46

Let's say I have a class Person which looks like this:

class Person {
    constructor(
        public firstName: string,
        public lastName: string,
        public age: number
    ) {}
}

Is it possible to override the toString() method in this class, so I could do something like the following?

function alertMessage(message: string) {
    alert(message);
}

alertMessage(new Person('John', 'Smith', 20));

This override could look something like this:

public toString(): string {
    return this.firstName + ' ' + this.lastName;
}

Edit: This actually works. See answers below for details.

closed as off-topic by Thomas Weller, CertainPerformance, Billal Begueradj Aug 10 at 10:38

This question appears to be off-topic. The users who voted to close gave this specific reason:

  • "This question was caused by a problem that can no longer be reproduced or a simple typographical error. While similar questions may be on-topic here, this one was resolved in a manner unlikely to help future readers. This can often be avoided by identifying and closely inspecting the shortest program necessary to reproduce the problem before posting." – Thomas Weller, CertainPerformance, Billal Begueradj
If this question can be reworded to fit the rules in the help center, please edit the question.

35

Overriding toString works kind of as expected:

class Foo {
    private id: number = 23423;
    public toString = () : string => {
        return `Foo (id: ${this.id})`;
    }
}

class Bar extends Foo {
   private name:string = "Some name"; 
   public toString = () : string => {
        return `Bar (${this.name})`;
    }
}

let a: Foo = new Foo();
// Calling log like this will not automatically invoke toString
console.log(a); // outputs: Foo { id: 23423, toString: [Function] }

// To string will be called when concatenating strings
console.log("" + a); // outputs: Foo (id: 23423)
console.log(`${a}`); // outputs: Foo (id: 23423)

// and for overridden toString in subclass..
let b: Bar = new Bar();
console.log(b); // outputs: Bar { id: 23423, toString: [Function], name: 'Some name' }
console.log("" + b); // outputs: Bar (Some name)
console.log(`${b}`); // outputs: Bar (Some name)

// This also works as expected; toString is run on Bar instance. 
let c: Foo = new Bar();
console.log(c); // outputs: Bar { id: 23423, toString: [Function], name: 'Some name' }
console.log("" + c); // outputs: Bar (Some name)
console.log(`${c}`); // outputs: Bar (Some name)

What can sometimes be an issue though is that it is not possible to access the toString of a parent class:

console.log("" + (new Bar() as Foo));

Will run the toString on Bar, not on Foo.

  • That kinda works for me, but getting more specific. I have a ts class like this code module Entidades { export class eEpisodio{ public Id: numer} }code If i try to use my toString() method adding some property, it doesn't work, it doesn't seem to find the Id property (or any at all) – Mario Garcia Feb 12 '16 at 11:50
  • 1
    I updated my answer. What might have been your problem is defining toString like a function. Defining it as a lambda property might work better (like i have done in my new more exhaustive example.) – Nypan Feb 12 '16 at 12:17
  • Worked like a charm, thanks! – Mario Garcia Feb 16 '16 at 11:39
  • @Nypan Is there a pro argument to use public toString = () : string => { instead of public toString(): string { ? – iBaff Jun 11 '17 at 6:13
  • Yes, using t() : => ensures that thiswill be what you expect in the toString override. You can read up on arrow functions to learn more about this. But the basic difference here is that arrow functions does not bind their own this. – Nypan Jun 15 '17 at 10:34
7

As pointed out by @Kruga, the example actually seemed to work in runtime JavaScript. The only problem with this is that TypeScript shows a type error.

TS2345: Argument of type 'Person' is not assignable to parameter of type 'string'.

To resolve this message, you must either:

  • Call .toString() explicitly
  • Or concatenate the object with a string (e.g. `${obj}` or obj + '')
  • Or use obj as any (not recommended as you will lose type safety)
  • 1
    "concatenate the object with an empty string" worked for me – Dan Loughney Sep 29 '17 at 12:03

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