66

Eg:

function A(){}
function B(){}
B.prototype = new A();

How can I check if the class B inherits class A?

113

give this a try B.prototype instanceof A

  • 5
    What about ES6 class ? class A extends B{} then how can I check the inheritances of class A – Omid Oct 26 '17 at 13:49
  • 4
    @Omid ES6 class syntax is mostly just that: some special syntax. Behind the scenes the actual handling of "classes" hasn't changed and thus you can still work with A.prototype ... developer.mozilla.org/en-US/docs/Web/JavaScript/Reference/… – Thomas Urban Feb 11 '18 at 14:58
27

You can test direct inheritance with

B.prototype.constructor === A

To test indirect inheritance, you may use

B.prototype instanceof A

(this second solution was first given by Nirvana Tikku)

  • 6
    No that will only check the parent class, not all the heritage chain. – Simon Jan 23 '13 at 17:54
  • Just restored it. Thanks dystroy (for updating this answer, too) – Nirvana Tikku Jan 23 '13 at 17:58
17

back to 2017:
check if that work for you

A.isPrototypeOf(B)
1

Gotchas: Note that instanceof does not work as expected if you use multiple execution contexts/windows. See §§.


Also, per https://johnresig.com/blog/objectgetprototypeof/, this is an alternative implementation that is identical to instanceof:

function f(_, C) { // instanceof Polyfill
  while (_ != null) {
    if (_ == C.prototype)
      return true;
    _ = _.__proto__;
  }
  return false;
}

Modifying it to check the class directly gives us:

function f(ChildClass, ParentClass) {
  _ = ChildClass.prototype;
  while (_ != null) {
    if (_ == C.prototype)
      return true;
    _ = _.__proto__;
  }
  return false;
}


Sidenote

instanceof itself checks if obj.proto is f.prototype, thus:

function A(){};
A.prototype = Array.prototype;
[]instanceof Array // true

and:

function A(){}
_ = new A();
// then change prototype:
A.prototype = [];
/*false:*/ _ instanceof A
// then change back:
A.prototype = _.__proto__
_ instanceof A //true

and:

function A(){}; function B(){};
B.prototype=Object.prototype;
/*true:*/ new A()instanceof B 

If it's not equal, proto is swapped with proto of proto in the check, then proto of proto of proto, and so on. Thus:

function A(){}; _ = new A()
_.__proto__.__proto__ = Array.prototype
g instanceof Array //true

and:

function A(){}
A.prototype.__proto__ = Array.prototype
g instanceof Array //true

and:

f=()=>{};
f.prototype=Element.prototype
document.documentElement instanceof f //true
document.documentElement.__proto__.__proto__=[];
document.documentElement instanceof f //false
1

I do not think Simon meant B.prototype = new A() in his question, because this is certainly not the way to chain prototypes in JavaScript.

Assuming B extends A, use Object.prototype.isPrototypeOf.call(A.prototype, B.prototype)

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