27

I want to get all available keys of an union type.

interface Foo {
  foo: string;
}

interface Bar {
   bar: string;
}

type Batz = Foo | Bar;

type AvailableKeys = keyof Batz;

I want to have 'foo' | 'bar' as result of AvailableKeys but it is never (as alternative I could do keyof (Foo & Bar), what produces exact the required type but I want to avoid to repeat the Types).

I found already the issue keyof union type should produce union of keys at github. I understand the answer, that keyof UnionType should not produce all possible keys.

So my question is: Is there an other way to get the list of all possible keys (it is ok if the verison 2.8 of tsc is required)?

52

This can be done in typescript 2.8 and later using conditional types. Conditional types iterate over types in a union, union-ing the result:

type Batz = Foo | Bar;

type KeysOfUnion<T> = T extends T ? keyof T: never;
// AvailableKeys will basically be keyof Foo | keyof Bar 
// so it will be  "foo" | "bar"
type AvailableKeys = KeysOfUnion<Batz>; 

The reason a simple keyof Union does not work is because keyof always returns the accessible keys of a type, in the case of a union that will only be the common keys. The conditional type in KeysOfUnion will actually take each member of the union and get its keys so the result will be a union of keyof applied to each member in the union.

4
  • this is awesome - can you explain the difference between KeysOfUnion type and a simple keyof T type? the former returns the correct union of the keys, the latter an intersection (which is not useful)
    – dmwong2268
    Aug 18 '18 at 16:37
  • 1
    @dmwong2268 added a bit more of an explanation let me know if it's clear Aug 18 '18 at 16:47
  • 1
    @TitianCernicova-Dragomir Your solution works, but your explanation doesn't seem to explain anything, just re-states the behavior. I found a discussion on gitter in which you're pointing to the right place where it's explained, so let me add it here: typescriptlang.org/docs/handbook/… May 4 '20 at 21:55
  • Great answer! I also found that you have to use generics, otherwise it won't work. type allBatzKeys = KeysOfUnion<Batz> // "foo"|"bar" type alternativeAllBatzKeys = Batz extends any ? keyof Batz: never; // never
    – Bing Ren
    Sep 26 '20 at 4:00
2

Instead of a union type, you need an intersection type:

type Batz = Foo & Bar;

I agree that their naming can sometimes be confusing.

3
  • thanks for the answer but I really meant the union type. I want to get all possible keys of an union type (yes of Foo or Bar) so that I can do a exhaustive check.
    – Xenya
    Mar 21 '18 at 12:58
  • @Xenya Would you please provide a case in which type Batz = Foo & Bar; doesn't work for getting the keys? In the above case, Batz is 'foo' | 'bar' as expected.
    – Behrooz
    Mar 21 '18 at 18:26
  • you're right, for getting the key it works. But I have already the type type Batz = Foo | Bar;. I want to avoid to rewrite the type with &.
    – Xenya
    Mar 26 '18 at 10:32

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