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Is there a way to make a defaultdict also be the default for the defaultdict? IOW, if I do:

x = defaultdict(...stuff...)
x[0][1][0]
{}

That's what I want. I'll probably just end up using the bunch pattern, but when i realized i didn't know how to do this, it got me interested.

So, I can do:

x = defaultdict(defaultdict)

but that's only one level:

x[0]
{}
x[0][0]
KeyError: 0

There are recipes that can do this. But can it be done simply just using the normal defaultdict arguments?

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4 Answers 4

up vote 16 down vote accepted

For an arbitrary number of levels:

def rec_dd():
    return defaultdict(rec_dd)

>>> x = rec_dd()
>>> x['a']['b']['c']['d']
defaultdict(<function rec_dd at 0x7f0dcef81500>, {})
>>> print json.dumps(x)
{"a": {"b": {"c": {"d": {}}}}}

Of course you could also do this with a lambda, but I find lambdas to be less readable. In any case it would look like this:

rec_dd = lambda: defaultdict(rec_dd)
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perfect. this is obvious now that i see it. isn't it always :) thanks! –  Corley Brigman Oct 4 '13 at 19:41

There is a nifty trick for doing that:

tree = lambda: defaultdict(tree)

Then you can create your x with x = tree().

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Similar to BrenBarn's solution, but doesn't contain the name of the variable tree twice, so it works even after changes to the variable dictionary:

tree = (lambda f: f(f))(lambda a: (lambda: defaultdict(a(a))))

Then you can create each new x with x = tree().

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i'll have to think about this one (it's a little more complex). but i think your point is that if do x = tree(), but then someone comes by later and does tree=None, this one would still work, and that would wouldn't? –  Corley Brigman Oct 4 '13 at 20:58
    
Correct, that's my point. –  pts Oct 4 '13 at 23:25

The other answers here tell you how to create a defaultdict which contains "infinitely many" defaultdict, but they fail to address what I think may have been your initial need which was to simply have a two-depth defaultdict.

You may have been looking for:

defaultdict(lambda: defaultdict(dict))

The reasons why you might prefer this construct are:

  • It is more explicit than the recursive solution, and therefore likely more understandable to the reader.
  • This enables the "leaf" of the defaultdict to be something other than a dictionary, e.g.,: defaultdict(lambda: defaultdict(list)) or defaultdict(lambda: defaultdict(set))
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2  
defaultdict(lambda: defaultdict(list)) The correct form ? –  Yuvaraj Loganathan Feb 9 at 10:12
    
Ooops, yes, the lambda form is correct--because the defaultdict(something) returns a dictionary-like object, but defaultdict expects a callable! Thank you! –  Chris W. Feb 12 at 20:39

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