问题
I want to implement the Observable pattern in Python for a couple of workers, and came across this helpful snippet:
class Event(object):
pass
class Observable(object):
def __init__(self):
self.callbacks = []
def subscribe(self, callback):
self.callbacks.append(callback)
def fire(self, **attrs):
e = Event()
e.source = self
for k, v in attrs.iteritems():
setattr(e, k, v)
for fn in self.callbacks:
fn(e)
Source: Here
As i understand it, in order to subscribe, I would need to pass a callback to the function that is going to be called on fire. If the calling function was a class method, presumably I could have used self, but in the absence of this - how could I directly get a callback that can be useful for the self.callbacks.append(callback) bit?
回答1:
Any defined function can be passed by simply using its name, without adding the () on the end that you would use to invoke it:
def my_callback_func(event):
# do stuff
o = Observable()
o.subscribe(my_callback_func)
Other example usages:
class CallbackHandler(object):
@staticmethod
def static_handler(event):
# do stuff
def instance_handler(self, event):
# do stuff
o = Observable()
# static methods are referenced as <class>.<method>
o.subscribe(CallbackHandler.static_handler)
c = CallbackHandler()
# instance methods are <class instance>.<method>
o.subscribe(c.instance_handler)
# You can even pass lambda functions
o.subscribe(lambda event: <<something involving event>>)
来源:https://stackoverflow.com/questions/4689984/implementing-a-callback-in-python-passing-a-callable-reference-to-the-current