Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

Basically is there a good elegant mechanism to emulate super with syntax that is as simple as one of the following

  • this.$super.prop()
  • this.$super.prop.apply(this, arguments);

Criteria to uphold are :

  1. this.$super must be a reference to the prototype. i.e. if I change the super prototype at run-time this change will be reflected. This basically means it the parent has a new property then this should be shown at run-time on all children through super just like a hard coded reference to the parent would reflect changes
  2. this.$super.f.apply(this, arguments); must work for recursive calls. For any chained set of inheritance where multiple super calls are made as you go up the inheritance chain, you must not hit the recursive problem.
  3. You must not hardcode references to super objects in your children. I.e. Base.prototype.f.apply(this, arguments); defeats the point.
  4. You must not use a X to JavaScript compiler or JavaScript preprocessor.
  5. Must be ES5 compliant

The naive implementation would be something like this.

var injectSuper = function (parent, child) {
  child.prototype.$super = parent.prototype;
};

But this breaks condition 2.

The most elegant mechanism I've seen to date is IvoWetzel's eval hack, which is pretty much a JavaScript preprocessor and thus fails criteria 4.

share|improve this question
1  
just curious, but is there a reason why you need to emulate super in JavaScript? given the way the prototype chain works, it strikes me as completely unnecessary. –  zzzzBov Nov 7 '11 at 5:28
    
@zzzzBov super is simply a construct for code re-use. It's the only thing I'm missing in OO sugar for ES5. ES6 brings super and I'm looking forward to that –  Raynos Nov 7 '11 at 12:11
    
Your naive implementation also breaks criteria 1. –  Thomas Eding Nov 7 '11 at 18:48
    
@trinithis how? –  Raynos Nov 7 '11 at 19:05
1  
injectSuper(P, C); x = new C(); C.prototype = {}; alert(x.$super.constructor === P); y = new C(); alert(y.$super === undefined); Emits true for both. –  Thomas Eding Nov 7 '11 at 19:24

9 Answers 9

up vote 6 down vote accepted

I don't think there is a "free" way out of the "recursive super" problem you mention.

We can't mess with the this because doing so would either force us to change prototypes in a nonstandard way, or move us up the proto chain, losing instance variables. Therefore the "current class" and "super class" must be known when we do the super-ing, without passing that responsibility to this or one of its properties.

There are many some things we could try doing but all I can think have some undesireable consequences:

  • Add super info to the functions at creation time, access it using arguments.calee or similar evilness.
  • Add extra info when calling the super method

    $super(CurrentClass).method.call(this, 1,2,3)
    

    This forces us to duplicate the current class name (so we can look up its superclass in some super dictionary) but at least it isn't as bad as having to duplicate the superclass name, (since coupling against the inheritance relationships if worse then the inner coupling with a class' own name)

    //Normal Javascript needs the superclass name
    SuperClass.prototype.method.call(this, 1,2,3);
    

    While this is far from ideal, there is at least some historical precedent from 2.x Python. (They "fixed" super for 3.0 so it doesn't require arguments anymore, but I am not sure how much magic that involved and how portable it would be to JS)


Edit: Working fiddle

var superPairs = [];
// An association list of baseClass -> parentClass

var injectSuper = function (parent, child) {
    superPairs.push({
        parent: parent,
        child: child
    });
};

function $super(baseClass, obj){
    for(var i=0; i < superPairs.length; i++){
        var p = superPairs[i];
        if(p.child === baseClass){
            return p.parent;
        }
    }
}
share|improve this answer
    
Oh I like coupling with the class name rather then the superclass name. –  Raynos Nov 7 '11 at 20:31
    
You can avoid the CurrentClass if you have a closure over $super with the superclass. In both cases, you eventually have to know the superclass, so why not? –  Thomas Eding Nov 7 '11 at 20:36

John Resig posted an ineherence mechanism with simple but great super support. The only difference is that super points to the base method from where you are calling it.

