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Given:

(function() {
 function Foo() {
 }
 $.extend(Foo.prototype, {
  bar: 'hasBeer'
 });
})

Is it possible to change the bar method from outside of that closure?

share|improve this question
1  
Not if you don't have access to Foo or an instance of it. (Foo.prototype.bar is just a string btw ;)) – Felix Kling Jun 21 '12 at 23:26
    
@FelixKling - I have access to it I believe. This example stems from jQuery's ui library (datepicker). Yes, but what if I wanted to change the string to a function? – Travis J Jun 21 '12 at 23:29
    
Need to know more. How is the outer function used? Is anything returned? Is it a namespace pattern? The outer brackets indicate self-execution, (function(){...})(); but where is the execution? – Beetroot-Beetroot Jun 21 '12 at 23:46
up vote 2 down vote accepted

If you have access to the constructor function (Foo) and you want to override bar for all instances, you assign a new value to Foo.prototype.bar.

If you have an instance of Foo, you can either only override bar for that instance:

instance.bar = ...;

or for all instances by, again, overriding the prototype method. For this you have to get the prototype first, which you can do with Object.getPrototypeOf [MDN]:

Object.getPrototypeOf(instance).bar = ...;

But note that this is an ES5 method and is not available IE <= 8 or Opera.


If you neither have access to the constructor, nor an instance, you cannot change the property, other than by modifying the source code.

share|improve this answer
    
Awesome! The second suggestion you made was perfect and I ended up with this: Object.getPrototypeOf($.ui.datepicker).bar = function () { alert("beer"); }; which completely ran a muck. Obviously I will be putting different code there but it did its job. – Travis J Jun 21 '12 at 23:36

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