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Editorial Team
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Asked: 2026-05-27T22:42:32+00:00

I don’t understand why fooA and fooB outcome different. var foo = function(){} fooA

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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 Answer

  1. Editorial Team

    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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