Take a look at http://ejohn.org/blog/simple-javascript-inheritance/.

share|improve this answer
    
Oh dear god that's ugly. He overwrites the functions and changes the value of _super before and after you call the method. –  Raynos Nov 7 '11 at 12:14
    
To be honest, what's wrong with ugly when it is done under the hood. Of course, Resig is missing a try-catch block in there. As it is, if an exception is thrown from a superclass method, you're f*cked. –  Thomas Eding Nov 7 '11 at 18:15
1  
The appropriate fix to the exception problem: try { var ret = fn.apply(this, arguments); } catch (e) { this._super = tmp; throw e; } this._super = tmp; –  Thomas Eding Nov 7 '11 at 18:18
2  
Another problem with Resig's code. Suppose you have classes P and C, where C inherits from P. Also suppose P and C both define their own foo and bar methods on their prototypes. Lastly, suppose P.foo calls bar and C.foo calls _super. When calling new C().foo(), C.bar gets called, not P.bar. Unless you are really clever, this is a bug. I haven't even tried mutual recursion between parent and child class methods. I bet that is even nastier in that I bet it utterly breaks his _super mechanism. –  Thomas Eding Nov 7 '11 at 22:02
1  
@trinithis: JR's code is not perfect for sure. But for ~25 lines of code it is enough to emulate a good inherence paradigm that fits 90% of the needs. For the case you have described, a patch is necessary. –  ngryman Nov 8 '11 at 8:49

Note that for the following implementation, when you are inside a method that is invoked via $super, access to properties while working in the parent class never resolve to the child class's methods or variables, unless you access a member that is stored directly on the object itself (as opposed to attached to the prototype). This avoids a slew of confusion (read as subtle bugs).

Update: Here is an implementation that works without __proto__. The catch is that using $super is linear in the number of properties the parent object has.

function extend (Child, prototype, /*optional*/Parent) {
    if (!Parent) {
        Parent = Object;
    }
    Child.prototype = Object.create(Parent.prototype);
    Child.prototype.constructor = Child;
    for (var x in prototype) {
        if (prototype.hasOwnProperty(x)) {
            Child.prototype[x] = prototype[x];
        }
    }
    Child.prototype.$super = function (propName) {
        var prop = Parent.prototype[propName];
        if (typeof prop !== "function") {
            return prop;
        }
        var self = this;
        return function () {
            var selfPrototype = self.constructor.prototype;
            var pp = Parent.prototype;
            for (var x in pp) {
                self[x] = pp[x];
            }
            try {
                return prop.apply(self, arguments);
            }
            finally {
                for (var x in selfPrototype) {
                    self[x] = selfPrototype[x];
                }
            }
        };
    };
}

The following implementation is for browsers that support the __proto__ property:

function extend (Child, prototype, /*optional*/Parent) {
    if (!Parent) {
        Parent = Object;
    }
    Child.prototype = Object.create(Parent.prototype);
    Child.prototype.constructor = Child;
    for (var x in prototype) {
        if (prototype.hasOwnProperty(x)) {
            Child.prototype[x] = prototype[x];
        }
    }
    Child.prototype.$super = function (propName) {
        var prop = Parent.prototype[propName];
        if (typeof prop !== "function") {
            return prop;
        }
        var self = this;
        return function (/*arg1, arg2, ...*/) {
            var selfProto = self.__proto__;
            self.__proto__ = Parent.prototype;
            try {
                return prop.apply(self, arguments);
            }
            finally {
                self.__proto__ = selfProto;
            }
        };
    };
}

Example:

function A () {}
extend(A, {
    foo: function () {
        return "A1";
    }
});

function B () {}
extend(B, {
    foo: function () {
        return this.$super("foo")() + "_B1";
    }
}, A);

function C () {}
extend(C, {
    foo: function () {
        return this.$super("foo")() + "_C1";
    }
}, B);


var c = new C();
var res1 = c.foo();
B.prototype.foo = function () {
    return this.$super("foo")() + "_B2";
};
var res2 = c.foo();

alert(res1 + "\n" + res2);
share|improve this answer
    
.__proto__ is non-standard. I'm afraid I can't use this solution. –  Raynos Nov 7 '11 at 20:21
    
I'll try to get some more ideas and post 'em if I do. –  Thomas Eding Nov 7 '11 at 20:37
    
@Raynos: I updated the content. –  Thomas Eding Nov 7 '11 at 21:25
    
Your using the same overwrite function and change the value of super before and after trick that john resig used. Except it's slightly more confusing –  Raynos Nov 7 '11 at 21:32
1  
Okay, I tested it. Resig's code has the flaw I surmised, which I think it is very undesirable. –  Thomas Eding Nov 7 '11 at 21:49

The main difficulty with super is that you need to find what I call here: the object that contains the method that makes the super reference. That is absolutely necessary to get the semantics right. Obviously, having the prototype of here is just as good, but that doesn’t make much of a difference. The following is a static solution:

// Simulated static super references (as proposed by Allen Wirfs-Brock)
// http://wiki.ecmascript.org/doku.php?id=harmony:object_initialiser_super

