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I want to do something like this:

f[frozenset((1,3,4))] = 5
f[frozenset((1,))] = 3

but it's just painful to type these all the time, is there anyway to have alias for this? I know in C++ it's possible to have a helper function which return a reference so you can just type:

F(1,3,4) = 5
F(1) = 3

with F as a helper function. Thanks very much!

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up vote 13 down vote accepted

I think that this can really only be achieved via a subclass:

class FrozenSetDict(dict):
    def __setitem__(self,idx,value):
        try:
            dict.__setitem__(self,frozenset(idx),value)
        except TypeError:
            dict.__setitem__(self,frozenset((idx,)),value)

d = FrozenSetDict()
d[1,2,3] = 4
d[1] = 5
print d

yields:

{frozenset([1, 2, 3]): 4, frozenset([1]): 5}

This introduces an asymmetry between __getitem__ and __setitem__ which could easily be fixed by re-defining __getitem__ in the same way.

This might seem a little messy -- Indeed it is. Why require a subclass? That just makes it harder to put non-frozenset objects into your dictionary as keys. You could easily use this recipe though to create a proxy object which will do this with your dict:

#I don't like the name of this class -- I'm open to suggestions :)
class FrozenSetProxy(object):
    def __init__(self,obj):
        self.obj = obj

    def __setitem__(self,idx,value):
        try:
            self.obj[frozenset(idx)] = value
        except TypeError:
            self.obj[frozenset((idx,))] = value

    def __getitem__(self,idx):
        try:
            return self.obj[frozenset(idx)]
        except TypeError:
            return self.obj[frozenset((idx,))]

d = dict()
F = FrozenSetProxy(d)
F[1,2,3] = 4
F[1] = 5
print d
print F[1]
share|improve this answer
    
This is a tad overkill, isn't it? – delnan Jan 21 '13 at 18:50
    
@mgilson: Excellent, though it would be good to show an example of its usage. – David Robinson Jan 21 '13 at 18:51
    
@delnan -- Sort of. I don't see any other way to get the syntax that OP is requesting though. – mgilson Jan 21 '13 at 18:54
    
@mgilson This doesn't yield the syntax OP is asking for either (parens are exhanged for brackets). And I doubt the exact syntax is that important. – delnan Jan 21 '13 at 18:55
1  
@mgilson __call__ doesn't help, it's simply impossible. Even if you override __call__, OP's code doesn't even run. Call followed by an assignment operator is a syntax error, period. SyntaxError: can't assign to function call – delnan Jan 21 '13 at 18:58

There's nothing like a C++ reference in Python, and the syntax you use is illegal to boot (in the words of the parser: can't assign to function call). You could emulate it with an object or subclass dict to customize its __getitem__. But there's a simpler and less intrusive way: Pass the value to the helper too, and let it handle the assignment:

def blah(f):
    def F(*args, value):
        f[frozenset(args)] = value
    F(1, 3, 4, value=5)
    F(1, value=3)

Note that this uses a Python 3 feature, keyword-only parameters. If you need it to work with Python 2, you can emulate the call syntax by accepting **kwdargs:

def F(*args, **kwds):
    # optional: check that no other keyword arguments were passed
    f[frozenset(args)] = kwds['value']
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