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Whats the difference between

Employee.prototype = Object.create(Person.prototype);

and

_.extend(Employee.prototype, Person.prototype);

Both give similar results (output), but the underscore method seems to add the Person.prototype to the Employee.constructor.prototype, and quite abit extra stuff here and there, why?

pure JS

enter image description here

underscoreJS

enter image description here

A nice side effect of _.extend is I can easily do multiple inheritance: seems like it doesnt make the prototype chain longer too ...

_.extend(Employee.prototype, Person.prototype);
_.extend(Employee.prototype, {
    doSomething: function() {
        return "hi ...";
    }
});

But ...

enter image description here

Why is there 2 sayHi and doSomething functions? (actually its the same when I just do 1 extend).

http://jsfiddle.net/VMqSy/1/

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1 Answer 1

up vote 14 down vote accepted

With Employee.prototype = Object.create(Person.prototype); you are completely replacing the Employee.prototype.

But with _.extend(Employee.prototype, Person.prototype); you are adding the Person.prototype on top of the Employee.prototype.

For example,

var a = {var1:1, var2:2};
var b = {var2:4, var3:3};
console.log(_.extend(a, b)); // {var1:1, var2:4, var3:3}

As you see, a it's not completely replaced by b, it's just extended by the properties defined in b.

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Another difference is _.extend seems to extend constructor.prototype (not .extend)? Are they the "same"? Apart from them in different places? –  Jiew Meng Dec 6 '12 at 12:48
    
_.extend modifies the first object passed, so, in my example, b remains untouched, but a it's actually extended by b. In _.extend({}, a, b), a and b remains untouched, and {} it's extended by their properties. –  rdiazv Dec 6 '12 at 13:32

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