276

I have the following function:

function test(): number {
    return 42;
}

I can obtain the type of the function by using typeof:

type t = typeof test;

Here, t will be () => number.

Is there a way to obtain the return type of the function? I would like t to be number instead of () => number.

3
  • 4
    No, not with typeof anyways. typeof will only return "function" (my casing might be wrong).
    – Igor
    Mar 15, 2016 at 15:38
  • It would be great if this became possible. Sometimes you define types as you push them out of a function, and there is no (nice) way to capture this structure. Dec 16, 2017 at 18:35
  • 3
    TL;DR; In 2023 the simple answer is: type t = ReturnType<typeof test> Feb 6, 2023 at 21:47

9 Answers 9

422

EDIT

As of TypeScript 2.8 this is officially possible with ReturnType<T>.

type T10 = ReturnType<() => string>;  // string
type T11 = ReturnType<(s: string) => void>;  // void
type T12 = ReturnType<(<T>() => T)>;  // {}
type T13 = ReturnType<(<T extends U, U extends number[]>() => T)>;  // number[]

See this pull request to Microsoft/TypeScript for details.

TypeScript is awesome!


Old-school hack

Ryan's answer doesn't work anymore, unfortunately. But I have modified it with a hack which I am unreasonably happy about. Behold:

const fnReturnType = (false as true) && fn();

It works by casting false to the literal value of true, so that the type system thinks the return value is the type of the function, but when you actually run the code, it short circuits on false.

13
  • 2
    @NSjonas you need to tell vscode to use the other version. I think ont he status bar on the bottom right. Feb 21, 2018 at 15:54
  • 93
    I had to do ReturnType<typeof fn> (the answer implies ReturnType<fn> is enough).
    – spacek33z
    Oct 18, 2018 at 16:34
  • 1
    Is there an analog of this for getting an argument of a function?
    – tslater
    Apr 29, 2021 at 18:18
  • 4
    are you aware of how to extract Type from Promise<Type>? That's a common case for return values
    – YakovL
    Feb 9, 2022 at 8:16
  • 12
    Regarding promises it's type promiseType = Awaited<ReturnType<typeof promiseFn>>;
    – dr497
    Jul 15, 2022 at 9:01
157

The easiest way in the TypeScript 2.8:

const foo = (): FooReturnType => {
}

type returnType = ReturnType<typeof foo>;
// returnType = FooReturnType
2
  • 1
    duplicate of the accepted answer May 5, 2022 at 13:25
  • 6
    ^ but straight to the point and immediately actionable +1 Mar 23, 2023 at 0:42
15

Use built-in ReturnType:

type SomeType = ReturnType<typeof SomeFunc>

ReturnType expands to:

type ReturnType<T extends (...args: any) => any> = T extends (...args: any) => infer R ? R : any;
5

The code below works without executing the function. It's from the react-redux-typescript library (https://github.com/alexzywiak/react-redux-typescript/blob/master/utils/redux/typeUtils.ts)

interface Func<T> {
    ([...args]: any, args2?: any): T;
}
export function returnType<T>(func: Func<T>) {
    return {} as T;
}


function mapDispatchToProps(dispatch: RootDispatch, props:OwnProps) {
  return {
    onFinished() {
      dispatch(action(props.id));
    }
  }
}

const dispatchGeneric = returnType(mapDispatchToProps);
type DispatchProps = typeof dispatchGeneric;
3

There isn't a way to do this (see https://github.com/Microsoft/TypeScript/issues/6606 for the work item tracking adding this).

A common workaround is write something like:

var dummy = false && test();
type t2 = typeof dummy;
4
  • 4
    I don't think this workaround will work anymore - likely because of control flow based type-analysis.
    – JKillian
    Jan 16, 2017 at 3:45
  • 3
    @JKillian you are right, the example proposed no longer works, although you can easily trick TypeScript with !1 instead of false -- typescriptlang.org/play/…
    – DanielM
    Sep 29, 2017 at 17:20
  • ReturnType should be the answer May 5, 2022 at 13:25
  • It looks like instead of !1 you want !0. That causes the above example to work for me. That being said one side effect of this approach is you are calling test() just to get the type. If test is a function with side effects or an expensive operation that will cause bugs or performance issues. Oct 28, 2022 at 18:16
3

If the function in question is a method of a user defined class, you can use method decorators in conjuction with Reflect Metadata to determine the return type (constructor function) at runtime (and with it, do as you see fit).

