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Suppose I have a constructor:

function Constructor(input) {
  this.input = input
}

Constructor.prototype.method = function() {
  console.log('a')
}

But I want to make another class using a copy of the constructor, but changing the prototypes.

function Constructor2(input) {
  this.input = input
}

Constructor2.prototype.method = function() {
  console.log('b')
}

I don't want to redefine the constructor. How would you do this? Ideally it would be something as simple as:

var Constructor2 = inherits(Constructor)
Constructor2.prototype.method = // overwrite the inherited `method()`
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You can't do that in same scope. means you can't have two different function with same name –  Anoop Oct 19 '12 at 21:44
    
i see two different functions with two different names –  Jonathan Ong Oct 19 '12 at 21:48
    
This is confusing. Why do you want to do this in the first place. –  aziz punjani Oct 19 '12 at 21:48
    
because i have similar classes with a few different methods –  Jonathan Ong Oct 19 '12 at 21:50
    
var constructor2 = new Constructor(); Then constructor2.method = function(){console.log('overridden method')} –  aziz punjani Oct 19 '12 at 21:52

3 Answers 3

up vote 1 down vote accepted
var inherits = function(childCtor, parentCtor) {
  /** @constructor */
  function tempCtor() {};
  tempCtor.prototype = parentCtor.prototype;
  childCtor.superClass_ = parentCtor.prototype;
  childCtor.prototype = new tempCtor();
  /** @override */
  childCtor.prototype.constructor = childCtor;
};



// How to use it:

var Constructor1 = function() {
//add all your methods, variables etc
};

Constructor1.prototype.myMethod = function() {
};

var Contructor2 = function() {
Contructor1.call(this); // Call the super class constructor
};
inherits(Contstructor2, Constructor1);
// Constructor2 now inherits from Constructor1
// override, add methods variables etc, whatever you need.

// Have fun!
share|improve this answer
    
Yup, this is what I've decided to do (look at my answer). Difference being I use .apply(this, arguments) since my constructor has arguments, and I put function() {Constructor1.call} inside inherits for this specific use case. –  Jonathan Ong Oct 19 '12 at 22:11

Okay, much easier just to use apply:

function newConstructor(Super) {
  function Construct() {
    Super.apply(this, arguments)
  }

  require('util').inherits(Construct, Super)

  return Construct
}
share|improve this answer
    
So all you want is to use the same constructor, but not the same prototype? –  Juan Mendes Oct 19 '12 at 21:54
    
Just add the property at the instance level. –  aziz punjani Oct 19 '12 at 21:54
    
Changing the property at the instance level !== changing the property at the constructor level –  Jonathan Ong Oct 19 '12 at 21:55
    
Can you show a concrete example ? What you're saying doesn't make much sense in the context given. –  aziz punjani Oct 19 '12 at 21:57
    
function Animal(attributes) { _.defaults(this, attributes) }, function Cat(attributes) { _.defaults(this, attributes) }. Animal and Cat have the same constructors, but they might have different movements. You don't want to do var cat = new Animal(attributes), cat.move = function() ... every time you make a new cat. that's retarded. –  Jonathan Ong Oct 19 '12 at 21:58

Here's a nasty-ish solution:

function Constructor1(input) {
  this.input = input;
}

Constructor1.prototype.method = function() {
  console.log('a');
}

// be careful here: evals the string value of Constructor1 with references to "Constructor1" changed to "Constructor2"
eval(Constructor1.toString().replace("Constructor1", "Constructor2"));

Constructor2.prototype.method = function() {
  console.log('b');
}

var c1 = new Constructor1(1);
var c2 = new Constructor2(2);
console.log(c1.constructor === c2.constructor) // true

c1.method() // a
c2.method() // b
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