2

There is a class First and constructor function Second. I'm trying to create a class Both as a child of both of them. More accurate, I'm copiing methods from constructor function prototype to child class prototype.

I do understand that it's not the real inheritance, but that's enough for me.

There is other problem. How can I make typescript to accept copied methods?

class First {
  someMethod() {
    console.log('someMethod from First');
  }
}

function Second() {
  console.log('Second');
}

Second.prototype.doSmth = function () { 
  console.log('doSmth from Second');
}

interface IBoth {
  someMethod()
  doSmth()
}

class Both extends First /* implements IBoth */ {
  constructor() {
    console.log('constructor of Both');
    super();
    Second.call(this);
  }
}

for (let key in Second.prototype) {
  Both.prototype[key] = Second.prototype[key];
}

In fact I need to see the metods one level deepper:

class Final extends Both {
  doIt() {
    this.someMethod();
    //this.doSmth(); // How to make this call threated as correct?
    (this as any as IBoth).doSmth(); // That compiles, but it's awfull
  }
}

if in this case methods won't be visible in class Both, it's ok.

I've already tryed:

  1. When writing

    class Both extends First implements IBoth {
    

    typesctipt says that I haven't implement interface methods.

  2. Renaming Both to _Both and using

    var Both = _Both as typeof _Both;
    

    leaves same problems as original code, as First is never mentoned.

  3. If I rename Both to _Both and write

    var Both = _Both as typeof IBoth;
    

    typescript can't find IBoth.

Are there some other ways to reach it?


You can try at http://www.typescriptlang.org/Playground
Full code there

Add this line and run the code (copy code from right panel to your browser console):

(new Final).doIt();

Output when line this.doSmth(); is not commented:

constructor of Both
Second
someMethod from First
doSmth from Second
doSmth from Second

PS: Same question in Russian.

2 Answers 2

4

Try this:

class Both extends First {
  constructor() {...}
  doSmth: typeof Second.prototype.doSmth;
}

Demo

It's also better to have Second as a class instead of a function. Add a declaration file if that's a javascript module.

Lastly, and if you can't have types for Second, just add types for each function like this:

class Both extends First {
  constructor() {...}
  doSmth: () => void;
}
16
  • Cannot find namespace 'Second'
    – Qwertiy
    Dec 11, 2015 at 23:41
  • The syntax isn't exact. You might have to play with it a bit. Are you sure Second is already defined in the same file? Dec 11, 2015 at 23:43
  • You just need to define the "doSmth" function inside the class "Both". That's it. Dec 11, 2015 at 23:43
  • I've added a link to full code in the playground to the question. And about declaring a function - I've found a way (see the answer).
    – Qwertiy
    Dec 11, 2015 at 23:49
  • No, with = you get this.doSmth = Second.prototype.doSmth; in compiled version. So each instance contains a referense to the fuction in it. My version with : does not affect compiled code - it's just a typescript declaration. And I cope function to the prototype, so instanses do not have a referense themselves.
    – Qwertiy
    Dec 11, 2015 at 23:57
1

Interface is not required. Just need to declare a prototype field via

doSmth: () => void

It's visible as a property, not as a method, but that's ok.

Full listing:

class First {
  someMethod() {
    console.log('someMethod from First');
  }
}

function Second() {
  console.log('Second');
}

Second.prototype.doSmth = function () { 
  console.log('doSmth from Second');
}

class Both extends First {
  constructor() {
    console.log('constructor of Both');
    super();
    Second.call(this);
  }

  doSmth: () => void
}

for (let key in Second.prototype) {
  Both.prototype[key] = Second.prototype[key];
}

class Final extends Both {
  doIt() {
    this.someMethod();
    this.doSmth();
    //Both.prototype.doSmth(); // ok
    //Final.prototype.doSmth(); // ok
  }
}

PS: Should've google for typescript class prototype variable instead of different combinations about inheritance.

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