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In Python, is there a way to bind an unbound method without calling it?

I am writing a wxPython program, and for a certain class I decided it'd be nice to group the data of all of my buttons together as a class-level list of tuples, like so:

class MyWidget(wx.Window):
    buttons = [("OK", OnOK),
               ("Cancel", OnCancel)]

    # ...

    def Setup(self):
        for text, handler in MyWidget.buttons:

            # This following line is the problem line.
            b = wx.Button(parent, label=text).Bind(wx.EVT_BUTTON, handler)

The problem is, since all of the values of handler are unbound methods, my program explodes in a spectacular blaze and I weep.

I was looking around online for a solution to what seems like should be a relatively straightforward, solvable problem. Unfortunately I couldn't find anything. Right now, I'm using functools.partial to work around this, but does anyone know if there's a clean-feeling, healthy, Pythonic way to bind an unbound method to an instance and continue passing it around without calling it?

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Define "unbound method" –  Christopher Jun 18 '09 at 21:38
2  
@Christopher - A method that isn't bound to the scope of the object it was sucked from, so you have to pass self explicitly. –  Aiden Bell Jun 18 '09 at 21:42
21  
«my program explodes in a spectacular blaze and I weep» — awesome. –  ulidtko Jan 21 '11 at 2:33

4 Answers 4

up vote 87 down vote accepted

All functions are also descriptors, so you can bind them by calling their __get__ method:

bound_handler = handler.__get__(self, MyWidget)

Here's R. Hettinger's excellent guide to descriptors.

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2  
That's pretty cool. I like how you can omit the type and get back a "bound method ?.f" instead. –  Kiv Jun 18 '09 at 22:02
    
I like this solution over the MethodType one, because it works the same in py3k, while MethodType's arguments have been changed up a bit. –  PiPeep Mar 8 '11 at 1:27
4  
And thus, a function to bind functions to class instances: bind = lambda instance, func, asname: setattr(instance, asname, func.__get__(instance, instance.__class__)) Example: class A: pass; a = A(); bind(a, bind, 'bind') –  Kazark Aug 13 '11 at 16:53
2  
Huh, you learn something new every day. @Kazark In Python 3, at least, you can also skip supplying the type, as __get__ will take that implicitly from the object parameter. I'm not even sure if supplying it does anything, as it makes no difference what type I supply as the second parameter regardless of what the first parameter is an instance of. So bind = lambda instance, func, asname=None: setattr(instance, asname or func.__name__, func.__get__(instance)) should do the trick as well. (Though I'd prefer having bind usable as a decorator, personally, but that's a different matter.) –  JAB Jan 28 at 21:01

This can be done cleanly with types.MethodType. Example:

import types

def f(self): print self

class C(object): pass

meth = types.MethodType(f, C(), C) # Bind f to an instance of C
print meth # prints <bound method C.f of <__main__.C object at 0x01255E90>>
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4  
+1 This is awesome, but there's no reference to it in the python docs at the URL you provided. –  dorkitude Dec 23 '11 at 13:30

Creating a closure with self in it will not technically bind the function, but it is an alternative way of solving the same (or very similar) underlying problem. Here's a trivial example:

self.method = (lambda self: lambda args: self.do(args))(self)
share|improve this answer

This will bind self to handler:

bound_handler = lambda *args, **kwargs: handler(self, *args, **kwargs)

This works by passing self as the first argument to the function. object.function() is just syntactic sugar for function(object).

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1  
Yes, but this calls the method. The problem is I need to be able to pass the bound method as a callable object. I have the unbound method and the instance I'd like it to be bound to, but can't figure out how to put it all together without immediately calling it –  leo-the-manic Jun 18 '09 at 21:54
5  
No it doesn't, it'll only call the method if you do bound_handler(). Defining a lambda does not call the lambda. –  user83591 Jun 18 '09 at 21:55
    
You could actually use functools.partial instead of defining a lambda. It doesn't solve the exact problem, though. You're still dealing with a function instead of an instancemethod. –  pluma Feb 23 '11 at 20:20
1  
@Alan: what's the difference between a function whose first argument you partial-ed and instancemethod; duck typing can't see the difference. –  Lie Ryan Mar 6 '11 at 14:15

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