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can anyone please help with the below code. I am trying to understand multiple inheritance not sure why its not working. BTW below if the code for multiple inheritance. Thanks

<!DOCTYPE html PUBLIC "-//W3C//DTD XHTML 1.0 Strict//EN"
    "http://www.w3.org/TR/xhtml1/DTD/xhtml1-strict.dtd">

<html xmlns="http://www.w3.org/1999/xhtml" xml:lang="en" lang="en">
<head>
    <meta http-equiv="Content-Type" content="text/html; charset=utf-8"/>

    <title>Test Doc</title>
    <script type="text/javascript">
    function classX(){
        this.messageX="this is X Message";
        this.alertX=function(){
            alert(this.messageX);
        };
    }
    function classY(){
        this.messageY="this is Y Message";
        this.alertY=function(){
            alert(this.messageY);
        };
    }
    function classZ(){
        classX.apply(this);
        classY.apply(this);
        this.messageZ="this is Z Message";
        this.alertZ=function(){
            alert(this.messageZ);
        };
    }
    var abjz=new classZ();
    objz.alertZ();
    abjz.alertX();
    </script>
</head>

<body>


</body>
</html>
share|improve this question
    
I may be completely off base here, but wouldn't your apply want arguments and not this? (Or maybe even use call instead of apply) –  Brad Christie Sep 10 '11 at 18:14
4  
He/she wants to have the "classX" and "classY" functions operate on the same context as the new object in the "classZ" constructor. The first argument to "apply()" is the context object to use (the this value). –  Pointy Sep 10 '11 at 18:15
    
I've written a module for that, you can download it from npm npmjs.org/package/nmix or github github.com/topcloudsystems/nmix. If you want more info on the rationale behind it, check out my blog: ncombo.wordpress.com/2012/12/29/javascript-multiple-inheritance –  Jon Dec 30 '12 at 10:32

5 Answers 5

up vote 6 down vote accepted

You misspelled "abjz" in the call to "alertZ()".

With that corrected, the code works fine, as far as I can tell (two alerts show up, one for Z and one for X).

share|improve this answer
    
I made that change but still the z alert is only showing up. –  user443946 Sep 10 '11 at 18:18
    
did I use apply correctly? –  user443946 Sep 10 '11 at 18:18
1  
Here is the jsfiddle. It works fine for me. –  Pointy Sep 10 '11 at 18:18

JavaSript does not have true multiple inheritance. You can inherit from only one prototype and then copy the rest of the properties that you want. You can test this by using the instanceof operator.

After fixing the mis-spellings, your demo works, but in actuality, you are not truly inheriting. To do true JS inheritance:

function A(){}
function B(){}
B.prototype = new A;
b = new B;
console.log(b instanceof A, b instanceof B);
//-> true, true

See also

More about JS inheriance on MDN

Quasi-Multiple Inheritance

function ctorX() {
    this.messageX = "this is X Message";
    this.alertX = function() {
        console.log(this.messageX);
    };
}

function ctorY() {
    this.messageY = "this is Y Message";
    this.alertY = function() {
        console.log(this.messageY);
    };
}

function ctorZ() {
    ctorX.call(this); // This is the quasi-multiple inheritance
    this.messageZ = "this is Z Message";
    this.alertZ = function() {
        console.log(this.messageZ);
    };
}
ctorZ.prototype = new ctorY; // This is the actual inheritance

var objz = new ctorZ();
objz.alertZ();
objz.alertY();
objz.alertX();

console.assert(objz instanceof ctorZ, 'objz is not instance of ctorZ');
console.assert(objz instanceof ctorY, 'objz is not instance of ctorY');
console.assert(objz instanceof ctorX, 'objz is not instance of ctorX');
//The last assert will fail since there is no true multiple inheritance

Demo of Quasi-Multiple Inheritance

Avoid Calling the Super Constructor

HMR brought up the point that in some instances, a user wants to inherit from a particular constructor, but the super-constructor requires parameters and will fail w/o them. The way to bypass this is to create a proxy constructor:

function C(x){if(!x) throw new Error;}
function D(){}
function proxyCtor(){/*should be noop*/}
proxyCtor.prototype = C.prototype;
D.prototype = new proxyCtor;

var d = new D;
console.assert(d instanceof C, 'c is not instance of D');
// will err if incorrect, which it's not

