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I am trying to read source code of jQuery but some basic concept stops me. To make it simple, I write the following code, but the output turn out to be weird.

function Foo(){
var foo = new Foo();
var foo2 = new Foo();

console.log(Foo.toString == Foo.prototype.toString); // false
console.log(foo.toString === Foo.toString); // false
console.log(foo.toString == foo2.toString); // true

I can't tell why the first and the second are false. I've learned that any custom object must inherit Object, and I didn't override toString method at all, but why foo.toString !== Foo.toString !== Foo.prototype.toString ???

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Not a javascript expert but I believe .toString is a function and should be used as .toString() – slash197 May 29 '12 at 9:35

2 Answers 2

The first two are false because you are comparing a method of a function against a method of an object.
That would not be a problem by itself, but functions override toString. So essentially, you are comparing Function.prototype.toString and Object.prototype.toString, which are different functions.

console.log(Foo.toString == Foo.prototype.toString);

Is the same as Function.prototype.toString == Object.prototype.toString, since Foo is a function and inherits from Function.prototype, but Foo.prototype is an object, inheriting from Object.prototype.

console.log(foo.toString === Foo.toString);

Same here. foo is an object, inheriting from Foo.prototype, which is an object.

These output true:

console.log(Foo.toString == Function.prototype.toString); // true
console.log(foo.toString === Object.prototype.toString); // true
console.log(foo.toString === Foo.prototype.toString); // true

The last one is true because the foo is created through the constructor function Foo and therefore inherits from Foo's prototype, Foo.prototype.

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I am a little bit confused. Since Foo is an instance of Function, and I didn't override toString method, so when I reference to Foo.toString, it should search the prototype chain. Therefore Foo.prototype is searched. In this case, Foo.toString should be eaqual to Foo.prototype.toString, isn't it? – ForbetterCoder May 29 '12 at 14:35

You're not comparing the output of the methods, you're comparing the references. In javascript, the equal operators compare the references, except for primitive values (to keep it simple).

Example in code:

var foo = 5, bar = 5;
foo === bar // true

var foo = function() {}, bar = function() {};
foo === bar // false

// If you were to compare the outputs, the following would be true:
foo() === bar() // true

To come back to your example:

  • Foo.toString is not the same reference as Foo.prototype.toString, but it is the same reference as Function.prototype.toString.
  • foo.toString is not the same reference as Foo.toString. It is the same as Foo.prototype.toString (check foo.toString === Foo.prototype.toString, it is true).
  • foo and foo2 are two different objects. This is why their methods are not the same reference.

Some examples to illustrate:

Foo.toString === Function.prototype.toString // true
foo.toString === Foo.prototype.toString
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