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I have the following scenario:

var msp = function () { 
  this.val = 0.00;
  this.disc = 0;

};
Object.defineProperty(msp.prototype, "x", {
                        get: function () {return this.val - this.disc;},
                        toJSON: function () {return this.val - this.disc;},
                        enumerable: true,
                        configurable: true
                    });
var mp = new msp();
JSON.stringify(mp); // only returns {"val":0,"disc":0}

I was hoping that I can somehow set a toJSON method on the property "x" in the defineProperty call, but that didn't work.

Any help would be appreciated.

UPDATE: This is what worked for me:

var obj = function() {
    this.val = 10.0;
    this.disc = 1.5;
    Object.defineProperties(this, {
        test: {
            get: function() { return this.val - this.disc; },
            enumerable: true
        }
    });    
};

var o = new obj;
o.test;
8.5
JSON.stringify(o);   // output: {"val":10,"disc":1.5,"test":8.5}

Note test is not a prototype definition and enumerable has to be set to true.

I tested the above working version in IE9, FF 11 and Chrome 18 - all three gave expected results.

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2 Answers 2

You would need to apply it to the object itself not its prototype like this

var msp = function () { 
  this.val = 0.00;
  this.disc = 0;

};
msp.prototype.dif=function () {this.x = this.val - this.disc;return this;}

var mp = new msp();
JSON.stringify(mp.dif());

However if you are trying to serialize the function that is impossible.

share|improve this answer
    
no, that's not quite right, I need to serialize the whole instance of msp object (mp). so I want to get back {"val":0, "disc":0, "x":0} x of course being the difference between val and disc (if val = 10 and disc = 1 then x should be 9) but the point is that I need all three variables serialized. –  mspisars Apr 13 '12 at 1:08
1  
@mspisars Ok well check this out to understand what the toJSON does developer.mozilla.org/en/JavaScript/Reference/Global_Objects/…. I'll update my answer to I think the only way to get what you want. –  qw3n Apr 13 '12 at 1:18
    
@mspisars I edited the answer. I'm not sure that is what you want, but it will return what you want. –  qw3n Apr 13 '12 at 1:30
    
I got it to work... if I defined the properties like this var obj = function() { this.val = 10.0; this.disc = 1.5; Object.defineProperties(this, { "test": { "get": function() { return this.val - this.disc; }, "enumerable": true } }); }; var o = new obj; o.test; // 8.5 JSON.stringify(o); "{"val":10,"disc":1.5,"test":8.5}" note it is not a prototype definition and enumerable has to be set to true. Thanks for all your help. Michael –  mspisars Apr 13 '12 at 1:42
up vote 1 down vote accepted

This is what worked for me:

var obj = function() {
    this.val = 10.0;
    this.disc = 1.5;
    Object.defineProperties(this, {
        test: {
            get: function() { return this.val - this.disc; },
            enumerable: true
        }
    });    
};

var o = new obj;
o.test;
8.5
JSON.stringify(o);   // output: {"val":10,"disc":1.5,"test":8.5}

Note test is not a prototype definition and enumerable has to be set to true.

I tested the above working version in IE9, FF 11 and Chrome 18 - all three gave expected results.

share|improve this answer

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