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I've found some interesting examples on SO. Among them was link to this article. It's said that:

Function.__proto__ points to Function.prototype. This results in:

 Function.constructor === Function

That is to say: Function is it's own constructor!

Object instanceof Object == true.

This is because:

Object.__proto__.__proto__.constructor == Object 

Note also that unlike Object instanceof Object, Foo instanceof Foo == false. This is because: Foo does not exist as a constructor for it's own prototype chain.

From Mozilla developer network I've found out that both prototypes and constructor functions can easily be overriden. And since instanceof just checks constructor.prototype in prototype chain, I don't really get why my code still returns false.

function Foo() { } ;
Foo.prototype = Foo
Foo.constructor = Foo
Foo instanceof Foo // still false

There a little quetions on prototypes also. Did I get it right, that prototype itself is a separate auxillary object? And this object is like a pointer on another object - usually Object.

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2 Answers 2

up vote 4 down vote accepted

obj instanceof does not look for constructor in obj.prototype, but in the object's internal __proto__ property.

Every object in javascript has an internal __proto__ property which references the object's prototype. When an object is constructed using the new operator, that object's internal __proto__ property is set to the constructor's prototype property.

Thus, when you say Foo instanceof Foo, the javascript VM will look for "Foo" in Foo.__proto__. Because Foo is a function, Foo.__proto__ is Function.prototype (where Function is the constructor of functions).

Since you cannot actually change an object's internal __proto__ property, Foo can never be an instance of Foo.


About your little question: in javascript, everything is an object. This includes prototypes and functions. In fact, ECMAScript 5 added a function Object.create (MDN) which takes an object as its first parameter, and in turn creates a new object using the first object as its internal prototype object.

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Hmm... Could someone tell me how to turn the bold proto into _ _ proto _ _ ? –  Bart Apr 14 '13 at 0:07
    
Sorry for an overlapping answer, yours was a good one. I don't know how to escape the bold markdown, other than wrapping it in a code segment, like you've done earlier in your answer. –  Hannes Johansson Apr 14 '13 at 0:35
    
Thank you for answer, indeed it is. I've tried to change __proto__ and JS VM showed and error of cycling of objects. –  Johnny_D Apr 14 '13 at 11:23
1  
@Johnny_D __proto__ chains can never be cyclic. If you look up a property in an object (e.g. obj.value) but that property isn't there, it's looked up in object's __proto__. If the property isn't there either, __proto__.__proto__ is looked up, until the property is found or __proto__ is null. With cyclic prototype chains, this would cause infinite recursion. –  Bart Apr 14 '13 at 12:21
    
Agreed, but it's somehow hadnled in case of Function object –  Johnny_D Apr 14 '13 at 18:54

It's important to remember that an object's actual, internal prototype reference that is part of the prototype chain is not the same thing as the object's prototype property. An object's internal prototype is set to its constructor's prototype property.

The article I found most comprehensible when learning this was actually this one.

In other words, the only point in changing the prototype property of an object is if that object is a function that should be used as a constructor. Other than that, there's nothing magical about it, it's just a property. Changing prototype doesn't change __proto__ and will not affect an object's prototype chain.

So, going through the code:

function Foo() {}

Foo's constructor is actually Function at this point, and Function.prototype is Foo's actual, internal prototype, or __proto__ if you will.

Foo.prototype = Foo;

This only changes Foo's prototype property, but not it's internal prototype.

Foo.constructor = Foo

This actually only sets the constructor property on Foo, it does nothing with Foo.prototype.constructor and it doesn't do anything with Foo's internal prototype's constructor either, which is what instanceof checks.


Try this sequence of code, hopefully it will be a bit clearer:

function Foo() { } ;

(Foo.prototype != Function.prototype && Foo.__proto__ == Function.prototype);

Foo.prototype = Foo;

(Foo.prototype == Foo && Foo.__proto__ != Foo && Foo.__proto__ == Function.prototype);

Foo.constructor = Foo;

(Foo.constructor == Foo && Foo.prototype.constructor == Foo && Foo.__proto__.constructor != Foo);
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Thanks an article and comments, now it looks neater for me. –  Johnny_D Apr 14 '13 at 11:28
    
Seems that in last you example should be Foo.prototype.constructor == Foo –  Johnny_D Apr 14 '13 at 11:34
    
Yes, thanks. A function's prototype.constructor is always the function itself, unless changed explicitly. –  Hannes Johansson Apr 14 '13 at 11:39

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