//------------------ Library

function addSuperReferencesTo(obj) {
    Object.getOwnPropertyNames(obj).forEach(function(key) {
        var value = obj[key];
        if (typeof value === "function" && value.name === "me") {
            value.super = Object.getPrototypeOf(obj);
        }
    });
}

function copyOwnFrom(target, source) {
    Object.getOwnPropertyNames(source).forEach(function(propName) {
        Object.defineProperty(target, propName,
            Object.getOwnPropertyDescriptor(source, propName));
    });
    return target;
};

function extends(subC, superC) {
    var subProto = Object.create(superC.prototype);
    // At the very least, we keep the "constructor" property
    // At most, we preserve additions that have already been made
    copyOwnFrom(subProto, subC.prototype);
    addSuperReferencesTo(subProto);
    subC.prototype = subProto;
};

//------------------ Example

function A(name) {
    this.name = name;
}
A.prototype.method = function () {
    return "A:"+this.name;
}

function B(name) {
    A.call(this, name);
}
// A named function expression allows a function to refer to itself
B.prototype.method = function me() {
    return "B"+me.super.method.call(this);
}
extends(B, A);

var b = new B("hello");
console.log(b.method()); // BA:hello
share|improve this answer
    
Your static solution is a reasonable example, but it's not clear how your generalize it since you hard coded "me" into it. I'd also argue that super(B).method is nicer then me.super.method. –  Raynos Nov 15 '11 at 14:28
    
Also if B shadows a method of A and A.prototype.method refers to that method, should A's or B's method be invoked? Which one is correct? –  Raynos Nov 15 '11 at 14:32
    
@Raynos: “me” only exists inside the function, it thus also works for several methods. Try: (function me() { console.log(me) }()); console.log(me); –  Axel Rauschmayer Nov 15 '11 at 15:04
    
@Raynos: As to whether A’s or B’s method should be used – that depends. The norm in OO programming is B’s method (because it overrides). If you want to do a “sideways reference”, you probably should use a function in a closure, instead. –  Axel Rauschmayer Nov 15 '11 at 15:12

JsFiddle:

What is wrong with this?

'use strict';

function Class() {}
Class.extend = function (constructor, definition) {
    var key, hasOwn = {}.hasOwnProperty, proto = this.prototype, temp, Extended;

    if (typeof constructor !== 'function') {
        temp = constructor;
        constructor = definition || function () {};
        definition = temp;
    }
    definition = definition || {};

    Extended = constructor;
    Extended.prototype = new this();

    for (key in definition) {
        if (hasOwn.call(definition, key)) {
            Extended.prototype[key] = definition[key];
        }
    }

    Extended.prototype.constructor = Extended;

    for (key in this) {
        if (hasOwn.call(this, key)) {
            Extended[key] = this[key];
        }
    }

    Extended.$super = proto;
    return Extended;
};

Usage:

var A = Class.extend(function A () {}, {
    foo: function (n) { return n;}
});
var B = A.extend(function B () {}, {
    foo: function (n) {
        if (n > 100) return -1;
        return B.$super.foo.call(this, n+1);
    }
});
var C = B.extend(function C () {}, {
    foo: function (n) {
        return C.$super.foo.call(this, n+2);
    }
});

var c = new C();
document.write(c.foo(0) + '<br>'); //3
A.prototype.foo = function(n) { return -n; };
document.write(c.foo(0)); //-3

Example usage with privileged methods instead of public methods.

var A2 = Class.extend(function A2 () {
    this.foo = function (n) {
        return n;
    };
});
var B2 = A2.extend(function B2 () {
    B2.$super.constructor();
    this.foo = function (n) {
        if (n > 100) return -1;
        return B2.$super.foo.call(this, n+1);
    };
});
var C2 = B2.extend(function C2 () {
    C2.$super.constructor();
    this.foo = function (n) {
        return C2.$super.foo.call(this, n+2);
    };
});

//you must remember to constructor chain
//if you don't then C2.$super.foo === A2.prototype.foo

var c = new C2();
document.write(c.foo(0) + '<br>'); //3
share|improve this answer

Have a look at the Classy library; it provides classes and inheritance and access to an overridden method using this.$super

share|improve this answer
    
Ew! That overwrites methods with new functions which set the value of this.$super to the "correct value" before and after. It also swallows errors :( –  Raynos Nov 7 '11 at 12:18

For those who do not understand the recursion problem the OP presents, here is an example:

function A () {}
A.prototype.foo = function (n) {
    return n;
};

function B () {}
B.prototype = new A();
B.prototype.constructor = B;
B.prototype.$super = A.prototype;
B.prototype.foo = function (n) {
    if (n > 100) return -1;
    return this.$super.foo.call(this, n+1);
};

function C () {}
C.prototype = new B();
C.prototype.constructor = C;
C.prototype.$super = B.prototype;
C.prototype.foo = function (n) {
    return this.$super.foo.call(this, n+2);
};


alert(new C().foo(0)); // alerts -1, not 3

The reason: this in Javascript is dynamically bound.

