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function Person(){
    this.scream = function(){
        alert('NO NO NO!!!!');
    };
}

var steve = new Person();
steve.scream() // NO NO NO!!!!
Person.prototype.scream = function(){
    alert('YES YES YES!!!!');
}
steve.scream() // still NO NO NO!!!!

Is there a way to override 'scream' without referencing steve explicitly? Think about the cases when you have may instances of Person.

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3 Answers 3

up vote 2 down vote accepted

No,

Having that Person declaration, every time you create a new "instance" of it the "constructor" will run and you'll create a completely new scream function (closure) which you don't have any reference to, except from the newly created object, steve.scream that is.

As an alternative you may do it like this:

function Person(){}

Person.prototype.scream = function(){
    alert('NO NO NO!!!!');
}

var steve = new Person();
steve.scream() // NO NO NO!!!!
Person.prototype.scream = function(){
    alert('YES YES YES!!!!');
}
steve.scream() // this time is YES YES YES!!!!

In which case the initial scream "method" is available only in one place, on the prototype, and you can overwrite it for all "instances".

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function Person(){};
Person.prototype.scream = function(){ alert('NO NO NO!!!!'); };
var steve = new Person();
steve.scream();
Person.prototype.scream = function(){alert('YES YES YES!!!!');};
steve.scream();
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and, if you want to continue to use your code style, you may like

function Person(){
    this.constructor.prototype.scream = function(){
        alert('NO NO NO!!!!');
    };
}
var steve = new Person();
steve.scream();
Person.prototype.scream = function(){ alert('YES YES YES!!!!'); };
steve.scream();
share|improve this answer
    
this is different BTW, probably wrong, because the constructor chain will alter your prototypes –  user652649 Oct 6 '11 at 11:22
    
Also, access to closure is corrupted. The scream function is common to all the instances, while closure should be per instance. –  viebel Nov 17 '11 at 8:22

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