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# `!abc`{.interpreted-text role="mod"} \-\-- Abstract Base Classes

::: {.module synopsis="Abstract base classes according to :pep:`3119`."}
abc
:::

**Source code:** `Lib/abc.py`{.interpreted-text role="source"}

------------------------------------------------------------------------

This module provides the infrastructure for defining `abstract base
classes <abstract base class>`{.interpreted-text role="term"} (ABCs) in Python, as outlined in `3119`{.interpreted-text role="pep"}; see the PEP for why this was added to Python. (See also `3141`{.interpreted-text role="pep"} and the `numbers`{.interpreted-text role="mod"} module regarding a type hierarchy for numbers based on ABCs.)

The `collections`{.interpreted-text role="mod"} module has some concrete classes that derive from ABCs; these can, of course, be further derived. In addition, the `collections.abc`{.interpreted-text role="mod"} submodule has some ABCs that can be used to test whether a class or instance provides a particular interface, for example, if it is `hashable`{.interpreted-text role="term"} or if it is a `mapping`{.interpreted-text role="term"}.

This module provides the metaclass `ABCMeta`{.interpreted-text role="class"} for defining ABCs and a helper class `ABC`{.interpreted-text role="class"} to alternatively define ABCs through inheritance:

:::: ABC
A helper class that has `ABCMeta`{.interpreted-text role="class"} as its metaclass. With this class, an abstract base class can be created by simply deriving from `!ABC`{.interpreted-text role="class"} avoiding sometimes confusing metaclass usage, for example:

    from abc import ABC

    class MyABC(ABC):
        pass

Note that the type of `!ABC`{.interpreted-text role="class"} is still `ABCMeta`{.interpreted-text role="class"}, therefore inheriting from `!ABC`{.interpreted-text role="class"} requires the usual precautions regarding metaclass usage, as multiple inheritance may lead to metaclass conflicts. One may also define an abstract base class by passing the metaclass keyword and using `!ABCMeta`{.interpreted-text role="class"} directly, for example:

    from abc import ABCMeta

    class MyABC(metaclass=ABCMeta):
        pass

::: versionadded
3.4
:::
::::

::::::: ABCMeta
Metaclass for defining Abstract Base Classes (ABCs).

Use this metaclass to create an ABC. An ABC can be subclassed directly, and then acts as a mix-in class. You can also register unrelated concrete classes (even built-in classes) and unrelated ABCs as \"virtual subclasses\" \-- these and their descendants will be considered subclasses of the registering ABC by the built-in `issubclass`{.interpreted-text role="func"} function, but the registering ABC won\'t show up in their MRO (Method Resolution Order) nor will method implementations defined by the registering ABC be callable (not even via `super`{.interpreted-text role="func"}).[^1]

Classes created with a metaclass of `!ABCMeta`{.interpreted-text role="class"} have the following method:

::::: method
register(subclass)

Register *subclass* as a \"virtual subclass\" of this ABC. For example:

    from abc import ABC

    class MyABC(ABC):
        pass

    MyABC.register(tuple)

    assert issubclass(tuple, MyABC)
    assert isinstance((), MyABC)

::: versionchanged
3.3 Returns the registered subclass, to allow usage as a class decorator.
:::

::: versionchanged
3.4 To detect calls to `!register`{.interpreted-text role="meth"}, you can use the `get_cache_token`{.interpreted-text role="func"} function.
:::
:::::

You can also override this method in an abstract base class:

::: method
\_\_subclasshook\_\_(subclass)

(Must be defined as a class method.)

Check whether *subclass* is considered a subclass of this ABC. This means that you can customize the behavior of `issubclass`{.interpreted-text role="func"} further without the need to call `register`{.interpreted-text role="meth"} on every class you want to consider a subclass of the ABC. (This class method is called from the `~type.__subclasscheck__`{.interpreted-text role="meth"} method of the ABC.)

