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Is it possible to call the base method from a prototype method in JavaScript if it's been overridden?

MyClass = function(name){
    this.name = name;
    this.do = function() {
        //do somthing 
    }
};

MyClass.prototype.do = function() {  
    if (this.name === 'something') {
        //do something new
    } else {
        //CALL BASE METHOD
    }
};
share|improve this question
    
Which is the base method? this.do = function(){} in the constructor? – Ionuț G. Stan Feb 18 '09 at 12:41

12 Answers 12

up vote 159 down vote accepted

I did not understand what exactly you're trying to do, but normally implementing object-specific behaviour is done along these lines:

function MyClass(name) {
    this.name = name;
}

MyClass.prototype.doStuff = function() {
    // generic behaviour
}

var myObj = new MyClass('foo');

var myObjSpecial = new MyClass('bar');
myObjSpecial.doStuff = function() {
    // do specialised stuff
    // how to call the generic implementation:
    MyClass.prototype.doStuff.call(this /*, args...*/);
}
share|improve this answer
1  
I don't get this, i came here exactly for the same purpose as markvpc . I mean, i want to have a kind of a "private" method which is used from other methods in the prototype. Your response forces me to create a factory and i'd like to know if there's any way to avoid that. – R01010010 Dec 24 '14 at 3:09
6  
Do not use "Class" words in JS because it creates confusion. There is not classes in JavaScript – Polaris Jan 9 '15 at 13:58
1  
This only works for objects instantiated. What if you want to override all instances? – supertonsky Mar 26 '15 at 10:33
    
Works for me! Exactly what I needed. I have 4 constructors that inherit from a parent. Two of them need to override and call a method on the base constructor that is their prototype. This allowed me to exactly that. – binarygiant Jul 9 '15 at 16:45
2  
I don't understand why this has so many upvotes and is marked as correct. This only overrides the behavior for one instance of the base-class, not all instances of the sub-class. Thus this does not answer the question. – BlueRaja - Danny Pflughoeft Aug 11 '15 at 21:21

Well one way to do it would be saving the base method and then calling it from the overriden method, like so

MyClass.prototype._do_base = MyClass.prototype.do;
MyClass.prototype.do = function(){  

    if (this.name === 'something'){

        //do something new

    }else{
        return this._do_base();
    }

};
share|improve this answer
8  
This will create infinite recursion. – Johan Tidén Sep 21 '12 at 11:34
1  
I've been there: Infinite recursion. – jperelli Nov 28 '13 at 18:31
    
@JohanTidén how? – binki May 7 '15 at 22:01
4  
@JohanTidén the _do_base stores a reference to whatever function was defined before. If there was none, then it’d be undefined. JavaScript is not make—expressions are never lazily evaluated like you suggest they are. Now, if the prototype being inherited from also used _do_base to store what it thinks is its base type’s implementation of do, then you do have a problem. So, yeah, a closure would be a better, inheritance-safe way to store the reference to the original function implementation if using this method—though that would require using Function.prototype.call(this). – binki May 8 '15 at 17:27
1  
@JohanTidén see gist.github.com/binki/0a6b1a3ead735ca2ce8f. – binki May 8 '15 at 17:36

I'm afraid your example does not work the way you think. This part:

this.do = function(){ /*do something*/ };

overwrites the definition of

MyClass.prototype.do = function(){ /*do something else*/ };

Since the newly created object already has a "do" property, it does not look up the prototypal chain.

