Unexpected widening of template literal string type when the function's type is referenced by the constraint of a additional uninvolved type parameter
#56,724 创建于 2023年12月10日
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描述
🔎 Search Terms
"Generic constraints", "Infer strict return type"
🕗 Version & Regression Information
- This is the behavior in every version I tried, and I reviewed the FAQ for entries about Strict function types
⏯ Playground Link
No response
💻 Code
First example:
type Primitives = number | string | boolean | bigint | symbol | undefined | null | void;
declare function call<
R extends Primitives,
O extends { a: (...args: any[]) => R },
Args extends { a: Parameters<O['a']> }
>(o: O, args: Args): ReturnType<O['a']>;
const check = call(
{
a(a: string) {
return `${a}a`;
}
},
{ a: ['a'] }
)
Second example:
type Primitives = number | string | boolean | bigint | symbol | undefined | null | void;
declare function call<
R extends Primitives,
O extends { a: (...args: any[]) => R },
>(o: O, args: { a: Parameters<O['a']> }): ReturnType<O['a']>;
const check = call(
{
a(a: string) {
return `${a}a`;
}
},
{ a: ['a'] }
)
🙁 Actual behavior
I'm trying to write a function that retrieves the function's strict return type (which is a property of an object) and takes a second argument as an object with the same properties, but with arguments for these functions.
There is a problem with how TypeScript infer the return types.
In the first example check will have string type. But in the second example check will have ${string}a type as expected.
I have noticed that problem occur when I try to write generic for args argument of call function.
This looks like a bug, since generic for args argument has no effect on other types.
🙂 Expected behavior
In both examples the return type must be ${string}a.
Additional information about the issue
No response