104

I want to insert a key-value pair into dict if key not in dict.keys(). Basically I could do it with:

if key not in d.keys():
    d[key] = value

But is there a better way? Or what's the pythonic solution to this problem?

146

You do not need to call d.keys(), so

if key not in d:
    d[key] = value

is enough. There is no clearer, more readable method.

You could update again with dict.get(), which would return an existing value if the key is already present:

d[key] = d.get(key, value)

but I strongly recommend against this; this is code golfing, hindering maintenance and readability.

| improve this answer | |
  • Do I need to synchronize this if I have multiple threads using the code? – ed22 Jul 14 at 8:39
  • 1
    @ed22 yes, because it consists of multiple bytecode instructions, in between which threads can switch. – Martijn Pieters Jul 14 at 8:41
80

Use dict.setdefault():

>>> d = {1: 'one'}
>>> d.setdefault(1, '1')
'one'
>>> d    # d has not changed because the key already existed
{1: 'one'}
>>> d.setdefault(2, 'two')
'two'
>>> d
{1: 'one', 2: 'two'}
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  • 5
    dict.setdefault() should really only be used when trying to access the value too. – Martijn Pieters Feb 18 '17 at 12:28
  • 13
    @MartijnPieters: why does that matter? The name setdefault() clearly describes what is happening - that it also returns a value is not that important, and a little quirky IMO. Could you provide a quick explanation, or a link to one, as to why this is not desirable? – mhawke Feb 18 '17 at 12:36
  • 6
    You'd use it in an expression that expects a value to exist, like in a grouping loop: for obj in iterable: d.setdefault(key_for_obj(obj), []).append(obj). There is nothing quirky about the value being returned, that's the whole point of the method. – Martijn Pieters Feb 18 '17 at 12:43
  • 2
    Also, it obscures what you are trying to do, which is to set a key only if it is not already present. Readability counts, just use a if key not in d: test. – Martijn Pieters Feb 18 '17 at 12:44
  • 6
    @MartijnPieters: Thanks for the explanation. Having read the docstring, setdefault() does seem to be geared to what you have said. Using a defaultdict(list) would result in more readable code than your example... so perhaps there is no use for it unless one must work with standard dictionaries. Overall, if key not in d is clearer. – mhawke Feb 18 '17 at 13:08
23

Since Python 3.9 you can use the merge operator | to merge two dictionaries. The dict on the right takes precedence:

d = { key: value } | d

Note: this creates a new dictionary with the updated values.

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  • 4
    While this is interesting, I do not think it is more readable than the accepted answer – Justin Furuness May 24 at 21:00
  • For me, it's just nice to know there's a way to merge two dicts now – Austin A Aug 10 at 18:31
6

With the following you can insert multiple values and also have default values but you're creating a new dictionary.

d = {**{ key: value }, **default_values}

I've tested it with the most voted answer and on average this is faster as it can be seen in the following example, .

Speed test comparing a for loop based method with a dict comprehension with unpack operator Speed test comparing a for loop based method with a dict comprehension with unpack operator method.

if no copy (d = default_vals.copy()) is made on the first case then the most voted answer would be faster once we reach orders of magnitude of 10**5 and greater. Memory footprint of both methods are the same.

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  • 1
    Then why suggest it in the first place – jonathan Feb 11 at 22:46
  • 1
    This solution looks perfectly valid to me. It also allows updating multiple values in one declaration. – Rotareti Mar 7 at 13:45
  • thank you so much. But it seems should be {**default_values, **{ key: value }} – osexp2003 Sep 15 at 18:02
0

According to the above answers setdefault() method worked for me.

old_attr_name = mydict.setdefault(key, attr_name)
if attr_name != old_attr_name:
    raise RuntimeError(f"Key '{key}' duplication: "
                       f"'{old_attr_name}' and '{attr_name}'.")

Though this solution is not generic. Just suited me in this certain case. The exact solution would be checking for the key first (as was already advised), but with setdefault() we avoid one extra lookup on the dictionary, that is, though small, but still a performance gain.

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