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to optimize some code I am using the following

a = defaultdict(lambda: len(a))
a[0]=0
a[1]=1
a[7]=2
...

My problem is now that I would need a nested defaultdict, i.e.,

b = defaultdict(lambda: defaultdict(lambda: len(b[?]))
b[0][0]=0
b[0][1]=1
b[1][0]=0
b[1][1]=1
...

thanks in adavance...

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You can't do this with defaultdict -- you'll need to write your own custom dict subclass. –  katrielalex May 18 '12 at 10:23
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2 Answers

up vote 4 down vote accepted
def enumdict():
    a = defaultdict(lambda : len(a))
    return a

b = defaultdict(enumdict)
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right! thanks a lot! it seems to work! –  Jose Antonio Martin H May 18 '12 at 10:27
    
How to convert it all to into just one lambda expression? –  Jose Antonio Martin H May 18 '12 at 10:28
    
It would also be ver constructive to read directly from you the explanation about how this is the minimal way of implementing it –  Jose Antonio Martin H May 18 '12 at 10:31
    
I don't know if this is the minimal way, and actually I would prefer to create class for this task -- this feels like a trick. –  Janne Karila May 18 '12 at 10:36
2  
@JanneKarila, you can, at least in Python 2.x (but not 3.x), this will work, but writing it out as a named function as you did is a million times better: b = defaultdict(lambda: [a for a in (defaultdict(lambda: len(a)),)][0]) –  Duncan May 18 '12 at 10:48
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If you ever want to make it a class:

class CountDict(defaultdict):
    def __init__(self):
        defaultdict.__init__(self, self.default_factory)

    def default_factory(self):
         sub = defaultdict()
         sub.default_factory = sub.__len__
         return sub

You can't normally do this in a lambda because you need to assign the child default dict to a variable to be able to get its len afterwards, which is not possible in lambdas. @Duncan came up with a workaround using list comprehension to act like assignment. Good job :) but don't use it.. :D

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