I have an empty dictionary. Name: dict_x It is to have keys of which values are lists.

From a separate iteration, I obtain a key (ex: key_123), and an item (a tuple) to place in the list of dict_x's value key_123.

If this key already exists, I want to append this item. If this key does not exist, I want to create it with an empty list and then append to it or just create it with a tuple in it.

In future when again this key comes up, since it exists, I want the value to be appended again.

My code consists of this:

Get key and value.

See if NOT key exists in dict_x.

and if not create it: dict_x[key] == []

Afterwards: dict_x[key].append(value)

Is this the way to do it? Shall I try to use try/except blocks?

up vote 155 down vote accepted

Use dict.setdefault():

dic.setdefault(key,[]).append(value)

help(dict.setdefault):

    setdefault(...)
        D.setdefault(k[,d]) -> D.get(k,d), also set D[k]=d if k not in D
  • 3
    I used to do this by dict_x[key] = [some_value] if not dict_x.has_key(key) else dict_x[key] + [some_value] but this answer suggests a far better way. In fact it gets set() as an argument and allows you to use add() method... – fatih_dur Feb 9 '16 at 2:27

Here are the various ways to do this so you can compare how it looks and choose what you like. I've ordered them in a way that I think is most "pythonic", and commented the pros and cons that might not be obvious at first glance:

Using collections.defaultdict:

import collections
dict_x = collections.defaultdict(list)

...

dict_x[key].append(value)

Pros: Probably best performance. Cons: Not available in Python 2.4.x.

Using dict().setdefault():

dict_x = {}

...

dict_x.setdefault(key, []).append(value)

Cons: Inefficient creation of unused list()s.

Using try ... except:

dict_x = {}

...

try:
    values = dict_x[key]
except KeyError:
    values = dict_x[key] = []
values.append(value)

Or:

try:
    dict_x[key].append(value)
except KeyError:
    dict_x[key] = [value]
  • Hello, why do you think .setdefault creates unnecessary dictionaries? – Phil Oct 16 '12 at 21:07
  • 1
    I don't think .setdefault() creates unnecessary dictionaries. I think I'm creating unnecessary lists (i.e. []) in the second argument of .setdefault() that's never used if key already exists. I could use dict.setdefault() (for the benefit of efficient key hashing), and use a variable to reuse unused lists but that adds a few more lines of code. – antak Oct 17 '12 at 2:59
  • IIRC, in Python an empty list in an equality is considered a constant at the bytecode level, but this needs some confirmation by a bytecode guru (or just use the disas module). – gaborous Jul 16 '15 at 0:36

You can use a defaultdict for this.

from collections import defaultdict
d = defaultdict(list)
d['key'].append('mykey')

This is slightly more efficient than setdefault since you don't end up creating new lists that you don't end up using. Every call to setdefault is going to create a new list, even if the item already exists in the dictionary.

You can use defaultdict in collections.

An example from doc:

s = [('yellow', 1), ('blue', 2), ('yellow', 3), ('blue', 4), ('red', 1)]
d = defaultdict(list)
for k, v in s:
    d[k].append(v)

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