51

I use typeof to infer the return type of a function, but since I cannot call the actual function I use a trick using the ternary operator to infer the type, however this leaves me with a union type that includes undefined:

function foo() {
  return { bar: 1 };
}

const fooInstance = true ? undefined : foo(); // foo() is never actually called
type FooOrUndefined = typeof fooInstance;     // {bar: number} | undefined 
type Foo = ???;                               // Should be { bar: number }

Is there any way to get rid of undefined from FooOrUndefined?

4 Answers 4

79

You will want to use NonNullable:

type Foo = NonNullable<FooOrUndefined> // { bar: number; }

Sample

2
  • Is there a way to do this to a nested type/interface?
    – Daniel
    Commented Jan 21, 2022 at 7:39
  • 2
    @Daniel for nested types/interfaces you want Required (typescriptlang.org/docs/handbook/…)
    – Woodz
    Commented May 26, 2022 at 4:49
13

If you just want to remove undefined but keep null, you can do a small util:

type NoUndefined<T> = T extends undefined ? never : T;

type Foo = number | string | null | undefined;

type Foo2 = NoUndefined<Foo> // number | string | null
3

ford04 pointed me to NonNullable, but I also discovered that ReturnType is a cleaner way of achieving what I'm trying to do:

function foo() {
  return { bar: 1 };
}
type Foo = ReturnType<typeof foo>; // { bar: number; }
1

Use Exclude type of Utility Types of TypeScript:

function foo() {
  return { bar: 1 };
}

const fooInstance = true ? undefined : foo(); // foo() is never actually called
type FooOrUndefined = typeof fooInstance;     // {bar: number} | undefined 
type Foo = Exclude<FooOrUndefined, undefined>;// { bar: number }

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