Demo

share|improve this answer
    
I'm sorry but what's the point of the same thing twice in log? –  pimvdb Sep 10 '11 at 18:41
7  
It is the only way for the instanceof operator to work. In that case any inefficiency would be negligible if the whole point is to have true inheritance. Also, please don't promote the usage of the word Class when describing JavaScript constructors. –  kzh Sep 10 '11 at 18:57
3  
@ZenMaster and you suggestion would be? –  Alec Jan 15 '13 at 14:30
1  
Stumbled on this using google so maybe other would too. An example of how to inherit without calling the constructor can be found here: stackoverflow.com/questions/16063394/… –  HMR Jun 27 '13 at 1:07
1  
@kzh +1 for updating after so long, I used a function called addProtos to add a bunch of capabilities without inheriting code is here: stackoverflow.com/questions/17314264/… under "event system like implementation" The thing I'm not so happy with is that you have to call a specific init function after creating an instance. –  HMR Jun 28 '13 at 0:01

Your code does not cause inheritance of classX and classY by classZ, it merely copies over their properties/methods.

Object.getOwnPropertyNames(abjz)

reveals:-

messageX,alertX,messageY,alertY,messageZ,alertZ

But for inheritance you want the alert methods to stay only in their respective classes so that any changes to them will be reflected in abjz later. Also, so that there won't be method maintenance issues if you make more instances like abjz.

You could do this:-

var classX = {}
classX.messageX = "this is X Message"
classX.alertX = function(){
    alert(this.messageX)
}

var classY = Object.create(classX)
classY.messageY = "this is Y Message"
classY.alertY = function(){
    alert(this.messageY)
}

var classZ = Object.create(classY)
classZ.messageZ = "this is Z Message"
classZ.alertZ = function(){
    alert(this.messageZ)
}

var abjz = Object.create(classZ)

which is equivalent to:-

function classX(){}
classX.prototype.messageX = "this is X Message"
classX.prototype.alertX = function(){
    alert(this.messageX)
}

function classY(){}
classY.prototype = classX.prototype
classY.prototype.messageY = "this is Y Message"
classY.prototype.alertY = function(){
    alert(this.messageY)
}

function classZ(){}
classZ.prototype = classY.prototype
classZ.prototype.messageZ = "this is Z Message"
classZ.prototype.alertZ = function(){
    alert(this.messageZ)
}

var abjz = new classZ()

Both should output:-

alert( Object.getOwnPropertyNames(abjz) ) //
abjz.alertX()                             // this is X Message
abjz.alertY()                             // this is Y Message
abjz.alertZ()                             // this is Z Message

So now abjz inherits from classZ which inherits from classY which inherits from classX in a linear prototype chain like so:-

abjz --> classZ --> classY --> classX

This is not multiple inheritance though. To get that, abjz needs to inherit directly from each of classX, classY and classZ with no chain, i.e.

abjz --> classZ
abjz --> classY
abjz --> classX

Unfortunately the JS prototype chain system does not permit this, and the flexible benefits of multiple inheritance are killed off by the ordered prototype chain. For example if you also wanted an instance cdef to inherit just from classZ and classX:-

cdef --> classZ --> classX

then in JS the classZ prototype must be changed from classY to classX and that messes up the abjz instance. Whereas in multiple inheritance:-

cdef --> classZ
cdef --> classX

classZ remains nicely unchnaged because there is no awkward chain to deal with.

share|improve this answer
1  
Your first two large code blocks are not equivalent. var classX = {}; classX.messageX = "this is X Message"; is not equal to function classX(){}; classX.prototype.messageX = "this is X Message". The first is creating a single object with properties on it, the second is creating an (assumed) object constructor function with a prototype property. Secondly, classY.prototype = classX.prototype wont work properly. They might work similarly to begin with but if anything changes at runtime things will start to break. It's late for me so I am risking being completely wrong about all of this. :)~ –  kalisjoshua Feb 27 '13 at 3:51
    
@kalisjoshua I think you are right. In the later block the classX.prototype.messageX = "this is X Message" is actually classX.prototype={messageX : "this is X Message"}. The difference is that the property .messageXis not an own property of classX anymore as it has been in the earlier block. In the later block messageX is an own Property of the anonymously created prototype that has been set to object classX.prototype. Since prototype-chain and inheritance is of important here, it is not very precise (one could say wrong)to say the blocks would be equivalent. –  humanityANDpeace Nov 6 '13 at 16:38

JavaScript does not give access to multiple inheritance out of the box.

To use it, you could use a class system that allow multiple inheritance like Ring.js.

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