1

I am trying to write a function which has the following type signature:

  • parameter a is either of type string or undefined
  • parameter b is a string if a is also a string, otherwise it is a number

My approach up to now was the following:

function myFunction<X extends string | undefined>(
    a: X,
    b: X extends undefined ? number : string,
) {
    // ... do stuff ...
}

Calling myFunction works just as expected, ie. myFunction('a', 'b') works while myFunction(undefined, 'b') throws an error. However, when I try to use the parameters in the function body, I don't have any typing support:

function myFunction<...>(...) {
    if (a !== undefined) {
        // a is a string -> b must also be a string
        b.split(''); // -> Property 'split' does not exist on type 'X'
    }
}

Do I have to cast inside my function or can I somehow convince typescript to infer my type?

EDIT: Complete example: https://typescript-play.js.org/#code/GYVwdgxgLglg9mABAWwJ4DFzXmAPADUQFMAPKIsAEwGdFqoAnGMAc0QB9FxKjhmjKAPgAUAKEQTEAQwBcifABpxkgEZzCpclVrde-SogD8iMCGQqiDRHPpNWSgJSIA3sokxgiYVMQBCALz+XFR6YAJOrpJRiAD0MdKIMLQ+tsxsALSCiCooIPTSADbUcNlECamsbtEqAHTUAA4FMFDCAOStDgDcVQC+oj1AA

1

Typescript does not support narrowing parameters one based on another. As far as the compiler is concerned a and b are independent and checking a will not impact the type of b even if the conditional type ties them together conceptually.

0

Overloading the function is the way to go here. Also, remember that all your TypeScript types will be lost during transpiling to JavaScript. So conditional typing isn't really possible, since this would be a runtime check. You have to write those checks yourself.

It would also be better to bring the parameter a to the second position and make it optional, then you can write a clean check:

function myFunction(b: string | number, a?: string) {
    if(typeof a !== "undefined") {
        b = b as string;

        b.split("");
    }
}
  • 1
    Point is to force TS to detect that b is string based on argument definition – Przemyslaw Pietrzak Feb 12 at 13:32
  • Well, the b = b as string was exactly what I wanted to avoid; but apparently that doesn't work... – Lukor Feb 12 at 13:33
  • As Titian pointed out in his answer, the compiler doesn't know about types that are dependend on the type of other variables. – Johannes Klauß Feb 12 at 13:34
  • You could also write function myFunction(b: string & number, a?: string). Then you can get rid of the b = b as string – Johannes Klauß Feb 12 at 13:54

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