Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

Is there a way to have a defaultdict(defaultdict(int)) in order to make the following code work?

for x in stuff:
    d[x.a][x.b] += x.c_int

d needs to be built ad-hoc, depending on x.a and x.b elements.

I could use:

for x in stuff:
    d[x.a,x.b] += x.c_int

but then I wouldn't be able to use:

d.keys()
d[x.a].keys()
share|improve this question
    
See similar question What is the best way to implement nested dictionaries in Python?. There's also some possibly useful information in Wikipedia's article on Autovivification. –  martineau Jan 20 at 20:08

4 Answers 4

up vote 143 down vote accepted

Yes like this:

defaultdict(lambda : defaultdict(int))
share|improve this answer
1  
it works great! could you explain the rational behind this syntax? –  Jonathan Oct 12 '11 at 8:25
16  
@Jonathan: Yes sure, the argument of a defaultdict (in this case is lambda : defaultdict(int)) will be called when you try to access a key that don't exist and the return value of it will be set as the new value of this key which mean in our case the value of d[Key_dont_exist] will be defaultdict(int), and if you try to access a key from this last defaultdict i.e. d[Key_dont_exist][Key_dont_exist] it will return 0 which is the return value of the argument of the last defaultdict i.e. int(), Hope this was helpful. –  mouad Oct 12 '11 at 14:25
6  
The argument to defaultdict should be a function. defaultdict(int) is a dictionary, while lambda: defaultdict(int) is function that returns a dictionary. –  has2k1 Sep 22 '12 at 4:45
10  
@has2k1 That is incorrect. The argument to defaultdict needs to be a callable. A lambda is a callable. –  Niels Bom Jan 22 '13 at 15:11

The parameter to the defaultdict constructor is the function which will be called for building new elements. So let's use a lambda !

>>> from collections import defaultdict
>>> d = defaultdict(lambda : defaultdict(int))
>>> print d[0]
defaultdict(<type 'int'>, {})
>>> print d[0]["x"]
0

Since Python 2.7, there's an even better solution using Counter:

>>> from collections import Counter
>>> c = Counter()
>>> c["goodbye"]+=1
>>> c["and thank you"]=42
>>> c["for the fish"]-=5
>>> c
Counter({'and thank you': 42, 'goodbye': 1, 'for the fish': -5})

Some bonus features

>>> c.most_common()[:2]
[('and thank you', 42), ('goodbye', 1)]

For more information see PyMOTW - Collections - Container data types and Python Documentation - collections

share|improve this answer
    
Just to complete the circle here, you would want to use d = defaultdict(lambda : Counter()) rather than d = defaultdict(lambda : defaultdict(int)) to specifically address the problem as originally posed. –  gumption Jun 20 at 18:50

I find it slightly more elegant to use partial:

import functools
dd_int = functools.partial(defaultdict, int)
defaultdict(dd_int)

Of course, this is the same as a lambda.

share|improve this answer

Others have answered correctly your question of how to get the following to work:

for x in stuff:
    d[x.a][x.b] += x.c_int

An alternative would be to use tuples for keys:

d = defaultdict(int)
for x in stuff:
    d[x.a,x.b] += x.c_int
    # ^^^^^^^ tuple key

The nice thing about this approach is that it is simple and can be easily expanded. If you need a mapping three levels deep, just use a three item tuple for the key.

share|improve this answer
2  
This solution means it isn't simple to get all of d[x.a], as you need to introspect every key to see if it has x.a as the first element of the tuple. –  Matthew Schinckel Feb 18 '11 at 3:02
3  
If you wanted nesting 3 levels deep, then just define it as 3 levels: d = defaultdict(lambda: defaultdict( lambda: defaultdict(int))) –  Matthew Schinckel Feb 18 '11 at 3:03

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.