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I have an instance from Square which inherits from Rectangle

instance instanceof Rectangle --> true
instance instanceof Square    --> true
instance.area() ; // --> area is defined by Rectangle

Now, in my code I don't know where the 'area' function is defined and I want the prototype object which defines it. Of course I can traverse the prototype chain (not tested)

var proto = instance ;
while( !(proto = Object.getPrototypeOf(proto)).hasOwnProperty('area') ) {}
// do something with 'proto'

However, I was wondering if there is a better/faster way to get the prototype object to which a function belongs ?

share|improve this question
    
I can't think of an easier way to determine this then traversing to prototype chain. But may I ask you, what the purpose is of determine this? –  basilikum Aug 15 '13 at 9:45
    
I'm writing a function called $super, which calls the overridden function, something like "area: function(){ return this.$super }". Inside this $super function I need to traverse the prototype chain to look for the next definition of area –  Jeanluca Scaljeri Aug 15 '13 at 10:09
    
@JeanlucaScaljeri You don't need to traverse the entire prototype chain in that case. Simply do Object.getPrototypeOf(this).area() from within a method of the derived instance. BTW are you the guy who forked my augment library? –  Aadit M Shah Aug 15 '13 at 10:27
    
Object.getPrototypeOf(this).area() will not work (I think), because if you have for example this situation: jsfiddle.net/jeanluca/aECvz you need inside each $super call to know where you are in the prototype chain, so you can call the next 'func', because 'this' is always the same (C). Yes I forked you, VERY interesting code, but I've now started from scratch because I want to do it differently ( bit.ly/1d9WDgB - prototypal-inheritance.js, note that it doesn't work yet!) –  Jeanluca Scaljeri Aug 15 '13 at 12:38
    
here is a working example: jsfiddle.net/jeanluca/a6FJz/1 (the code comes from here: bit.ly/1d9WDgB) –  Jeanluca Scaljeri Aug 15 '13 at 13:34

2 Answers 2

up vote 3 down vote accepted

No. There isn't. You have to traverse the prototype chain:

function owner(obj, prop) {
    var hasOwnProperty = Object.prototype.hasOwnProperty;
    while (obj && !hasOwnProperty.call(obj, prop))
        obj = Object.getPrototypeOf(obj);
    return obj;
}

Now you simply do:

var obj = owner(instance, "area");
console.log(obj === Rectangle);    // true

If instance or its prototypes do not have the property area then owner returns null.

share|improve this answer

Replying to you comment: What you essentially seem to want is to call a function of the base class inside the overriding function of an inherited class.

I wouldn't bother with the prototype chain in your case, you can just build base into your inheritance model:

function Rectangle() {}
Rectangle.prototype.area = function () {
    console.log("rectangle");
};

//setting up inheritance
function Square() {}
Square.prototype = Object.create(Rectangle.prototype);
Square.prototype.base = Rectangle.prototype;

Square.prototype.area = function () {
    this.base.area();
    console.log("square");
};

var square = new Square();
square.area();

FIDDLE

share|improve this answer
    
That is indeed what I'm trying here bit.ly/1d9WDgB (how can I make a link in a comment?) The problem is more complex than you thing though. Checkout this FiDDLE jsfiddle.net/jeanluca/uWDYX. Also when you uncomment the code in the middle, you'll see that your context/this is changing! –  Jeanluca Scaljeri Aug 15 '13 at 17:53
    
In your fiddle, what output would be desired in the line Base, multi = 2? –  basilikum Aug 15 '13 at 18:46
    
this.multi should be 3, so I would expect the outcome to be 90 (3 * (3 * 10)) (I just found out how to make a link in a comment :). Of course it can be possible that Base represents an abstract last, and doesn't define a 'multi' at all! –  Jeanluca Scaljeri Aug 15 '13 at 21:30
    
In this case you have to call the base function with the correct context. You can use bind to do that: jsfiddle.net/uWDYX/1 –  basilikum Aug 16 '13 at 6:52
    
that works, but now I've removed the commented code, and it doesn't work anymore (fiddle). Note that instead of using bind you can use call –  Jeanluca Scaljeri Aug 16 '13 at 8:56

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