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?

Note that someone marked this as a duplicate of Python: defaultdict of defaultdict?, but this isn't the same question... that question was how to do a two-level defaultdict; this one is how to do an infinite-level recursive defaultdict.

up vote 107 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)
  • 1
    Indeed a perfect example, thanks. Could you please extend it to the case, that the data are loaded from json into defaultdict of defaultdict? – David Belohrad Mar 4 '17 at 20:52
  • 2
    One note. If you are trying to use this code while pickling lambda won't work. – Viacheslav Kondratiuk Apr 3 '17 at 11:52

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))
  • 3
    defaultdict(lambda: defaultdict(list)) The correct form ? – Yuvaraj Loganathan Feb 9 '15 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 '15 at 20:39
  • 1
    This got marked as a possible duplicate of another question... but it wasn't my original question. I knew how to create a two-level defaultdict; what I didn't know was how to make it recursive. This answer is, in fact, similar to stackoverflow.com/questions/5029934/… – Corley Brigman Jan 13 '17 at 19:52

There is a nifty trick for doing that:

tree = lambda: defaultdict(tree)

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

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().


For the def version, we can use function closure scope to protect the data structure from the flaw where existing instances stop working if the tree name is rebound. It looks like this:

from collections import defaultdict

def tree():
    def the_tree():
        return defaultdict(the_tree)
    return the_tree()
  • 4
    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
  • 3
    Correct, that's my point. – pts Oct 4 '13 at 23:25

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