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.

I tried to simulate the 'new' operator in JavaScript in a code like this:

Function.method('new', function ( ) {
    var objPrototype = Object.create(this.prototype);
    var instance = this.apply(objPrototype, arguments);

    return instance;
});

However, in order to cover all the cases, the return statement should look like this:

return (typeof instance === 'object' && instance ) || objPrototype;

Now for the tests:

var SomeClass = function (param1, param2) {
    this.param1 = param1;
    this.param2 = param2;
};

var test1 = String.new('test1'); //in this case, the "instance" variable is an object
var test2 = SomeClass.new('test1', 'test2'); // in this case, the "instance" variable is undefined

Is this exactly what the 'new' operator does? Is there any case left to cover?

share|improve this question
1  
Umm... how about using the new operator? This seems somewhat like a reinvention of a rather old wheel. –  spender May 3 '12 at 9:31
1  
Yep..but I still want to understand exactly what happens behind the scenes. –  cosmi.nu May 3 '12 at 9:33
    
For educational purposes? Fair enough... –  spender May 3 '12 at 9:33
    
Just playing around with inheritance –  cosmi.nu May 3 '12 at 9:37

3 Answers 3

up vote 7 down vote accepted

From the specification:

11.2.2 The new Operator #

The production NewExpression : new NewExpression is evaluated as follows:

  1. Let ref be the result of evaluating NewExpression.
  2. Let constructor be GetValue(ref).
  3. If Type(constructor) is not Object, throw a TypeError exception.
  4. If constructor does not implement the [[Construct]] internal method, throw a TypeError exception.
  5. Return the result of calling the [[Construct]] internal method on constructor, providing no arguments (that is, an empty list of arguments).

The production MemberExpression : new MemberExpression Arguments is evaluated as follows:

  1. Let ref be the result of evaluating MemberExpression.
  2. Let constructor be GetValue(ref).
  3. Let argList be the result of evaluating Arguments, producing an internal list of argument values (11.2.4).
  4. If Type(constructor) is not Object, throw a TypeError exception.
  5. If constructor does not implement the [[Construct]] internal method, throw a TypeError exception.
  6. Return the result of calling the [[Construct]] internal method on constructor, providing the list argList as the argument values.

In either case, all steps are correctly followed:

var objPrototype = Object.create(this.prototype);    // 1-4 1-5
var instance = this.apply(objPrototype, arguments);  // 5   6

The point of interest is 2.
The specification for [[construct]] states:

When the [[Construct]] internal method for a Function object F is called with a possibly empty list of arguments, the following steps are taken:

  • Let obj be a newly created native ECMAScript object.
    . . .
  • Let result be the result of calling the [[Call]] internal property of F, providing obj as the this value and providing the argument list passed into [[Construct]] as args.
  • If Type(result) is Object then return result.
  • Return obj.

typeof obj returns "object" for null, while null is not an object. However, since null is a falsy value, your code also works as intended:

return (typeof instance === 'object' && instance ) || objPrototype;
share|improve this answer
    
Hopefully JavaScript is compatible 100% with ECMASCript when it comes to the new operator. Thanks for the answer! –  cosmi.nu May 3 '12 at 11:34
    
This answer forgets about the case when this.prototype is not a ES-Object. The value null will be accepted by Object.create, though it should use Object.prototype instead. –  Bergi Jun 28 '12 at 17:46

The new operator takes a function F and arguments: new F(arguments...). It does three easy steps:

  1. Create the instance of the class. It is an empty object with its __proto__ property set to F.prototype. Initialize the instance.

  2. The function F is called with the arguments passed and this set to be the instance.

  3. Return the instance

Now that we understand what the new operator does, we can implement it in Javascript.

    function New (f) {
/*1*/  var n = { '__proto__': f.prototype };
       return function () {
/*2*/    f.apply(n, arguments);
/*3*/    return n;
       };
     }

And just a small test to see that it works.

function Point(x, y) {
  this.x = x;
  this.y = y;
}
Point.prototype = {
  print: function () { console.log(this.x, this.y); }
};

var p1 = new Point(10, 20);
p1.print(); // 10 20
console.log(p1 instanceof Point); // true

var p2 = New (Point)(10, 20);
p2.print(); // 10 20
console.log(p2 instanceof Point); // true
share|improve this answer
    
Closure to the rescue! Interesting approach. –  cosmi.nu May 3 '12 at 11:37

Here is an alternative to using the __proto__ approach. Its in line with how the OP initially started out...

function New(fn) {
    var newObj = Object.create(fn.prototype);
    return function() {
        return fn.apply(newObj, arguments);
        return newObj;
    };
}

This is a much cleaner way of doing it, and it passes prototype chain tests too.

share|improve this answer

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.