Python Metaclass : Understanding the 'with_metaclass()'
Question:
I want to ask what the with_metaclass() call means in the definition of a class.
E.g.:
class Foo(with_metaclass(Cls1, Cls2)):
- Is it a special case where a class inherits from a metaclass?
- Is the new class a metaclass, too?
Answers:
with_metaclass() is a utility class factory function provided by the six library to make it easier to develop code for both Python 2 and 3.
It uses a little sleight of hand (see below) with a temporary metaclass, to attach a metaclass to a regular class in a way that’s cross-compatible with both Python 2 and Python 3.
Quoting from the documentation:
Create a new class with base class base and metaclass metaclass. This is designed to be used in class declarations like this:
from six import with_metaclass
class Meta(type):
pass
class Base(object):
pass
class MyClass(with_metaclass(Meta, Base)):
pass
This is needed because the syntax to attach a metaclass changed between Python 2 and 3:
Python 2:
class MyClass(object):
__metaclass__ = Meta
Python 3:
class MyClass(metaclass=Meta):
pass
The with_metaclass() function makes use of the fact that metaclasses are a) inherited by subclasses, and b) a metaclass can be used to generate new classes and c) when you subclass from a base class with a metaclass, creating the actual subclass object is delegated to the metaclass. It effectively creates a new, temporary base class with a temporary metaclass metaclass that, when used to create the subclass swaps out the temporary base class and metaclass combo with the metaclass of your choice:
def with_metaclass(meta, *bases):
"""Create a base class with a metaclass."""
# This requires a bit of explanation: the basic idea is to make a dummy
# metaclass for one level of class instantiation that replaces itself with
# the actual metaclass.
class metaclass(type):
def __new__(cls, name, this_bases, d):
return meta(name, bases, d)
@classmethod
def __prepare__(cls, name, this_bases):
return meta.__prepare__(name, bases)
return type.__new__(metaclass, 'temporary_class', (), {})
Breaking the above down:
type.__new__(metaclass, 'temporary_class', (), {}) uses the metaclass metaclass to create a new class object named temporary_class that is entirely empty otherwise. type.__new__(metaclass, ...) is used instead of metaclass(...) to avoid using the special metaclass.__new__() implementation that is needed for the slight of hand in a next step to work.- In Python 3 only, when
temporary_class is used as a base class, Python first calls metaclass.__prepare__() (passing in the derived class name, (temporary_class,) as the this_bases argument. The intended metaclass meta is then used to call meta.__prepare__(), ignoring this_bases and passing in the bases argument.
- next, after using the return value of
metaclass.__prepare__() as the base namespace for the class attributes (or just using a plain dictionary when on Python 2), Python calls metaclass.__new__() to create the actual class. This is again passed (temporary_class,) as the this_bases tuple, but the code above ignores this and uses bases instead, calling on meta(name, bases, d) to create the new derived class.
As a result, using with_metaclass() gives you a new class object with no additional base classes:
>>> class FooMeta(type): pass
...
>>> with_metaclass(FooMeta) # returns a temporary_class object
<class '__main__.temporary_class'>
>>> type(with_metaclass(FooMeta)) # which has a custom metaclass
<class '__main__.metaclass'>
>>> class Foo(with_metaclass(FooMeta)): pass
...
>>> Foo.__mro__ # no extra base classes
(<class '__main__.Foo'>, <type 'object'>)
>>> type(Foo) # correct metaclass
<class '__main__.FooMeta'>
UPDATE: the six.with_metaclass() function has since been patched with a decorator variant, i.e. @six.add_metaclass(). This update fixes some mro issues related to the base objects. The new decorator would be applied as follows:
import six
@six.add_metaclass(Meta)
class MyClass(Base):
pass
Here are the patch notes and here is a similar, detailed example and explanation for using a decorator alternative.
I want to ask what the with_metaclass() call means in the definition of a class.
E.g.:
class Foo(with_metaclass(Cls1, Cls2)):
- Is it a special case where a class inherits from a metaclass?
- Is the new class a metaclass, too?
with_metaclass() is a utility class factory function provided by the six library to make it easier to develop code for both Python 2 and 3.
It uses a little sleight of hand (see below) with a temporary metaclass, to attach a metaclass to a regular class in a way that’s cross-compatible with both Python 2 and Python 3.
Quoting from the documentation:
Create a new class with base class base and metaclass metaclass. This is designed to be used in class declarations like this:
from six import with_metaclass class Meta(type): pass class Base(object): pass class MyClass(with_metaclass(Meta, Base)): pass
This is needed because the syntax to attach a metaclass changed between Python 2 and 3:
Python 2:
class MyClass(object):
__metaclass__ = Meta
Python 3:
class MyClass(metaclass=Meta):
pass
The with_metaclass() function makes use of the fact that metaclasses are a) inherited by subclasses, and b) a metaclass can be used to generate new classes and c) when you subclass from a base class with a metaclass, creating the actual subclass object is delegated to the metaclass. It effectively creates a new, temporary base class with a temporary metaclass metaclass that, when used to create the subclass swaps out the temporary base class and metaclass combo with the metaclass of your choice:
def with_metaclass(meta, *bases):
"""Create a base class with a metaclass."""
# This requires a bit of explanation: the basic idea is to make a dummy
# metaclass for one level of class instantiation that replaces itself with
# the actual metaclass.
class metaclass(type):
def __new__(cls, name, this_bases, d):
return meta(name, bases, d)
@classmethod
def __prepare__(cls, name, this_bases):
return meta.__prepare__(name, bases)
return type.__new__(metaclass, 'temporary_class', (), {})
Breaking the above down:
type.__new__(metaclass, 'temporary_class', (), {})uses themetaclassmetaclass to create a new class object namedtemporary_classthat is entirely empty otherwise.type.__new__(metaclass, ...)is used instead ofmetaclass(...)to avoid using the specialmetaclass.__new__()implementation that is needed for the slight of hand in a next step to work.- In Python 3 only, when
temporary_classis used as a base class, Python first callsmetaclass.__prepare__()(passing in the derived class name,(temporary_class,)as thethis_basesargument. The intended metaclassmetais then used to callmeta.__prepare__(), ignoringthis_basesand passing in thebasesargument. - next, after using the return value of
metaclass.__prepare__()as the base namespace for the class attributes (or just using a plain dictionary when on Python 2), Python callsmetaclass.__new__()to create the actual class. This is again passed(temporary_class,)as thethis_basestuple, but the code above ignores this and usesbasesinstead, calling onmeta(name, bases, d)to create the new derived class.
As a result, using with_metaclass() gives you a new class object with no additional base classes:
>>> class FooMeta(type): pass
...
>>> with_metaclass(FooMeta) # returns a temporary_class object
<class '__main__.temporary_class'>
>>> type(with_metaclass(FooMeta)) # which has a custom metaclass
<class '__main__.metaclass'>
>>> class Foo(with_metaclass(FooMeta)): pass
...
>>> Foo.__mro__ # no extra base classes
(<class '__main__.Foo'>, <type 'object'>)
>>> type(Foo) # correct metaclass
<class '__main__.FooMeta'>
UPDATE: the six.with_metaclass() function has since been patched with a decorator variant, i.e. @six.add_metaclass(). This update fixes some mro issues related to the base objects. The new decorator would be applied as follows:
import six
@six.add_metaclass(Meta)
class MyClass(Base):
pass
Here are the patch notes and here is a similar, detailed example and explanation for using a decorator alternative.