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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?

2
  • 6
    @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
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    I particularly like "spectacular blaze and I weep." – jspencer Jun 27 '18 at 19:57
190

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.


As a self-contained example pulled from Keith's comment:

def bind(instance, func, as_name=None):
    """
    Bind the function *func* to *instance*, with either provided name *as_name*
    or the existing name of *func*. The provided *func* should accept the 
    instance as the first argument, i.e. "self".
    """
    if as_name is None:
        as_name = func.__name__
    bound_method = func.__get__(instance, instance.__class__)
    setattr(instance, as_name, bound_method)
    return bound_method

class Thing:
    def __init__(self, val):
        self.val = val

something = Thing(21)

def double(self):
    return 2 * self.val

bind(something, double)
something.double()  # returns 42
8
  • 3
    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. – bgw Mar 8 '11 at 1:27
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    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') – Keith Pinson 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 '14 at 21:01
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    Wow, never knew functions were descriptors. That's a very elegant design, methods are just plain functions in the class' __dict__ and attribute access gives you unbound or bound methods through the normal descriptor protocol. I always assumed it was some sort of magic that happened during type.__new__() – JaredL Dec 9 '17 at 20:08
86

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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    +1 This is awesome, but there's no reference to it in the python docs at the URL you provided. – Kyle Wild Dec 23 '11 at 13:30
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    +1, I prefer not to have calls to magic functions in my code (i.e. __get__). I don't know for which version of python this you tested this on, but on python 3.4, the MethodType function takes two arguments. The function and the instance. So this should be changed to types.MethodType(f, C()). – Dan Milon Oct 8 '14 at 12:48
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    Here it is! It's a good way to patch instance methods: wgt.flush = types.MethodType(lambda self: None, wgt) – Winand Jul 31 '15 at 7:35
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    It is actually mentioned in the docs, but in the descriptor page from the other answer: docs.python.org/3/howto/descriptor.html#functions-and-methods – kai Aug 8 '18 at 11:27
10

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)
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    Yes, this is about the same as my original fix, which was to use functools.partial(handler, self) – Dan Passaro Jul 27 '18 at 21:41
9

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).

5
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    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 – Dan Passaro Jun 18 '09 at 21:54
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    No it doesn't, it'll only call the method if you do bound_handler(). Defining a lambda does not call the lambda. – brian-brazil Jun 18 '09 at 21:55
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    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. – Alan Plum Feb 23 '11 at 20:20
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    @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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    @LieRyan the difference is that you're still not dealing with the fundamental type. functools.partial drops some metadata, e.g. __module__. (Also I wanna state for the record I cringe real hard when I look at my first comment on this answer.) In fact in my question I mention I'm already using functools.partial but I felt like there had to be a "purer" way, since it's easy to get both unbound and bound methods. – Dan Passaro Oct 6 '15 at 0:28
1

Late to the party, but I came here with a similar question: I have a class method and an instance, and want to apply the instance to the method.

At the risk of oversimplifying the OP's question, I ended up doing something less mysterious that may be useful to others who arrive here (caveat: I'm working in Python 3 -- YMMV).

Consider this simple class:

class Foo(object):

    def __init__(self, value):
        self._value = value

    def value(self):
        return self._value

    def set_value(self, value):
        self._value = value

Here's what you can do with it:

>>> meth = Foo.set_value   # the method
>>> a = Foo(12)            # a is an instance with value 12
>>> meth(a, 33)            # apply instance and method
>>> a.value()              # voila - the method was called
33
2
  • This doesn't solve my issue - which is that I wanted meth to be invokable without having to send it the a argument (which is why I initially used functools.partial) - but this is preferable if you don't need to pass the method around and can just invoke it on the spot. Also this works the same way in Python 2 as it does in Python 3. – Dan Passaro Jul 22 '18 at 17:27
  • Apologies for not reading your original requirements more carefully. I am partial (pun intended) to the lambda-based approach given by @brian-brazil in stackoverflow.com/a/1015355/558639 -- it's about as pure as you can get. – fearless_fool Jul 22 '18 at 22:48

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