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I have an object of mixed knockout observables and standard properties:

var original = {
  a: ko.observable("a"),
  b: "b"
};

I want to create a clone of the original object without any reference to it, so that i can do:

var cloned = clone(original);
cloned.a("a cloned");
original.a(); //-> "a" ERROR HERE

original.a("a original");
cloned.a(); //-> "a cloned" ERROR HERE

and

cloned.b = "b cloned"; 
original.b //-> "b" OK

original.b = "b original";
cloned.b //-> "b cloned" OK

I've tried with that function, but it cause the knockout observable properties to be copyed not cloned:

cloneObj = function(obj){
  if(obj === null || typeof obj !== 'object') return obj;

  var temp = obj.constructor(); // give temp the original obj's constructor
  for (var key in obj) {
    temp[key] = cloneObj(obj[key]);
  }

  return temp;
};

As you can see in this fiddle http://jsfiddle.net/Ep3jY/ the problem only happens with Knockout Observable properties while normal js properties get cloned correctly

For now I use a workaround returning the object with a function but that is quite annoying:

function(){
  return {
    a: ko.observable("a");
  };
}
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sorry, the question is updated: the problem is with knockout observable properties while normal js properties get cloned correctly –  Matteo Pagliazzi Dec 27 '12 at 13:24
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1 Answer

Ok, it seems that the problem is with knockout observables, I solved this way:

cloneObj = function(obj){
  if(ko.isWriteableObservable(obj)) return ko.observable(obj()); //this is the trick
  if(obj === null || typeof obj !== 'object') return obj;

  var temp = obj.constructor(); // give temp the original obj's constructor
  for (var key in obj) {
    temp[key] = cloneObj(obj[key]);
  }

  return temp;
};
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1  
didn't work for me. it's returning a referenced object to the source object. So if you change some value in the output object, it affects the passed one. –  Divpreet Singh Feb 21 '13 at 4:19
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