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I understand that "__proto__ is an internal property of an object, pointing to its prototype" so in the following example I would think that c2.prototype would equal c2.__proto__. Why do they not have the same value?

<!DOCTYPE html>
<html>
    <head>
        <script type="text/javascript">
            window.onload = function() {
                var Circle = function(radius) {
                    this.radius = radius;
                    this.doubleRadius = function() {
                        return this.radius * 2;
                    }
                }

                var c1 = new Circle(4);

                Circle.prototype.area = function() {
                    return Math.PI*this.radius*this.radius;
                }

                var c2 = new Circle(5);

                console.log('--- first circle object, created before adding "area" method');
                console.log(c1.radius);
                console.log(c1.doubleRadius());
                console.log(c1.area());

                console.log('--- second circle object, created after adding "area" method');
                console.log(c2.radius);
                console.log(c2.doubleRadius());
                console.log(c2.area());

                console.log(c2.prototype); // undefined
                console.log(c2.__proto__); // Object { area=function() }

            }
        </script>
    </head>
<body>
</body>
</html>
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3 Answers

The simple answer is that c2.constructor.prototype == c2.__proto__

Constructors have a .prototype property. Instances don't, but they do have .__proto__ and .constructor properties

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obj.__proto__ is short version of obj.constructor.prototype, not of obj.prototype:

console.log(c2.constructor.prototype === c2.__proto__);   //true
console.log(c2.prototype === c2.__proto__);   //false
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1  
It's not exactly a short version. You can change the prototype of a single instance of an object and not affect others. It is true that both versions point to the same object (unless you've modified it). –  Juan Mendes Jun 14 '12 at 22:10
    
@JuanMendes What does 'change the prototype of a single instance' means? And pls,show me an example,where c2.constructor.prototype != c2.__proto__. –  Engineer Jun 15 '12 at 6:37
    
My comment says, unless you've modified it, I thought it sounded kind of obvious. Here it is jsfiddle.net/mendesjuan/UrqmL I created two instances from the same constructor, modified the __proto__ property of one of them. For the one that's been modified, console.log(a.constructor.prototype == a.__proto__); outputs false –  Juan Mendes Jun 15 '12 at 15:40
    
@JuanMendes Thanks for your time, to make an example. Actually I thought, that by changing you meant kind of c2.__proto__.prop='blabla' things,but not changing the prototype as a whole. –  Engineer Jun 15 '12 at 16:21
    
@Enginner I do see what you mean. In any case, I've never had a situation where I actually did this (since __proto__ is not cross browser), or that I wanted to do this. –  Juan Mendes Jun 15 '12 at 16:26
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Try the below.

console.log(c2.constructor.prototype);
console.log(c2.__proto__);

Acturly, .__proto__ == .constructor.prototype when c2 is a object.

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See my comment on Engineer's answer for a case where this is not true. jsfiddle.net/mendesjuan/UrqmL –  Juan Mendes Jun 15 '12 at 16:27
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