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I'm trying to define a non-enumerable toJSON function on a prototype object without much luck. I'm hoping for something similar to ECMAScript 5 toJSON:

Object.defineProperty(obj, prop, { enumerable: false });

However this defines it as a property which cannot be accessed as a method.

I was hoping to be able to define the function in a non-enumerable fashion, as I was planning to define in the prototypes of all primitive types (String, Number, Boolean, Array, and Object), so that I can recursively apply the function through complex objects.

The end goal here is to be able JSONify a Backbone model/collection with nested collections recursively.

I guess in total I have two main questions:

  1. Is it possible to define a non-enumerable function on a prototype? If so how?
  2. Is there a better way to JSONify nested Backbone models?
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A method by definition is a property of an object. You're drawing a distinction that doesn't exist. If you want it to be non-enumerable, then obviously you're enumerating properties of an object. –  Crazy Train Jul 3 '13 at 2:10
    
Yes, however I would like it to be a non-enumerable property, in the same way that Object.defineProperty is non-enumerable. ie, is not iterated through when using for (x in obj) –  Nick Mitchinson Jul 3 '13 at 2:15
    
Right. Again, a method is a property of an object that references a function. The code that you have is what you'd use to make the property non-enumerable. –  Crazy Train Jul 3 '13 at 2:16

2 Answers 2

up vote 2 down vote accepted

I don't get it, why can't you access it as a method?

var foo = {};

Object.defineProperty(foo, 'bar', {
    enumerable: false,
    value: function () {console.log('foo.bar\'d!');}
});

foo.bar(); // foo.bar'd!

If you wanted it on the prototype, it's as easy as

Object.defineProperty(foo.prototype, /* etc */);

or even directly in Object.create

foo.prototype = Object.create(null, {
    'bar': {value: function () {/* ... */}}
});

However, unless you're creating instances of foo, it won't show up if you try to foo.bar, and only be visible as foo.prototype.bar.

If foo has it's own prototype (e.g. foo = Object.create({})), you can get it with Object.getPrototypeOf, add the property to that and then foo.bar would work even if it is not an instance.

var proto = Object.getPrototypeOf(foo); // get prototype
Object.defineProperty(proto, /* etc */);

You can see visibility of enumerable vs non-enumerable properties here.

share|improve this answer
    
Awesome, thanks! The problem was that I was using get instead of value, which I wasn't able to access as a function. –  Nick Mitchinson Jul 3 '13 at 2:14
    
get invokes the function without passing any arguments, then pretends the property is equal to the return of the function, so you were doing SJON()(args) when you wanted to do SJON(args) –  Paul S. Jul 3 '13 at 2:16
    
Okay. One last question if you don't mind; will this approach cause some of the same issues as extending the Object prototype with an enumerable function? –  Nick Mitchinson Jul 3 '13 at 2:20
    
@NickMitchinson no, this will only add the property to the foo user object, he is not adding the property to foo.prototype ;) –  csuwldcat Jul 3 '13 at 2:24
    
Non-enumerable properties will show up as described here. Also, editing. –  Paul S. Jul 3 '13 at 2:24

Paul S. is right about needing to set the property definition's value instead of a get, but I wanted to add that you don't need to pass enumerable: false, because false is the default for that option in Object.defineProperty() The answer can be simplified to:

var foo = {};    

Object.defineProperty(foo, 'bar', {
    value: function(){ console.log('calling bar!'); }
});

foo.bar();
share|improve this answer
    
Thanks, I only included it explicitly to make it clear in the question, but it's a good note that it isn't actually needed. –  Nick Mitchinson Jul 3 '13 at 2:25

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