为什么我不能使这种类型通用?输入“x"不能用于索引类型“y";ts(2536) [英] Why can't I make this type generic? Type "x" cannot be used to index type "y" ts(2536)
问题描述
我正在尝试编写一个泛型类型,它采用根级属性名称并返回嵌套在其下的属性的联合类型.例如:
I'm trying to write a generic type which takes a root-level property name and returns a union type of a property nested underneath it. For example:
interface operations {
updateSomething: {
"201": {
schema: number;
};
"400": {
schema: string;
};
};
}
如果我想获得模式"对于 updateSomething 类型,它应该解析为 number |字符串.非通用版本工作正常:
If I want to get the "schemas" for the type updateSomething, it should resolve to number | string. The non-generic version works fine:
type UpdateSomethingSchema =
operations["updateSomething"][keyof operations["updateSomething"]]["schema"];
// string | number ✓
我尝试编写泛型类型是:
My attempt at writing a generic type is:
type SchemaOf<
O extends keyof operations
> = operations[O][keyof operations[O]]["schema"];
但这给了我一个错误:
Type '"schema"' cannot be used to index type 'operations[O][keyof operations[O]]'.ts(2536)
有趣的是,如果我忽略错误,该类型似乎确实有效:
Interestingly, if I ignore the error, the type does seem to work:
type UpdateSomethingSchema = SchemaOf<"updateSomething">;
// string | number ✓
我做错了什么,还是 TypeScript 的限制?
Am I doing something wrong, or is this a limitation of TypeScript?
推荐答案
你可以借助分布式条件类型来实现:
You can achieve it with help of distributive conditional types:
type Schema<T> = {
schema: T
}
interface operations {
updateSomething: {
"201": Schema<number>;
"400": Schema<string>;
};
}
type SchemaOf<
O extends keyof operations
> = operations[O][keyof operations[O]] extends Schema<infer S> ? S : never
type Result = SchemaOf<'updateSomething'> // string | number
IF operations[O][keyof operations[O]] 推断具有 schema 属性的对象,TypeScript 能够推断出 schema 的类型:T 并且由于分布性,它将返回联合类型.
IF operations[O][keyof operations[O]] infers to object with schema property, TypeScript is able to infer the type of schema: T and because of distributivity, it will return a union type.
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