34

Why is the default in dict.get(key[, default]) evaluated even if the key is in the dictionary?

>>> key = 'foo'
>>> a={}
>>> b={key:'bar'}
>>> b.get(key, a[key])
Traceback (most recent call last):
  File "<pyshell#5>", line 1, in <module>
    b.get(key, a[key])
KeyError: 'foo'

7 Answers 7

39

As in any function call, the arguments are evaluated before the call is executed.
In this case dict.get() is no exception...

2
  • 6
    +1 -- zen of python: "Special cases aren't special enough to break the rules."
    – Sake
    Mar 18, 2012 at 20:01
  • 2
    I see the logic but it's a shame that dict.get can't be used for caching results of costly computations. E.g.: return stored_results.get(x, calculate_result(x)).
    – Bill
    Jan 2, 2021 at 3:21
29

use this instead

x = b.get(key) or a.get(key)

or and and are short circuit operators, so if b has the key it won't look at a. But problems will arise if you have false values in b. If that is the case you can do:

x = b[key] if key in b else a.get(key)
3
  • Thank you. I lost a couple hours debugging this. Obviously it would short circuit and why would I want to use .get twice if I know I've guaranteed one or the other key? Bad choice, Python.
    – Starman
    Jun 22, 2018 at 21:17
  • This looks the best (and also pythonic) answer. I prefer the second one with if else since it works for cases where b[key] = 0, as referred as "falsy" value case.
    – Kota Mori
    Oct 16, 2018 at 15:37
  • @Starman I'd argue, because it's actually pretty clever, since in every major language OR is evaluated lazily. (what is the point to run the second argument evaluation, if the first argument is already True?)
    – winwin
    Apr 20, 2023 at 22:28
10

You can rewrite the example you gave as

b.get(key, a.get(key))

to avoid the exception. This will return None if the key is in neither dictionary. More generally, if you want to avoid the evaluation of the second argument, you could use

try:
    x = b[key]
except KeyError:
    x = a[key]   # or whatever the default value is supposed to be
0
2

Because you are evaluating it, then passing it as an argument to get. This happens whether or not get ends up using the argument.

1

To avoid the lookup you could:

value = b.get(key)
if value is None:
   value = a[key]

Or if None is allowed then:

not_set = object()
# ...
value = b.get(key, not_set)
if value is not_set:
   value = a[key]
2
  • what if in # ..., the user does b[not_set] = 1. {trollface}
    – Doboy
    Mar 19, 2012 at 7:24
  • @Doboy: nothing happens. not_set is a special value, not key.
    – jfs
    Mar 19, 2012 at 8:56
0
  1. a[key] is a['foo'] and you don't have that key in a.
  2. this is evaluated before calling b.get hence the error
  3. "even if the key is in the dictionary" - that's anot true, b is empty (but as the 2. points shows, this is not relevant)
0

Because the a[key] bit evaluates before b.get (evaluates eagerly).

To get around this (evaluate lazily), you could write a simple helper function:

def lazy_get(d, key, default):
    if key in d:
        return d[key]
    else:
        v = default()
        return v

And use it like so:

lazy_get(b, key, lambda: a[key])

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