share|improve this answer
1  
This B.prototype = new A(); is pretty bad to me. –  ZenMaster Nov 7 '11 at 5:51
    
@ZenMaster: What else would you do? That is how you do prototypal inheritance in JS. Of course, I would have some sort of function that wraps the functionality, but the concept is the same. That said, I just realized that my $super is implemeneted in a way that breaks condition 1. I can't think of a fix at the moment. –  Thomas Eding Nov 7 '11 at 16:58
    
@trinithis the correct thing is B.prototype = Object.create(A.prototype) –  Raynos Nov 7 '11 at 21:50
    
It's only a problem if, in the example, you are expecting this within B.prototype.foo to reference an instance of B, whereas it references an instance of C. Isn't static binding available in ES5 with Function.prototype.bind? Or you could use a closure. –  RobG Nov 8 '11 at 4:59
1  
Closures won't solve the problem. Bind won't solve the problem. It has to do with this always containing references to the child class's methods. –  Thomas Eding Nov 8 '11 at 18:51

In the spirit of completeness (also thank you everyone for this thread it has been an excellent point of reference!) I wanted to toss in this implementation.

If we are admitting that there is no good way of meeting all of the above criteria, then I think this is a valiant effort by the Salsify team (I just found it) found here. This is the only implementation I've seen that avoids the recursion problem but also lets .super be a reference to the correct prototype, without pre-compilation.

So instead of breaking criteria 1, we break 5.

the technique hinges on using Function.caller (not es5 compliant, though it is extensively supported in browsers and es6 removes future need), but it gives really elegant solution to all the other issues (I think). .caller lets us get the method reference which lets us locate where we are in the prototype chain, and uses a getter to return the correct prototype. Its not perfect but it is widely different solution than what I've seen in this space

var Base = function() {};

Base.extend = function(props) {
  var parent = this, Subclass = function(){ parent.apply(this, arguments) };

    Subclass.prototype = Object.create(parent.prototype);

    for(var k in props) {
        if( props.hasOwnProperty(k) ){
            Subclass.prototype[k] = props[k]
            if(typeof props[k] === 'function')
                Subclass.prototype[k]._name = k
        }
    }

    for(var k in parent) 
        if( parent.hasOwnProperty(k)) Subclass[k] = parent[k]        

    Subclass.prototype.constructor = Subclass
    return Subclass;
};

Object.defineProperty(Base.prototype, "super", {
  get: function get() {
    var impl = get.caller,
        name = impl._name,
        foundImpl = this[name] === impl,
        proto = this;

    while (proto = Object.getPrototypeOf(proto)) {
      if (!proto[name]) break;
      else if (proto[name] === impl) foundImpl = true;
      else if (foundImpl)            return proto;
    }

    if (!foundImpl) throw "`super` may not be called outside a method implementation";
  }
});

var Parent = Base.extend({
  greet: function(x) {
    return x + " 2";
  }
})

var Child = Parent.extend({
  greet: function(x) {
    return this.super.greet.call(this, x + " 1" );
  }
});

var c = new Child
c.greet('start ') // => 'start 1 2'

you can also adjust this to return the correct method (as in the original post) or you can remove the need to annotate each method with the name, by passing in the name to a super function (instead of using a getter)

here is a working fiddle demonstrating the technique: jsfiddle

share|improve this answer

I think I have a more simple way....

function Father(){
  this.word = "I'm the Father";

  this.say = function(){
     return this.word; // I'm the Father;
  }
}

function Sun(){
  Father.call(this); // Extend the Father

  this.word = "I'm the sun"; // Override I'm the Father;

  this.say = function(){ // Override I'm the Father;
    this.word = "I was changed"; // Change the word;
    return new Father().say.apply(this); // Call the super.say()
  }
}

var a = new Father();
var b = new Sun();

a.say() // I'm the father
b.ay() // I'm the sun
b.say() // I was changed
share|improve this answer
    
-1: That answer is not very useful. It does not use prototyping at all. Esp. the new Father().say.apply(this) work around is terrible. –  Kay Jun 18 '13 at 22:18
    
The spirit of what you are trying to say is correct. Your implementation is far from being close. With the understanding that this is an extremely contrived example, a correct implementation is illustrated in this jsbin –  Sukima Apr 30 at 12:30

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

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