For example, you could log it to the console:

function logReturnType(
    target: Object | Function,
    key: string,
    descriptor: PropertyDescriptor
): PropertyDescriptor | void {
    var returnType = Reflect.getMetadata("design:returntype", target, key);

    console.log(returnType);
}

Just snap this method decorator on a method of your choice and you have the exact reference to the constructor function of the object that is supposedly returned from the method call.

class TestClass {
    @logReturnType // logs Number (a string representation)
    public test(): number {
        return 42;
    }
}

There are a few notable limitations to this approach, however:

  • you need to explicitly define the return type on a method decorated as such, otherwise you'll get undefined from Reflect.getMetadata,
  • you can only reference actual types which also exist after compilation; that is, no interfaces or generics

Also, you'll need to specify the following command line arguments for the typescript compiler, because both decorators and reflect metadata are experimental features as of writing this post:

--emitDecoratorMetadata --experimentalDecorators
1
  • ReturnType should be the answer May 5, 2022 at 13:25
3

Edit: This is not needed with TS 2.8 any more! ReturnType<F> gives the return type. See accepted answer.


A variant on some of the previous answers that I'm using, which works in strictNullChecks and hides the inference gymnastics a bit:

function getReturnType<R>(fn: (...args: any[]) => R): R {
  return {} as R;
}

Usage:

function foo() {
  return {
    name: "",
    bar(s: string) { // doesn't have to be shorthand, could be `bar: barFn` 
      return 123;
    }
  }
}

const _fooReturnType = getReturnType(foo);
export type Foo = typeof _fooReturnType; // type Foo = { name: string; bar(s: string): number; }

It does call the getReturnType function, but it does not call the original function. You could prevent the getReturnType call using (false as true) && getReturnType(foo) but IMO this just makes it more confusing.

I just used this method with some regexp find/replace to migrate an old Angular 1.x project that had ~1500 factory functions written like this, originally in JS, and added the Foo etc types to all uses... amazing the broken code one will find. :)

3
  • Thanks! While sad it takes this amount of verbiage, it at least works!
    – ecmanaut
    May 3, 2018 at 16:05
  • @ecmanaut We don't need this anymore! In TS 2.8 you can use ReturnType<F> to get a functions return type. :) May 3, 2018 at 21:48
  • The answers here diverge greatly from the example substrate of the question, making it hard to figure out how to produce a type that is the returned type of the function test. This answer was one of the more useful ones for only renaming test to foo (and admittedly producing a more complex return type, for kicks). Both the accepted answer and your comment are probably great if you already know how to apply them to the original example. (It’s late night here, and not immediately apparent to me what the syntax of a full ReturnType example would look like.)
    – ecmanaut
    May 4, 2018 at 3:07
1

Just in case you have a class and you want to get the return type of a method:

class MeaningOfLife {
  public getMeaningOfLife() { // No explicit return type
    return 42 as const;
  }
}

You can access the prototype of the class in order to get the method as a function:

export type Answer = ReturnType<typeof MeaningOfLife.prototype.getMeaningOfLife>; // equals the literal 42

This is pretty nice because with little code, TypeScript will be able to infer even more complex types

0

I came up with the following, which seems to work nicely:

function returnType<A, B, Z>(fn: (a: A, b: B) => Z): Z
function returnType<A, Z>(fn: (a: A) => Z): Z
function returnType<Z>(fn: () => Z): Z
function returnType(): any {
    throw "Nooooo"
}

function complicated(value: number): { kind: 'complicated', value: number } {
    return { kind: 'complicated', value: value }
}

const dummy = (false as true) && returnType(complicated)
type Z = typeof dummy
1
  • 1
    I don't think the function args need to be generic, since you are throwing them away anyway. fn: (...args: any[]) => Z is all you need. Dec 1, 2017 at 16:49

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