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I want to have a default dict that includes a parameter when it constructs a new object. Is this possible, is there a better way to do it?

defaultdict(myobj, param1)

then myobj:

class myobj(object):

    def __init__(self, param1):
        self.param1 = param1
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1 Answer 1

up vote 2 down vote accepted

defaultdict takes any callable, so you can create a new function that doesn't take a parameter and returns an object instantiated with the parameter you want.

d = defaultdict(lambda: myobj(param1))

Another option is to use functools.partial, which creates a function with one (or more) of the parameters predefined:

import functools
d = defaultdict(functools.partial(myobj, param1))
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3  
Might just have to be somewhat careful on the scope of param1 there... –  Jon Clements Aug 5 '13 at 20:13
    
+1 to JonClements's point. The easiest way to be careful about the scope is to explicitly create the function (/closure) with a def, then pass that function to defaultdict. Then you've got something you can debug and inspect properly. –  abarnert Aug 5 '13 at 20:16
    
I didn't know lambdas don't have closures. Does anyone know whether functools.partial would work better, then? –  Chris Barker Aug 5 '13 at 20:17
    
lambdas and defs have the exact same scope rules. functools.partial is a good way to avoid the headache if you're doing this in a loop, though. –  user2357112 Aug 5 '13 at 20:20
    
Lambdas do have closures (in fact, there's no such thing as "lambdas"; what lambda creates is just a function, exactly like what def creates); it's just that if you create an unnamed object in the middle of an expression, it's much harder to debug or inspect. –  abarnert Aug 5 '13 at 20:36

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