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Please run the following code snippet 1 and see what is happening in JS console:

My questions are regarding the last line in the snippet:

  1. Why is F.prototype.method; changed?
  2. How should I redefine Fcustom.prototype.method in order to not change F.prototype.method?

Note: I am using jQuery and underscore to extend the function.


  • 1 Test code snippet:

    var F = function () {};
    F.prototype.method = function () {
        // some code
    }
    
    F.prototype.method; // it shows "some code"
    
    
    Fcustom = $.extend(true, F, {});
    
    _.extend(Fcustom.prototype, {
    method: function () {
        // other code
        }
    });
    
    Fcustom.prototype.method; // it shows "other code"
    
    F.prototype.method; // it shows "other code" instead of "some code" Why?
    
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1  
Do you want to clone the function F to Fcustom? –  pimvdb Aug 30 '12 at 11:28
    
Unfortunately you cannot clone functions... –  Felix Kling Aug 30 '12 at 11:49

1 Answer 1

var obj = { myMethod : function() { 
              //some code
          }
};

var newObj = $.extend(true, {}, obj);

newObj.myMethod = function (){       
   //new method
};

newObj.myMethod();  //should call the new method

While,

obj.myMethod(); //still calls the old "//some code"

DEMO:

share|improve this answer
    
I think you meant to swap the arguments to $.extend. –  pimvdb Aug 30 '12 at 11:27
    
@pimvdb: In short. Yes. But it thought it would be better to demonstrate that the first argument is the target of the change. While the original remains untouched. All without directly tampering with prototype. –  Robin Maben Aug 30 '12 at 11:29
    
I understand but your last comment of the first snippet is not correct, I'm afraid. –  pimvdb Aug 30 '12 at 11:32
    
@pimvdb: I'm sorry I already made an edit to my comment. The way I see it - OP is trying to 1. get a clone of the original 2. then change its implementation. I hope I haven't gone wrong with that much, right? –  Robin Maben Aug 30 '12 at 11:38
    
You're correct :) But my point is that newObj.myMethod === obj.myMethod so both calls refer to the "some code" function. –  pimvdb Aug 30 '12 at 11:41

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