python / python/typing

Proposal: Support Unpacked `TypeVarTuple` and `tuple` in `Concatenate`

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topic: feature
Lenguaje dominante
Python
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PR fusionados (30 d)
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Descripción

Abstract

PEP 612 introduced ParamSpec and Concatenate to prepend fixed positional parameters to a callable's signature. PEP 646 introduced TypeVarTuple for variadic positional typing in Callable[[*Ts], R]. Because the two PEPs were developed independently, the typing specification does not allow unpacked types (*Ts or *tuple[...]) inside Concatenate.

This proposal extends Concatenate to accept unpack_expressions in its prefix, enabling Callable[Concatenate[*Ts, P], R].


Motivation

Higher-order abstractions like partial application helpers and execution wrappers need to capture an arbitrary number of leading positional arguments while preserving the remaining signature (keyword-only params, defaults, **kwargs) via ParamSpec. Today, this requires repetitive overload ladders:

from typing import Any, Callable, Concatenate, overload

class Wrapper[**P, R]:
    @overload
    def __init__(self, fn: Callable[P, R]) -> None: ...

    @overload
    def __init__[G1](
        self,
        fn: Callable[Concatenate[G1, P], R],
        __g1: G1,
        /,
    ) -> None: ...

    @overload
    def __init__[G1, G2](
        self,
        fn: Callable[Concatenate[G1, G2, P], R],
        __g1: G1,
        __g2: G2,
        /,
    ) -> None: ...

    # Must repeat up to arbitrary maximum arity...
    def __init__(self, fn: Callable[..., R], *args: Any) -> None:
        self._fn = fn
        self._args = args

    def __call__(self, *args: P.args, **kwargs: P.kwargs) -> R:
        return self._fn(*self._args, *args, **kwargs)

With this proposal, the entire ladder collapses to a single generic signature:

from __future__ import annotations
from typing import Callable, Concatenate

class Wrapper[**P, R, *Ts]:
    def __init__(self, fn: Callable[Concatenate[*Ts, P], R], *args: *Ts) -> None:
        self._fn = fn
        self._args = args

    def __call__(self, *args: P.args, **kwargs: P.kwargs) -> R:
        return self._fn(*self._args, *args, **kwargs)

def f(a: str, b: int, *, flag: bool = False, x: float) -> bool: ...

# Ts = () -> P = (a: str, b: int, *, flag: bool = ..., x: float)
w0 = Wrapper(f)
r0 = w0("hello", 42, x=3.14, flag=True)  # type: bool

# Ts = (str,) -> P = (b: int, *, flag: bool = ..., x: float)
w1 = Wrapper(f, "hello")
r1 = w1(42, x=3.14)  # type: bool

# Ts = (str, int) -> P = (*, flag: bool = ..., x: float)
w2 = Wrapper(f, "hello", 42)
r2 = w2(x=3.14)  # type: bool

Specification

Grammar

Update the Concatenate grammar in the typing specification from:

concatenate ::= "Concatenate" "[" type_expression ("," type_expression)* "," parameter_specification_variable "]"

to:

concatenate_prefix_item ::= type_expression | unpack_expression
concatenate ::= "Concatenate" "[" concatenate_prefix_item ("," concatenate_prefix_item)* "," parameter_specification_variable "]"
Semantics

Expansion follows existing PEP 646 semantics: when *Ts is bound to tuple[T1, T2, ..., Tn], Concatenate[*Ts, P] is equivalent to Concatenate[T1, T2, ..., Tn, P]. When *Ts is bound to tuple[()], Concatenate[*Ts, P] simplifies to P. Individual type expressions and unpack expressions may be freely combined in the prefix (e.g. Concatenate[LeadingArg, *Ts, P]).


Open Question: Splitting Boundary

The core design question is: how does a type checker determine the split between the prefix and ParamSpec P?

When the prefix length is statically known, splitting is unambiguous. This covers concrete bounded tuples (Concatenate[*tuple[int, str], P] — always length 2) and value-anchored TypeVarTuples where a companion *args: *Ts pins the length at the call site (the Wrapper example above). These are the primary use cases.

Ambiguity arises when the prefix length is not statically determined:

Case A — Unanchored *Ts (no companion *args: *Ts):

class TaskRunner[**P, R, *Ts]:
    def __init__(self, fn: Callable[Concatenate[*Ts, P], R]) -> None: ...

def compute(user_id: int, query: str, *, timeout: float = 5.0) -> bool: ...

# How many positional params should *Ts capture vs. leave in P?
task = TaskRunner(compute)

Case B — Unbounded tuple (*tuple[T, ...]):

def strip_leading_ints[**P, R](
    fn: Callable[Concatenate[*tuple[int, ...], P], R]
) -> Callable[P, R]: ...

def example(x: int, y: int, z: int, *, flag: bool = False) -> None: ...

# *tuple[int, ...] could match 0, 1, 2, or 3 leading int parameters.
wrapped = strip_leading_ints(example)

Options:

  • Option 1 — Greedy prefix: The prefix consumes all matching positional-capable parameters. In Case A, *Ts = (int, str) and P = (*, timeout: float = 5.0). In Case B, all 3 ints are consumed, leaving P = (*, flag: bool = False).

  • Option 2 — Restrict to fixed-length prefixes initially: Require the prefix length to be statically determined (concrete bounded tuples, companion *args: *Ts, or explicit specialization). Reject unanchored/unbounded prefixes as ambiguous and defer them to a future extension.

Guía de contribución

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Primeros pasos

  1. Lee el issue completo y luego la guía de contribución del proyecto.
  2. Comenta en el issue que vas a ocuparte — evita que dos personas hagan lo mismo.
  3. Haz un fork del repositorio y trabaja en una rama.
  4. Abre un pull request que haga referencia al número del issue.

Línea de trabajo

Comienza con la sección enlazada de la especificación de typing sobre las ubicaciones de uso válidas y, después, compara la gramática y la semántica propuestas con el comportamiento de PEP 646 y PEP 612 descrito aquí. El trabajo estará terminado cuando se haya seleccionado y documentado una regla para dividir el prefijo desempaquetado de ParamSpec P, incluidos los casos no anclado y no acotado.

Escrito por el modelo de indexación a partir del texto del issue.

Evaluación

Stack tecnológico
python
Área
devtools, documentation
Tipo de issue
Nueva funcionalidad
Dificultad
5/5
Tiempo estimado
Más de una semana
Estado de actividad
Tranquilo
Claridad
Bastante claro
Aptitud para principiantes
35/100

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