43

Is it possible to map a union type to another union type in TypeScript?

What I'd Like to be able to do

e.g. Given a union type A:

type A = 'one' | 'two' | 'three';

I'd like to be able to map it to union type B:

type B = { type: 'one' } | { type: 'two'} | { type: 'three' };

What I have tried

type B = { type: A };

But this results in:

type B = { type: 'one' | 'two' | 'three' };

which is not quite what I want.

2 Answers 2

71

You can use conditional type for distributing over the members of the union type (conditional type always takes only one branch and is used only for its distributive property, I learned this method from this answer)

type A = 'one' | 'two' | 'three';

type Distribute<U> = U extends any ? {type: U} : never;

type B = Distribute<A>;

/*
type B = {
    type: "one";
} | {
    type: "two";
} | {
    type: "three";
}
*/
7
  • This worked. Out of curiosity how does the U extends {} resolve as truthy to provide { type: U } ?
    – bingles
    Aug 5, 2018 at 15:37
  • 1
    U extends {} is true for object types, "value" types like string, number and boolean and literals of those value types. It's false if U is undefined and void, so the statement "always takes only one branch" is not true, U extends {} excludes void and undefined from the union. I updated the answer to change it to U extends any because I don't know if it's actually desirable to exclude types like void and undefined.
    – artem
    Aug 5, 2018 at 15:49
  • Thanks for the clarification. I was suprised that string literals extend {}
    – bingles
    Aug 6, 2018 at 11:10
  • 1
    How do the inverse? From type B { type: 'one' } | { type: 'two'} | { type: 'three' } to type A 'one' | 'two' | 'three'?
    – kaptux
    Nov 17, 2021 at 15:43
  • 2
    Ok, this does the job: type PickFieldTypes<U, K extends keyof U> = U extends any ? U[K] : never;. Great!!
    – kaptux
    Nov 17, 2021 at 15:56
1

I have found another solution that uses a utility type, but I'm not necessarily recommending it: I'm still learning typescript:

type A = 'one' | 'two' | 'three';
// type B = { type: 'one' } | { type: 'two'} | { type: 'three' };

type B = { type: Extract<A, any> }; // extract all from union
//   ^?
const one: B = { type: 'one' };
const two: B = { type: 'two' };
const three: B = { type: 'three' };
const four: B = { type: 'four' }; // errors

FWIW, the definition of Extract is type Extract<T, U> = T extends U ? T : never;

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