The classical form of inheritance in Javascript is awkard, and hard to grasp. I would suggest using Douglas Crockfords simple inheritance pattern instead. Like this:

function my_class(name) {
    return {
        name: name,
        do: function () { /* do something */ }
    };
}

function my_child(name) {
    var me = my_class(name);
    var base_do = me.do;
    me.do = function () {
        if (this.name === 'something'){
            //do something new
        } else {
            base_do.call(me);
        }
    }
    return me;
}

var o = my_child("something");
o.do(); // does something new

var u = my_child("something else");
u.do(); // uses base function

In my opinion a much clearer way of handling objects, constructors and inheritance in javascript. You can read more in Crockfords Javascript: The good parts.

share|improve this answer
    
Very nice indeed, but you can't really call base_do as a function, because you lose any this binding in the original do method that way. So, the setup of the base method is a bit more complex, especially if you want to call it using the base object as this instead of the child object. I would suggest something akin to base_do.apply(me, arguments). – Giulio Piancastelli Nov 4 '14 at 10:16
    
Just wondering, why don’t you use var for base_do? Is this on purpose and, if so, why? And, as @GiulioPiancastelli said, does this break this binding within base_do() or will that call inherit the this from its caller? – binki May 8 '15 at 17:40
    
@binki I updated the example. The var should be there. Using call (or apply) allows us to bind this properly. – Magnar May 8 '15 at 23:44

I know this post is from 4 years ago, but because of my C# background I was looking for a way to call the base class without having to specify the class name but rather obtain it by a property on the subclass. So my only change to Christoph's answer would be

From this:

MyClass.prototype.doStuff.call(this /*, args...*/);

To this:

this.constructor.prototype.doStuff.call(this /*, args...*/);
share|improve this answer
5  
Don't do this, this.constructor might not always point to MyClass. – Bergi Jul 31 '14 at 14:11

if you define a function like this (using OOP)

function Person(){};
Person.prototype.say = function(message){
   console.log(message);
}

there is two ways to call a prototype function: 1) make an instance and call the object function:

var person = new Person();
person.say('hello!');

and the other way is... 2) is calling the function directly from the prototype:

Person.prototype.say('hello there!');
share|improve this answer

If I understand correctly, you want Base functionality to always be performed, while a piece of it should be left to implementations.

You might get helped by the 'template method' design pattern.

Base = function() {}
Base.prototype.do = function() { 
    // .. prologue code
    this.impldo(); 
    // epilogue code 
}
// note: no impldo implementation for Base!

derived = new Base();
derived.impldo = function() { /* do derived things here safely */ }
share|improve this answer
function NewClass() {
    var self = this;
    BaseClass.call(self);          // Set base class

    var baseModify = self.modify;  // Get base function
    self.modify = function () {
        // Override code here
        baseModify();
    };
}
share|improve this answer

If you know your super class by name, you can do something like this:

function Base() {
}

Base.prototype.foo = function() {
  console.log('called foo in Base');
}

function Sub() {
}

Sub.prototype = new Base();

Sub.prototype.foo = function() {
  console.log('called foo in Sub');
  Base.prototype.foo.call(this);
}

var base = new Base();
base.foo();

var sub = new Sub();
sub.foo();

This will print

called foo in Base
called foo in Sub
called foo in Base

as expected.

share|improve this answer

No, you would need to give the do function in the constructor and the do function in the prototype different names.

share|improve this answer

In addition, if you want to override all instances and not just that one special instance, this one might help.

function MyClass() {}

MyClass.prototype.myMethod = function() {
  alert( "doing original");
};
MyClass.prototype.myMethod_original = MyClass.prototype.myMethod;
MyClass.prototype.myMethod = function() {
  MyClass.prototype.myMethod_original.call( this );
  alert( "doing override");
};

myObj = new MyClass();
myObj.myMethod();

result:

doing original
doing override
share|improve this answer

An alternative :

// shape 
var shape = function(type){
    this.type = type;
}   
shape.prototype.display = function(){
    console.log(this.type);
}
// circle
var circle = new shape('circle');
// override
circle.display = function(a,b){ 
    // call implementation of the super class
    this.__proto__.display.apply(this,arguments);
}
share|improve this answer
function MyClass() {}

MyClass.prototype.myMethod = function() {
  alert( "doing original");
};
MyClass.prototype.myMethod_original = MyClass.prototype.myMethod;
MyClass.prototype.myMethod = function() {
  MyClass.prototype.myMethod_original.call( this );
  alert( "doing override");
};

myObj = new MyClass();
myObj.myMethod();
share|improve this answer

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