Python 3 type hinting for decorator

Question 1

Python 3 type hinting for decorator

python python-3.x decorator type-hinting typing

FunkySayu · Nov 1, 2017 · Viewed 11.2k times · Source

Answer

Answer

You can't use Callable to say anything about additional arguments; they are not generic. Your only option is to say that your decorator takes a Callable and that a different Callable is returned.

In your case you can nail down the return type with a typevar:

RT = TypeVar('RT')  # return type

def inject_user() -> Callable[[Callable[..., RT]], Callable[..., RT]]:
    def decorator(func: Callable[..., RT]) -> Callable[..., RT]:
        def wrapper(*args, **kwargs) -> RT:
            # ...

Even then the resulting decorated foo() function has a typing signature of def (*Any, **Any) -> builtins.bool* when you use reveal_type().

Various proposals are currently being discussed to make Callable more flexible but those have not yet come to fruition. See

for some examples. The last one in that list is an umbrella ticket that includes your specific usecase, the decorator that alters the callable signature:

Mess with the return type or with arguments

For an arbitrary function you can't do this at all yet -- there isn't even a syntax. Here's me making up some syntax for it.

Question 2

Considere the following code:

from typing import Callable, Any

TFunc = Callable[..., Any]

def get_authenticated_user(): return "John"

def require_auth() -> Callable[TFunc, TFunc]:
    def decorator(func: TFunc) -> TFunc:
        def wrapper(*args, **kwargs) -> Any:
            user = get_authenticated_user()
            if user is None:
                raise Exception("Don't!")
            return func(*args, **kwargs)
        return wrapper
    return decorator

@require_auth()
def foo(a: int) -> bool:
    return bool(a % 2)

foo(2)      # Type check OK
foo("no!")  # Type check failing as intended

This piece of code is working as intended. Now imagine I want to extend this, and instead of just executing func(*args, **kwargs) I want to inject the username in the arguments. Therefore, I modify the function signature.

from typing import Callable, Any

TFunc = Callable[..., Any]

def get_authenticated_user(): return "John"

def inject_user() -> Callable[TFunc, TFunc]:
    def decorator(func: TFunc) -> TFunc:
        def wrapper(*args, **kwargs) -> Any:
            user = get_authenticated_user()
            if user is None:
                raise Exception("Don't!")
            return func(*args, user, **kwargs)  # <- call signature modified

        return wrapper

    return decorator


@inject_user()
def foo(a: int, username: str) -> bool:
    print(username)
    return bool(a % 2)


foo(2)      # Type check OK
foo("no!")  # Type check OK <---- UNEXPECTED

I can't figure out a correct way to type this. I know that on this example, decorated function and returned function should technically have the same signature (but even that is not detected).

Python 3 type hinting for decorator

Answer

Mess with the return type or with arguments

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