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.

Does anyone know if there's a standard class for an infinitely nestable dictionary in Python?

I'm finding myself repeating this pattern:

d = defaultdict(lambda: defaultdict(lambda: defaultdict(int)))
d['abc']['def']['xyz'] += 1

If I want to add "another layer" (e.g. d['abc']['def']['xyz']['wrt']), I have to define another nesting of defaultdicts.

To generalize this pattern, I've written a simple class that overrides __getitem__ to automatically create the next nested dictionary.

e.g.

d = InfiniteDict(('count',0),('total',0))
d['abc']['def']['xyz'].count += 0.24
d['abc']['def']['xyz'].total += 1
d['abc']['def']['xyz']['wrt'].count += 0.143
d['abc']['def']['xyz']['wrt'].total += 1

However, does anyone know of a pre-existing implementation of this idea? I've tried Googling, but I'm not sure what this would be called.

share|improve this question

6 Answers 6

up vote 8 down vote accepted

You can derive from defaultdict to get the behavior you want:

class InfiniteDict(defaultdict):
   def __init__(self):
      defaultdict.__init__(self, self.__class__)

class Counters(InfiniteDict):
   def __init__(self):
      InfiniteDict.__init__(self)                                               
      self.count = 0
      self.total = 0

   def show(self):
      print "%i out of %i" % (self.count, self.total)

Usage of this class would look like this:

>>> d = Counters()
>>> d[1][2][3].total = 5
>>> d[1][2][3].show()
0 out of 5
>>> d[5].show()
0 out of 0
share|improve this answer
1  
Thanks. This comes the closest to what I was looking for, and helped me find the exact solution. –  Cerin Nov 14 '10 at 16:32

This lends itself naturally to a recursive definition.

>>> import collections
>>> def nested_dd():
...     return collections.defaultdict(nested_dd)
...
>>> foo = nested_dd()
>>> foo
defaultdict(<function nested_dd at 0x023F0E30>, {})
>>> foo[1][2]=3
>>> foo[1]
defaultdict(<function nested_dd at 0x023F0E30>, {2: 3})
>>> foo[1][2]
3
share|improve this answer
1  
Very tidy, but has the same flaw as my posted answer, no support for 'count' and 'total' zero values at the leaf nodes. –  Paul McGuire Nov 14 '10 at 16:15
1  
@Paul -- indeed; you can't have your cake and eat it too! Having special support for count and total breaks symmetry, so it would have to be hardwired into the class somewhere. –  katrielalex Nov 14 '10 at 16:17
1  
@aaronasterling: There is not problem with any recursion limits since the function doesn't call itself recursively. –  sth Nov 14 '10 at 16:17
    
right, I missed that part and kept looking :) Sorry katriealex. –  aaronasterling Nov 14 '10 at 16:19
    
pardon me, but i don't think this working because if you see the question of the OP he is doing a lot calculation using the default value of the defaultdict and not just assignment !!! –  mouad Nov 14 '10 at 16:33

The ideal solution, inspired by sth's answer:

from collections import defaultdict

class InfiniteDict(defaultdict):
   def __init__(self, **kargs):
      defaultdict.__init__(self, lambda: self.__class__(**kargs))
      self.__dict__.update(kargs)

d = InfiniteDict(count=0, total=0)
d['abc']['def'].count += 0.25
d['abc']['def'].total += 1
print d['abc']['def'].count
print d['abc']['def'].total
d['abc']['def']['xyz'].count += 0.789
d['abc']['def']['xyz'].total += 1
print d['abc']['def']['xyz'].count
print d['abc']['def']['xyz'].total
share|improve this answer

It's simply called "a tree". There is a module that seems to do what you want.

share|improve this answer
3  
I'm guessing that 'someone' would be the listed author, Roc Zhou. –  Paul McGuire Nov 14 '10 at 16:13

This is close:

class recursivedefaultdict(defaultdict):
    def __init__(self, attrFactory=int):
        self.default_factory = lambda : type(self)(attrFactory)
        self._attrFactory = attrFactory
    def __getattr__(self, attr):
        newval = self._attrFactory()
        setattr(self, attr, newval)
        return newval

d = recursivedefaultdict(float)
d['abc']['def']['xyz'].count += 0.24  
d['abc']['def']['xyz'].total += 1  

data = [
    ('A','B','Z',1),
    ('A','C','Y',2),
    ('A','C','X',3),
    ('B','A','W',4),
    ('B','B','V',5),
    ('B','B','U',6),
    ('B','D','T',7),
    ]

table = recursivedefaultdict(int)
for k1,k2,k3,v in data:
    table[k1][k2][k3] = v

It's not quite what you want, since the most deeply nested level does not have your default 0 values for 'count' or 'total'.

Edited: Ah, this works now - just needed to add a __getattr__ method, and this does what you want.

Edit 2: Now you can define other factory methods for the attributes, besides ints. But they all have to be the same type, can't have count be float and total be int.

share|improve this answer
    
Minor suggestion: you could use functools.partial(type(self), attrFactory). –  katrielalex Nov 14 '10 at 16:32

I think is a nearly perfect solution:

>>> from collections import defaultdict
>>> infinite_defaultdict = lambda: defaultdict(infinite_defaultdict)
>>> d = infinite_defaultdict() 
>>> d['x']['y']['z'] = 10

by Raymond Hettinger on Twitter (https://twitter.com/raymondh/status/343823801278140417)

share|improve this answer

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.