11

If I apply a decorator to a class:

from flask.ext.restful import Resource

@my_decorator()
class Foo(Resource): ...

Will it be automatically applied to any subclass methods as well? For example, will it be magically applied to a_foobar_method?

class FooBar(Foo):

    def a_foobar_method(self):
        ...
2
  • 1
    That decorator isn't even applied to Foo's methods. Commented Oct 12, 2016 at 15:17
  • Why don't you try it and see? Commented Oct 12, 2016 at 15:21

2 Answers 2

6

In short, no.

@my_decorator
class Foo(Resource): ...

is simply shorthand for

class Foo(Resource): ...
Foo = my_decorator(Foo)

If the only time you ever use Foo is to define FooBar, then together your two pieces of code are equivalent to this:

class Foo(Resource): ...
Foo_decorated = my_decorator(Foo)
class FooBar(Foo_decorated):
    def a_foobar_method(self):
        ...

Or even to this:

class Foo(Resource): ...
class FooBar(my_decorator(Foo)):
    def a_foobar_method(self):
        ...

The real answer depends on what the decorator does. In principle it stands a chance of seeing the methods of FooBar if it looks at the list of methods after the class has been instantiated as an object (e.g. because it modifies the __init__ method). But if it goes through the methods at the time it is called and applies some change to each of them, then it will have no effect on extra methods (or replaced methods) in FooBar.

0
1

Decorators do not "mark" the decorated class in any way. There is no way to tell if you wrote

@decorator
class Foo:
    pass

or

class Foo:
    pass

Foo = decorator(Foo)

simply by looking at Foo itself. Decorators are just applied at the point of use, and then are forgotten.

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