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I think its a 5am brain drain, but I'm having trouble with understanding this.

obj = ['a','b'];
alert( obj.prototype ); //returns "undefined"

Why isn't obj.prototype returning function Array(){ } as the prototype? It does reference Array as the constructor.

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5 Answers 5

up vote 6 down vote accepted

Because the instance doesn't have a prototype, the class* does.

Possibly you want obj.constructor.prototype or alternatively obj.constructor==Array

* to be more accurate, the constructor has the prototype, but of course in JS functions = classes = constructors

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Nah, that isn't it either. alert( obj.constructor.prototype ); returns nothing. –  Geuis Mar 23 '09 at 12:05
    
no, it returns the prototype.toString() - notice how this isn't null, and is not the same thing as returnign nothing - that is the correct reference, what you're doing with it may not be –  annakata Mar 23 '09 at 12:12
    
Ok, so I think I'm understanding. So obj = 'a', obj = {a:'a'}, obj = ['a'], obj = 0 have no prototypes because they are instances. But, obj = function(){} returns "[object Object]" for its prototype –  Geuis Mar 23 '09 at 12:27
    
because function is a constructor so it has a prototype - functions are basically the only things you'll get a prototype reference on, whether those are native functions or your own –  annakata Mar 23 '09 at 12:44
    
long story short - functions are special in JS :D –  annakata Mar 23 '09 at 12:45
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I'm not sure you can access the prototype object from an instance of an object. The following behaviour might help you:

alert(Array); // displays "function Array() { [native code] }"
alert(Array.prototype); // displays ""
alert(['a','b'].constructor); // displays "function Array() { [native code] }"

obj.prototype isn't returning function Array() { ... } as that is the object's constructor.

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‘constructor’ isn't really reliable; it's not present on IE, and has a subtly different behaviour to what it looks like it's doing, which breaks many forms of subclassing. Best avoided if possible! –  bobince Mar 23 '09 at 16:07
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In your example, obj is an instance of an Array, not the class Array itself.

Another way to understand it is that for example, you can't inherit from an instance of an object (or class), you can only inherit from the object (or class) itself, which in your example it means that you could inherit from the Array object, but not from a direct instance of the Array object such as obj.

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Thanks. I tested the idea against other object types and also got the 'undefined' response, so I'm understanding that. The only one that is different is the case of: obj = function(){} This returns [object Object] –  Geuis Mar 23 '09 at 12:39
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Not really my cup of tea, but does this way of defining it make "obj" an array? Tried

obj = new Array();
obj[0] = "a";
obj[1] = "b";

?

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Tried that too, same thing as the array literal –  Geuis Mar 23 '09 at 12:06
    
An array literal is just a more convenient way of creating an array: developer.mozilla.org/en/A_re-introduction_to_JavaScript#Arrays –  Simon Lieschke Mar 23 '09 at 12:32
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According to the ECMA spec, an object's prototype link isn't visible, but most modern browsers (firefox, safari, chrome) let you see it via the __proto__ property, so try:

obj = ['a','b'];
alert( obj.__proto__ );

An object also has the `constructor' property set on construction, so you can try:

obj = ['a','b'];
alert( obj.constructor.prototype );

However, obj.constructor can be changed after an object's contruction, as can obj.constructor.prototype, without changing the actual prototype pointer of obj.

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