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Why doesn't JSON.stringify() display prop2?

var newObj = {
  prop1: true,
  prop2: function(){
    return "hello";
  },
  prop3: false
};

alert( JSON.stringify( newObj ) ); // prop2 appears to be missing

alert( newObj.prop2() ); // prop2 returns "hello"

for (var member in newObj) {
    alert( member + "=" + newObj[member] ); // shows prop1, prop2, prop3
}

JSFIDDLE: http://jsfiddle.net/egret230/efGgT/

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1  
@BrandtSolovij: Functions are objects: try running (function() {}) instanceof Object –  Eric May 23 '12 at 23:35

3 Answers 3

up vote 13 down vote accepted

Because JSON cannot store functions. According to the spec, a value must be one of:

Valid JSON values


As a side note, this code will make the functions noticed by JSON.stringify:

Function.prototype.toJSON = function() { return "Unstorable function" }
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So in this case, JSON can't store undefined? –  Derek 朕會功夫 May 23 '12 at 23:32
1  
@Derek: Correct. I think JSON.stringify converts it to null –  Eric May 23 '12 at 23:34
2  
@Derek: JSON.stringify omits members with undefined values. A variable set to undefined is indistinguishable from one that was never set at all. –  apsillers May 23 '12 at 23:38
2  
@apsillers: ...at least from JSON view. Setting a property to undefined will create the property. –  Bergi May 23 '12 at 23:41
1  
Function.prototype.toJSON Nice one! –  Derek 朕會功夫 May 23 '12 at 23:42

It's not supposed to stringify methods (or any functions) - especially since most methods of built in objects (and thus the prototypes of any user-defined objects) are native code.

If you really need it to print your methods out, you can override your object's .toString method, but when you call JSON.parse on the stringified output, it will treat the method as if it were just a string, and to be able to call it as a function you'd have to eval it - a practice that is typically not recommended.

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Here is another way with using a .prototype. You can add an function to stringify

JSON.stringify(obj, function(k, v) {
  if (typeof v === 'function') {
    return v + '';
  }
  return v;
});
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