9

I'm learning TypeScript and practicing about Type Guards from Official DOCS

I'm testing the provided example (more or less) with TypeScript 3.5.3:

function exec(strOrNum: string | number) {
    if ("substring" in strOrNum) {
        return strOrNum.substring(1);
    }
    return strOrNum.toExponential(2);
}

But VSCode is trowing the following error:

The right-hand side of an 'in' expression must be of type 'any', an object type or a type parameter.ts(2361)

I don't understand it, any idea?

1 Answer 1

16

The in operator returns true if the specified property is in the specified object or its prototype chain.

This means it operates on objects (or arrays) and not strings.

If you want to add a type guard to differentiate between string and number you have to use typeof:

function exec(strOrNum: string | number) {
    if (typeof strOrNum === "string") {
        return strOrNum.substring(1);
    }
    return strOrNum.toExponential(2);
}

You would use the in operator if you have a union of two interfaces:

interface A {
    a: string;
}

interface B {
    b: number;
}


function test(arg: A | B): string {
    if ('a' in arg) {
        return arg.a;
    }
    return arg.b.toFixed(2);
}

4
  • Unfortunately TypeScript 4.1+ still doesn't let use use typeof on object members and then safely access those members without an intermediate scalar or using as any. Grumble.
    – Dai
    Commented Feb 16, 2021 at 6:01
  • I am not sure what you are referring to, with TypeScript 4.1.5 it is possible, see the attached playground example, or did you mean something different? typescriptlang.org/play?#code/…
    – DAG
    Commented Feb 18, 2021 at 11:16
  • that link doesn't work, it gets stuck on "Downloading TypeScript" - I see HTTP 404 errors for typescriptlang.org/typescript-sandbox/index.js in my dev console - looks like the TypeScript site dun goofed
    – Dai
    Commented Feb 18, 2021 at 12:07
  • this is what I'm referring to: stackoverflow.com/questions/66219385/…
    – Dai
    Commented Feb 18, 2021 at 12:07

Your Answer

By clicking “Post Your Answer”, you agree to our terms of service and acknowledge you have read our privacy policy.

Not the answer you're looking for? Browse other questions tagged or ask your own question.