This method should return `True`, `False` or `NotImplemented`{.interpreted-text role="data"}. If it returns `True`, the *subclass* is considered a subclass of this ABC. If it returns `False`, the *subclass* is not considered a subclass of this ABC, even if it would normally be one. If it returns `!NotImplemented`{.interpreted-text role="data"}, the subclass check is continued with the usual mechanism.
:::

For a demonstration of these concepts, look at this example ABC definition:

    class Foo:
        def __getitem__(self, index):
            ...
        def __len__(self):
            ...
        def get_iterator(self):
            return iter(self)

    class MyIterable(ABC):

        @abstractmethod
        def __iter__(self):
            while False:
                yield None

        def get_iterator(self):
            return self.__iter__()

        @classmethod
        def __subclasshook__(cls, C):
            if cls is MyIterable:
                if any("__iter__" in B.__dict__ for B in C.__mro__):
                    return True
            return NotImplemented

    MyIterable.register(Foo)

The ABC `MyIterable` defines the standard iterable method, `~object.__iter__`{.interpreted-text role="meth"}, as an abstract method. The implementation given here can still be called from subclasses. The `!get_iterator`{.interpreted-text role="meth"} method is also part of the `MyIterable` abstract base class, but it does not have to be overridden in non-abstract derived classes.

The `__subclasshook__`{.interpreted-text role="meth"} class method defined here says that any class that has an `~object.__iter__`{.interpreted-text role="meth"} method in its `~object.__dict__`{.interpreted-text role="attr"} (or in that of one of its base classes, accessed via the `~type.__mro__`{.interpreted-text role="attr"} list) is considered a `MyIterable` too.

Finally, the last line makes `Foo` a virtual subclass of `MyIterable`, even though it does not define an `~object.__iter__`{.interpreted-text role="meth"} method (it uses the old-style iterable protocol, defined in terms of `~object.__len__`{.interpreted-text role="meth"} and `~object.__getitem__`{.interpreted-text role="meth"}). Note that this will not make `get_iterator` available as a method of `Foo`, so it is provided separately.
:::::::

The `!abc`{.interpreted-text role="mod"} module also provides the following decorator:

::::: decorator
abstractmethod

A decorator indicating abstract methods.

Using this decorator requires that the class\'s metaclass is `ABCMeta`{.interpreted-text role="class"} or is derived from it. A class that has a metaclass derived from `!ABCMeta`{.interpreted-text role="class"} cannot be instantiated unless all of its abstract methods and properties are overridden. The abstract methods can be called using any of the normal \'super\' call mechanisms. `!abstractmethod`{.interpreted-text role="func"} may be used to declare abstract methods for properties and descriptors.

Dynamically adding abstract methods to a class, or attempting to modify the abstraction status of a method or class once it is created, are only supported using the `update_abstractmethods`{.interpreted-text role="func"} function. The `!abstractmethod`{.interpreted-text role="func"} only affects subclasses derived using regular inheritance; \"virtual subclasses\" registered with the ABC\'s `~ABCMeta.register`{.interpreted-text role="meth"} method are not affected.

When `!abstractmethod`{.interpreted-text role="func"} is applied in combination with other method descriptors, it should be applied as the innermost decorator, as shown in the following usage examples:

    class C(ABC):
        @abstractmethod
        def my_abstract_method(self, arg1):
            ...
        @classmethod
        @abstractmethod
        def my_abstract_classmethod(cls, arg2):
            ...
        @staticmethod
        @abstractmethod
        def my_abstract_staticmethod(arg3):
            ...

        @property
        @abstractmethod
        def my_abstract_property(self):
            ...
        @my_abstract_property.setter
        @abstractmethod
        def my_abstract_property(self, val):
            ...

