need to remove all of the None values from dictionaries, lists, tuple, sets:

def delete_none(_dict):
    """Delete None values recursively from all of the dictionaries, tuples, lists, sets"""
    if isinstance(_dict, dict):
        for key, value in list(_dict.items()):
            if isinstance(value, (list, dict, tuple, set)):
                _dict[key] = delete_none(value)
            elif value is None or key is None:
                del _dict[key]

    elif isinstance(_dict, (list, set, tuple)):
        _dict = type(_dict)(delete_none(item) for item in _dict if item is not None)

    return _dict

The result is:

# passed:
a = {
    "a": 12, "b": 34, "c": None,
    "k": {"d": 34, "t": None, "m": [{"k": 23, "t": None},[None, 1, 2, 3],{1, 2, None}], None: 123}
}

# returned:
a = {
    "a": 12, "b": 34, 
    "k": {"d": 34, "m": [{"k": 23}, [1, 2, 3], {1, 2}]}
}
8
  • 2
    You need to add list() before _dict.items() to avoid raising a RunTimeError due to the dict changing size during iteration
    – Luca
    Commented Feb 21, 2021 at 20:52
  • 1
    value can be list of dicts with None properties, add elif isinstance(value, list): for v_i in value: delete_none(v_i)
    – dave-cz
    Commented Jul 21, 2021 at 12:21
  • 2
    There is no need to return _dict. This will only increase the runtime. _dict is passed by reference to the method. You can pass a copy of the dictionary you want to remove ones from to this function and get the result. Commented Aug 25, 2021 at 18:57
  • 1
    it is missing a case if you have an array on the top level: mylist: [ 1, 2,3 ]
    – Mandragor
    Commented Dec 30, 2021 at 10:27
  • @Mandragor good point, thanks, it can't be checked in the very beginning like: if not isinstance(_dict, dict): return _dict but your looks good
    – Vova
    Commented Dec 31, 2021 at 13:17
4

For python 2.x:

dict((k, v) for k, v in original.items() if v is not None)
3
  • 1
    I can't speak for the down-voter, but one issue with the answer here is that not v will evalute to True if bool(v) evaluates to False. This is the case for v == '' (empty string), for example, which is different from saying v == None.
    – Rob
    Commented Apr 5, 2019 at 13:13
  • @Rob is not is not equivalent to is and not combined. It is a separate operator altogether that tests Identity. See operator.is_notfor Python2 and Python3. Commented Nov 3, 2021 at 19:27
  • 1
    @AminShahGilani Yes, the answer has been edited. It was previously using if not v rather than if v is not None. Should I delete my comment now?
    – Rob
    Commented Nov 6, 2021 at 12:38
4

if you don't want to make a copy

for k,v  in list(foo.items()):
   if v is None:
      del foo[k]
3
  • 2
    Better is foo.pop(k) else it'll fail
    – Joseph
    Commented Oct 1, 2020 at 2:11
  • 1
    FYI, the list keyword creates a (shallow) copy of the key/value pairs. Commented Dec 20, 2020 at 11:01
  • 1
    foo.pop(k) fails as well if there's no key, better, pop(k, None)
    – Vova
    Commented Apr 7, 2021 at 19:55
3

You could also take a copy of the dict to avoid iterating the original dict while altering it.

for k, v in dict(d).items():
    if v is None:
        del d[k]

But that might not be a great idea for larger dictionaries.

0
2

Python3 recursive version

def drop_nones_inplace(d: dict) -> dict:
    """Recursively drop Nones in dict d in-place and return original dict"""
    dd = drop_nones(d)
    d.clear()
    d.update(dd)
    return d

def drop_nones(d: dict) -> dict:
    """Recursively drop Nones in dict d and return a new dict"""
    dd = {}
    for k, v in d.items():
        if isinstance(v, dict):
            dd[k] = drop_nones(v)
        elif isinstance(v, (list, set, tuple)):
            # note: Nones in lists are not dropped
            # simply add "if vv is not None" at the end if required
            dd[k] = type(v)(drop_nones(vv) if isinstance(vv, dict) else vv 
                            for vv in v) 
        elif v is not None:
            dd[k] = v
    return dd
0

Here is a recursive function returning a new clean dictionary without keys with None values:

def clean_dict(d):
    clean = {}

    for key, value in d.items():
        if value is not None:
            if isinstance(value, dict):
                subdict = clean_dict(value)
                if subdict:
                    clean[key] = subdict
            else:
                clean[key] = value
    return clean


example = {
"a": 12, "b": "", "c": None, "d": {"e": {"f": None}},
"k": {"d": 34, "t": None, "m": {"k": [], "t": {"x": 0}}, None: 123}

}

print(clean_dict(example))

Output is

{'a': 12, 'b': '', 'k': {'d': 34, 'm': {'k': [], 't': {'x': 0}}, None: 123}}

Note that it also removed "d": {"e": {"f": None}} from the result.

-1

Maybe you'll find it useful:

def clear_dict(d):
    if d is None:
        return None
    elif isinstance(d, list):
        return list(filter(lambda x: x is not None, map(clear_dict, d)))
    elif not isinstance(d, dict):
        return d
    else:
        r = dict(
                filter(lambda x: x[1] is not None,
                    map(lambda x: (x[0], clear_dict(x[1])),
                        d.items())))
        if not bool(r):
            return None
        return r

it would:

clear_dict(
    {'a': 'b', 'c': {'d': [{'e': None}, {'f': 'g', 'h': None}]}}
)

->

{'a': 'b', 'c': {'d': [{'f': 'g'}]}}

0

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