If I have the following basic function typescript can infer the return type automatically.

function myFunction(x: number, y: number) {
  return x * y;
}

Is it only useful to declare return types if typescript cannot infer the return type because some other call is leaking any and so it cannot make a proper inference?

function myFunction(x: number, y: number) {
  return x * y || callThatReturnsAny();
}

In this case I would want to type it if I know callThatReturnsAny() returns a number

function myFunction(x: number, y: number): number {
  return x * y || callThatReturnsAny();
}

Although the best solution would just be to type callThatReturnsAny() so that typescript can make the inference? But in that case when should you really ever use explicit return types?

  • 1
    Did you mean to use binary or? – Jared Smith Dec 7 at 0:31
  • @JaredSmith yes, thank you. – Adam Thompson Dec 7 at 0:34
  • It is never necessary, you can declare it whenever you like. – zerkms Dec 7 at 0:38
  • @zerkms just to be more explicit as a style decision? Otherwise, I know it is not necessary - but does is there ever a good use case for doing so? – Adam Thompson Dec 7 at 0:42
  • 1
    if you use --noImplicitAny compiler option it will give an error each time you use explicit any like in callThatReturnsAny; than you can type function with any type have the safe code and save some typing on the function where the compiler can infer types – setdvd Dec 7 at 3:34
up vote 1 down vote accepted

I switch on noImplicitAny and avoid adding type annotations in almost all cases, except functions. Why? Because I don't want to accidentally return a union type when:

  1. I forget to return a value
  2. I return a value of the wrong type

For example, my day goes differently if I start off with:

function example(a: number, b: number) {

vs

function example(a: number, b: number): number {

Here's what happens next...

function example(a: number, b: number) {
    if (a > 5) {
        return 5;
    }

    if (b > a) {
        return 'b';
    }
}

My return type is now number | string | undefined.

If I use the return type annotation, I get additional help*.

It helps you return the correct type:

Wrong return type

In strict mode, it makes sure you return something every time.

Missing return (strict mode)

* if you like additional help, you'll also have all the strict things switched on.

  • I thought of one use case when it might be useful, the inferred type matches up with a custom type but isn't specifically typed as so. For example, if you return { foo: string } implicitly, which matches up with an interface interface Foo { foo: string } then it may be useful to explicitly return type Foo in case Foo changes. – Adam Thompson Dec 7 at 21:20

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