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I don't understand why fooA and fooB outcome different.

var foo = function(){}

fooA = new foo();

foo.prototype.x = 1;
foo.prototype = { y: 2, z: 3};

console.log(fooA.x, fooA.y, fooA.z);// 1, undefined, undefined

fooB = new foo();
console.log(fooB.x, fooB.y, fooB.z);// undefined, 2, 3
  1. does foo.prototyp = {} override the method defined in front of it?

  2. Why fooA is state in front of prototype.x, it inherit the result, but not y and z?

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1  
Foo.prototype = {} is actually re-defining what Foo is as an object, you're just caught in between an instance defined before and after the change. use console.log(FooA); console.log(FooB); to see the difference clearly. –  Brad Christie Jan 4 '12 at 13:55

3 Answers 3

up vote 3 down vote accepted

The reason for that behavior is that you make foo.prototype point to a new object when using foo.prototype = { y: 2, z: 3};, and existing objects' prototypes don't change when the constructor's prototype property is set to a new value.

A line-by-line explanation of what happens:

var foo = function(){}
foo.prototype is initialized as an empty object (we shall call this object A).

fooA = new foo()
fooA is set to a new foo object, it has its prototype set to foo.prototype (A).

foo.prototype.x = 1
Because fooA's prototype is the same object as foo.prototype, fooA.x becomes 1. In other words, A gets the property x = 1.

foo.prototype = { y: 2, z: 3};
We create a new object that has the properties y = 2 and z = 3. We shall call this object B. foo.prototype is set to the new object.

console.log(fooA.x, fooA.y, fooA.z);
fooA's prototype is still A, which only has the x = 1 property.

fooB = new foo();
We create a new foo object whose prototype is B.

console.log(fooB.x, fooB.y, fooB.z);
fooB's prototype is B, which has the properties y = 2 and z = 3, but not the property x.

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you such kind... thanks. –  Huang Jan 4 '12 at 15:51

Consider

var foo = function(){}

fooA = new foo();

foo.prototype.x = 1;
console.log(fooA.__proto__) // {x:1}

foo.prototype = { y: 2, z: 3};
console.log(fooA.__proto__) // still {x:1}

An object's prototype is assigned at creation time (when calling new) and doesn't change afterwards. See here for details.

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This

F.prototype = { ... };

replaces the prototype object of constructor F. The old prototype object is replaced by a new prototype object.

Instances of F

var f = new F();

have an implicit prototype link which refers to the prototype object of constructor F. However, this reference is established during the initialization of the instance.

For example

var f1 = new F();
F.prototype = { ... };
var f2 = new F();

Here, the prototype link of f1 refers to the old prototype object, while the prototype link of f2 refers to the new prototype object.

Notice that even though the F.prototype object has been replaced, the old prototype object will continue to exist as long as there is at least one instance of F whose prototype link refers to it.

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