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Why this is not working?

// this one works as I expected, when objSayHello()
Object.prototype.objSayHello = function(){alert('Hello,from OBJECT prototype')};
// NOT working !
Object.prototype ={objSayHello: function(){alert('Hello,from OBJECT prototype')}};

objSayHello();
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  1. Because you've replaced the Object prototype, so you're adding a objSayHello method to any object descending from Object (all objects).

  2. Don't replace Object.prototype.

What you probably want is:

someObj.prototype.objSayHello = function(){alert('Hello,from OBJECT prototype')};

Then to call it with:

someObj.objSayHello();

What you seem to be meaning to do is:

Object.prototype.objSayHello = function(){alert('Hello,from OBJECT prototype')};

But that is probably a bad idea as it will conflict with iterators (for...in) if not handled correctly.

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Object.prototype.objSayHello = function(to){alert('Hello, ' + to)};

The above statement means that you attached the objSayHello function to all the instances that will be created as every instance is child of Object so the attached event bind to all. For instance,

var newObject = {};
var anotherNewObject = new Object();

function person(name) {
 this.name = name;
}
var newPerson = new Person("Ramiz");

newObject.objSayHello("newObject");
anotherNewObject.objSayHello("anotherNewObject");
newPerson.objSayHello(this.name);

While, the other statement is incorrect and will be ignored completely as you're about to discard the prototype of an object which is parent of all. If the prototype of Object can be override then all native instances functionality will be gone. To avoid such a mistake I think this is ignore to be override.

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Object.prototype is for some reason a const, which means read only.

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Object.prototype isn't actually the real prototype, it's only a reference. An internal [[prototype]] object is used as prototype, and it's accessible in some browsers as proto property of an object. Given the way JavaScript variables work, assigning the Object.prototype to another object changes it's reference but without changing internal [[prototype]] object, thus you get an normal property called prototype which says nothing about how object properties are resolved.

So, why does this work when you do Object.prototype.myFunction() ? The Object.prototype is still a reference to the internal [[prototype]] so it has no problem with augmenting it with this function, it works as with any other objects.

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Eyelidlessness is wrong, you simply can't reassign the prototypes of intrinsic types like Object, Number, etc. You can only append new properties.

> Number.prototype
  -> Number
> Number.prototype = {}  // Reassignment fails
  -> Object
> Number.prototype
  -> Number
> Number.prototype.objSayHello = 'hi'  // Appending succeeds
  -> 'hi'
> n = new Number(); n.objSayHello
  -> 'hi'

If you are using your own objects, then you can update or reassign the prototype (note: reassigning the prototype will only affect new objects, not existing ones).

Do not change intrisic prototypes! This is a 'bad thing' because it can cause hard-to-find side effects. If you need a basic type with new properties, then create a new object with the prototype pointing to the basic object:

NewObject = function() {};
NewObject.prototype = Object.prototype;
NewObject.prototype.value = 123;

Now you have a constructor that creates new objects that inherit properties from both its own prototype (eg 'value') as well as the Object prototype ('toString', 'hasOwnProperty'...).

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