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I'd like to use a constructor's static properties during initialization as such:

var MyConstructor = function() {
  this.foo = 'foo';
  this.set_bar();
}

MyConstructor.bar = "bar";

MyConstructor.prototype = {
  set_bar: function() {
    this.bar = this.constructor.bar;
  }
}

var myObj = new MyConstructor();

This seems to work just fine in new browsers, but does it fail in old browsers? I've been having trouble finding this out on Google. I'm wondering whether some browsers set this.constructor after construction, such that the property is not available during construction.

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Why don't you put bar as an instance property just like foo? What's the purpose of doing what you're doing? –  elclanrs Mar 14 '13 at 22:44
    
I'm using such code in conjunction with Backbone and Backbone's extend; I want to keep some things as properties of the constructor for clarity. –  dimadima Mar 14 '13 at 22:48
    
This was a very confused question. –  dimadima Mar 15 '13 at 0:46

1 Answer 1

up vote 1 down vote accepted

There is no setting properties, they are looked up on the object. If the property isn't on the object, it's looked up on the object's prototype object. If it's not on the object's prototype object, it's looked up on the object's prototype object's prototype object and so on.

Your code does not work as expected because MyConstructor.prototype = overwrites the default prototype object which has the proper constructor. So MyConstructor.prototype does not have a constructor property and neither does myObj. So this.constructor === Object, not MyConstructor. Object.bar is undefined, and so is myObj.bar as a consequence.

The fix is either extending the default prototype instead of overwriting, or reinserting the constructor:

MyConstructor.prototype = {
    set_bar: function() {
        this.bar = this.constructor.bar;
    },

    constructor: MyConstructor
}
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I guess Backbone's extend is already doing this for me: var Surrogate = function(){ this.constructor = child; }; Surrogate.prototype = parent.prototype; child.prototype = new Surrogate; –  dimadima Mar 14 '13 at 22:50
    
Yeah it is extending instead of overwriting like you are doing in the OP –  Esailija Mar 14 '13 at 22:51
    
I'm overwriting? –  dimadima Mar 14 '13 at 22:52
    
@dimadima yes, MyConstructor.prototype = overwrites. Another consequence of overwriting is that already existing objects are pointing to the old prototype object and thus don't get the methods in the overwriting prototype object. –  Esailija Mar 14 '13 at 22:53
    
I mean, I guess so, but in the code above I've got a function that's the result of a function expression, so overwriting its prototype with an object literal isn't really overwriting is it? Do I lose something this way? I intentionally left Backbone out of the question because this isn't Backbone related. –  dimadima Mar 14 '13 at 22:55

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