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Is there\How would you build an equivalent of python's very useful collections.defaultdict?

Imagined usage of such a container:

>>> a = collections.defaultlist(0)
>>> a[2]=7
>>> a[4]='x'
>>> a
[0,0,7,0,'x']

UPDATE: I've added a follow up question to add even more functionality to this construct

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Use JavaScript’s Array ;-) –  Josh Lee Jan 3 '12 at 22:30
    
@Josh Lee: Did you read the tags at all? No JavaScript at all-- this is a Python question. –  Platinum Azure Jan 3 '12 at 22:31
    
Why would you want that? –  Cat Plus Plus Jan 3 '12 at 22:32
3  
And what is the expected behaviour for a[-1] = 'x' ? –  wim Jan 3 '12 at 22:53
1  
constraints which should be refactored out (I know guys, please don't give me a rough time about it): This object travels around the system where many modules (consumers) depend on it having at least a tuple behavior, giving semantic meaning to items' index and to the list's length. Producers of this object don't know in advance its length and iterate over various sources while building it. Basically I'm trying to encapsulate a reoccuring list building logic which I could rewrite several times, but why? especially after I've discovered the incredible ease of using defaultdict... –  Jonathan Jan 4 '12 at 13:36
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4 Answers

up vote 7 down vote accepted

I think this would be a bit confusing to use; however, here's my first thought on how to do it:

class defaultlist(list):
    def __init__(self, fx):
        self._fx = fx

    def __setitem__(self, index, value):
        while len(self) <= index:
            self.append(self._fx())
        list.__setitem__(self, index, value)

This takes a callable (I think that's how defaultdict works) for the default value.

When I run:

a = defaultlist(int)
print a
a[2] = 7
a[4] = 'x'
print a

I get back:

[]
[0, 0, 7, 0, 'x']
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The question seems to want the default to be a value, rather than a callable (so in that respect, different than defaultdict). It would be trivial to adapt yours to fit the question (append self._fx rather than self._fx()). –  John Y Jan 3 '12 at 23:15
    
Now try a[4]='x' a[2]=7 and see the bug in this code. Easy to fix though. –  Mark Ransom Jan 3 '12 at 23:32
    
@MarkRansom, good catch & fix. –  Finn Jan 4 '12 at 0:52
    
It wasn't my fix - thank Ethan. –  Mark Ransom Jan 4 '12 at 1:20
    
@MarkRansom: finding the bug is usually the harder part. –  Ethan Furman Jan 4 '12 at 2:40
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If all you need is indexed access and not slicing / append, etc, then just use a defaultdict.

(if you really want perl / js semantics on this, you could subclass list __get__ and __set__)

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My proposal:

def xtend(f):
    def wrap(self, index, *args):
        if len(self) <= index:
            self.extend([self._gen()] * (index - len(self) + 1))
        return f(self, index, *args)
    return wrap

class defaultlist(list):
    def __init__(self, gen, lst = []):
        list.__init__(self, lst)
        self._gen = gen

    __setitem__ = xtend(list.__setitem__)
    __getitem__ = xtend(list.__getitem__)

Results:

>>> a = defaultlist(int, [1, 2, 3])
>>> a[10] = 'x'
>>> a[2] = 7
>>> print a
[1, 2, 7, 0, 0, 0, 0, 0, 0, 0, 'x']
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Perhaps the easiest way is using a dict:

>>> a = {}
>>> a[2] = 7
>>> a[4] = 'x'
>>> [a[i] if i in a else 0 for i in xrange(max(a) + 1)]
[0, 0, 7, 0, 'x']
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