56

I'm struggling to figure out if it's possible in TypeScript to declare a statically typed array of functions.

For example, I can do this:

foo: (data:string) => void = function (data) {};

But if I want foo to be an array of functions that take a string and return nothing, how do I do that?

foo: (data:string) => void [] = [];

Doesn't work because TypeScript thinks it's a function that takes a string and returns an array of void, and it doesn't seem to like me trying to wrap the function in brackets.

Any ideas?

Answer: Thanks to mohamed below, here's an example that works in the TypeScript Playground:

class whatever {
public foo: { (data: string): void; }[] = [];

    dofoo() {
        for (var i=0; i < this.foo.length; i++) {
             this.foo[i]("test");
        }
    }
}

var d = new whatever();

d.foo.push(function(bar){alert(bar)})
d.foo.push(function(bar){alert(bar.length.toString())})

d.dofoo();
75

You can find this in the language spec section 3.5.5:

foo: { (data: string): void; } []
  • Yep, that seemed to do it. Thanks. – Matt Burland Oct 4 '12 at 20:07
  • 1
    @asawyer It has to be inside of a class or interface, and it has to have a semicolon at the end. – Peter Olson Oct 4 '12 at 21:25
  • @PeterOlson Oh I see. Thanks! – asawyer Oct 4 '12 at 21:38
  • 2
    It can be a variable too: var foo: { (data: string): void; } []; – Fenton Oct 12 '12 at 19:07
  • while this and the other answer both work, the compiler does not seem to always care if the type of function varies. I had made a mistake passing () => T to arrays that were defined as T => void and no compiler error was given. (maybe that is considered compatible, but even then it's still not as much type safety as you might expect) – Dave Cousineau Jul 15 '17 at 0:02
49

Other (newer, more readable) ways to type an array of functions using fat arrows:

let foo: Array<(data: string) => void>;
let bar: ((data: string) => void)[];

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