        @abstractmethod
        def _get_x(self):
            ...
        @abstractmethod
        def _set_x(self, val):
            ...
        x = property(_get_x, _set_x)

In order to correctly interoperate with the abstract base class machinery, the descriptor must identify itself as abstract using `!__isabstractmethod__`{.interpreted-text role="attr"}. In general, this attribute should be `True` if any of the methods used to compose the descriptor are abstract. For example, Python\'s built-in `property`{.interpreted-text role="class"} does the equivalent of:

    class Descriptor:
        ...
        @property
        def __isabstractmethod__(self):
            return any(getattr(f, '__isabstractmethod__', False) for
                       f in (self._fget, self._fset, self._fdel))

:::: note
::: title
Note
:::

Unlike Java abstract methods, these abstract methods may have an implementation. This implementation can be called via the `super`{.interpreted-text role="func"} mechanism from the class that overrides it. This could be useful as an end-point for a super-call in a framework that uses cooperative multiple-inheritance.
::::
:::::

The `!abc`{.interpreted-text role="mod"} module also supports the following legacy decorators:

::::: decorator
abstractclassmethod

::: versionadded
3.2
:::

::: deprecated
3.3 It is now possible to use `classmethod`{.interpreted-text role="class"} with `abstractmethod`{.interpreted-text role="func"}, making this decorator redundant.
:::

A subclass of the built-in `classmethod`{.interpreted-text role="func"}, indicating an abstract classmethod. Otherwise it is similar to `abstractmethod`{.interpreted-text role="func"}.

This special case is deprecated, as the `classmethod`{.interpreted-text role="func"} decorator is now correctly identified as abstract when applied to an abstract method:

    class C(ABC):
        @classmethod
        @abstractmethod
        def my_abstract_classmethod(cls, arg):
            ...
:::::

::::: decorator
abstractstaticmethod

::: versionadded
3.2
:::

::: deprecated
3.3 It is now possible to use `staticmethod`{.interpreted-text role="class"} with `abstractmethod`{.interpreted-text role="func"}, making this decorator redundant.
:::

A subclass of the built-in `staticmethod`{.interpreted-text role="func"}, indicating an abstract staticmethod. Otherwise it is similar to `abstractmethod`{.interpreted-text role="func"}.

This special case is deprecated, as the `staticmethod`{.interpreted-text role="func"} decorator is now correctly identified as abstract when applied to an abstract method:

    class C(ABC):
        @staticmethod
        @abstractmethod
        def my_abstract_staticmethod(arg):
            ...
:::::

:::: decorator
abstractproperty

::: deprecated
3.3 It is now possible to use `property`{.interpreted-text role="class"}, `property.getter`{.interpreted-text role="meth"}, `property.setter`{.interpreted-text role="meth"} and `property.deleter`{.interpreted-text role="meth"} with `abstractmethod`{.interpreted-text role="func"}, making this decorator redundant.
:::

A subclass of the built-in `property`{.interpreted-text role="func"}, indicating an abstract property.

This special case is deprecated, as the `property`{.interpreted-text role="func"} decorator is now correctly identified as abstract when applied to an abstract method:

    class C(ABC):
        @property
        @abstractmethod
        def my_abstract_property(self):
            ...

The above example defines a read-only property; you can also define a read-write abstract property by appropriately marking one or more of the underlying methods as abstract:

    class C(ABC):
        @property
        def x(self):
            ...

        @x.setter
        @abstractmethod
        def x(self, val):
            ...

If only some components are abstract, only those components need to be updated to create a concrete property in a subclass:

    class D(C):
        @C.x.setter
        def x(self, val):
            ...
::::

The `!abc`{.interpreted-text role="mod"} module also provides the following functions:

:::: function
get_cache_token()

Returns the current abstract base class cache token.

The token is an opaque object (that supports equality testing) identifying the current version of the abstract base class cache for virtual subclasses. The token changes with every call to `ABCMeta.register`{.interpreted-text role="meth"} on any ABC.

::: versionadded
3.4
:::
::::

:::::: function
update_abstractmethods(cls)

A function to recalculate an abstract class\'s abstraction status. This function should be called if a class\'s abstract methods have been implemented or changed after it was created. Usually, this function should be called from within a class decorator.

Returns *cls*, to allow usage as a class decorator.

If *cls* is not an instance of `ABCMeta`{.interpreted-text role="class"}, does nothing.

:::: note
::: title
Note
:::

This function assumes that *cls*\'s superclasses are already updated. It does not update any subclasses.
::::

::: versionadded
3.10
:::
::::::

**Footnotes**

[^1]: C++ programmers should note that Python\'s virtual base class concept is not the same as C++\'s.