python dict: get vs setdefault
The following two expressions seem equivalent to me. Which one is preferable?
data = [('a', 1), ('b', 1), ('b', 2)]
d1 = {}
d2 = {}
for key, val in data:
# variant 1)
d1[key] = d1.get(key, []) + [val]
# variant 2)
d2.setdefault(key, []).append(val)
The results are the same but which version is better or rather more pythonic?
Personally I find version 2 harder to understand, as to me setdefault is very tricky to grasp. If I understand correctly, it looks for the value of "key" in the dictionary, if not available, enters "[]" into the dict, returns a reference to either the value or "[]" and appends "val" to that reference. While certainly smooth it is not intuitive in the least (at least to me).
To my mind, version 1 is easier to understand (if available, get the value for "key", if not, get "[]", then join with a list made up from [val] and place the result in "key"). But while more intuitive to understand, I fear this version is less performant, with all this list creating. Another disadvantage is that "d1" occurs twice in the expression which is rather error-prone. Probably there is a better implementation using get, but presently it eludes me.
My guess is that version 2, although more difficult to grasp for the inexperienced, is faster and therefore preferable. Opinions?
Solution 1:
Your two examples do the same thing, but that doesn't mean get
and setdefault
do.
The difference between the two is basically manually setting d[key]
to point to the list every time, versus setdefault
automatically setting d[key]
to the list only when it's unset.
Making the two methods as similar as possible, I ran
from timeit import timeit
print timeit("c = d.get(0, []); c.extend([1]); d[0] = c", "d = {1: []}", number = 1000000)
print timeit("c = d.get(1, []); c.extend([1]); d[0] = c", "d = {1: []}", number = 1000000)
print timeit("d.setdefault(0, []).extend([1])", "d = {1: []}", number = 1000000)
print timeit("d.setdefault(1, []).extend([1])", "d = {1: []}", number = 1000000)
and got
0.794723378711
0.811882272256
0.724429205999
0.722129751973
So setdefault
is around 10% faster than get
for this purpose.
The get
method allows you to do less than you can with setdefault
. You can use it to avoid getting a KeyError
when the key doesn't exist (if that's something that's going to happen frequently) even if you don't want to set the key.
See Use cases for the 'setdefault' dict method and dict.get() method returns a pointer for some more info about the two methods.
The thread about setdefault
concludes that most of the time, you want to use a defaultdict
. The thread about get
concludes that it is slow, and often you're better off (speed wise) doing a double lookup, using a defaultdict, or handling the error (depending on the size of the dictionary and your use case).
Solution 2:
The accepted answer from agf isn't comparing like with like. After:
print timeit("d[0] = d.get(0, []) + [1]", "d = {1: []}", number = 10000)
d[0]
contains a list with 10,000 items whereas after:
print timeit("d.setdefault(0, []) + [1]", "d = {1: []}", number = 10000)
d[0]
is simply []
. i.e. the d.setdefault
version never modifies the list stored in d
. The code should actually be:
print timeit("d.setdefault(0, []).append(1)", "d = {1: []}", number = 10000)
and in fact is faster than the faulty setdefault
example.
The difference here really is because of when you append using concatenation the whole list is copied every time (and once you have 10,000 elements that is beginning to become measurable. Using append
the list updates are amortised O(1), i.e. effectively constant time.
Finally, there are two other options not considered in the original question: defaultdict
or simply testing the dictionary to see whether it already contains the key.
So, assuming d3, d4 = defaultdict(list), {}
# variant 1 (0.39)
d1[key] = d1.get(key, []) + [val]
# variant 2 (0.003)
d2.setdefault(key, []).append(val)
# variant 3 (0.0017)
d3[key].append(val)
# variant 4 (0.002)
if key in d4:
d4[key].append(val)
else:
d4[key] = [val]
variant 1 is by far the slowest because it copies the list every time, variant 2 is the second slowest, variant 3 is the fastest but won't work if you need Python older than 2.5, and variant 4 is just slightly slower than variant 3.
I would say use variant 3 if you can, with variant 4 as an option for those occasional places where defaultdict
isn't an exact fit. Avoid both of your original variants.
Solution 3:
For those who are still struggling in understanding these two term, let me tell you basic difference between get() and setdefault() method -
Scenario-1
root = {}
root.setdefault('A', [])
print(root)
Scenario-2
root = {}
root.get('A', [])
print(root)
In Scenario-1 output will be {'A': []}
while in Scenario-2 {}
So setdefault()
sets absent keys in the dict while get()
only provides you default value but it does not modify the dictionary.
Now let come where this will be useful- Suppose you are searching an element in a dict whose value is a list and you want to modify that list if found otherwise create a new key with that list.
using setdefault()
def fn1(dic, key, lst):
dic.setdefault(key, []).extend(lst)
using get()
def fn2(dic, key, lst):
dic[key] = dic.get(key, []) + (lst) #Explicit assigning happening here
Now lets examine timings -
dic = {}
%%timeit -n 10000 -r 4
fn1(dic, 'A', [1,2,3])
Took 288 ns
dic = {}
%%timeit -n 10000 -r 4
fn2(dic, 'A', [1,2,3])
Took 128 s
So there is a very large timing difference between these two approaches.
Solution 4:
You might want to look at defaultdict
in the collections
module. The following is equivalent to your examples.
from collections import defaultdict
data = [('a', 1), ('b', 1), ('b', 2)]
d = defaultdict(list)
for k, v in data:
d[k].append(v)
There's more here.