Dismiss
Announcing Stack Overflow Documentation

We started with Q&A. Technical documentation is next, and we need your help.

Whether you're a beginner or an experienced developer, you can contribute.

Sign up and start helping → Learn more about Documentation →

I had some pseudoclasses that shared a large part of their initialization. I decided to take this initialization out and create a base class, from which they'll inherit.

function BaseClass(param1, param2) {
    ...
}

function SubClassA(param1) {
    ...
}

function SubClassB(param1) {
    ...
}

I want SubClass1 and SubClass2 to inherit from BaseClass in the following manner:

SubClassA(param1) constructor calls BaseClass(param1, "I am A.")

SubClassB(param1) constructor calls BaseClass(param1, "I am B.")

so BaseClass adds some properties to them. Then both subclasses do some initialization of their own.

Now I can't just do SubClassA.prototype = new BaseClass(), because I want the super constructor to take parameters. How to do this elegantly?

share|improve this question
up vote 2 down vote accepted
function SubClassA(param1) {
    BaseClass.call(this, param1, "I Am A.");
}

function SubClassB(param1) {
    BaseClass.call(this, param1, "I Am B.");
}

When you do a new SubClassA(param1) or new SubClassB(param1) base constructor will be called with appropriate parameters.

Also, there are other ways than SubClassA.prototype = new BaseClass() to define base class. You can check this question for some details. (Disclaimer: The question was asked by me.)

share|improve this answer
    
You damn ninjas! ;) – kiswa Apr 4 '12 at 14:26
    
Ah, call() didn't come to my mind. Ok, thanks ;) @kiswa, if you don't mind, I'll accept taskinoor as he was the first poster :) – Imp Apr 4 '12 at 14:33
    
Seems fair to me. But feel free to upvote both! ;) Also, I added a link to MDN for some more details if you're interested. – kiswa Apr 4 '12 at 14:34
    
Is param meant to be param1? Or the other way around? – xtofl Apr 4 '12 at 14:43
    
@xtofl, thanks. That was a typo. Edited now. – taskinoor Apr 4 '12 at 14:46

I made an Objective-JavaScript helper called Class.js - https://github.com/eppz/eppz-js - soley for this reason (without any additional boilerplate code to apply, also cut down prototype hassle).

Using it you can easily make this setup as:

var BaseClass = Class.extend
({
    param1: null,
    param2: null,

    construct: function(param1, param2)
    {
        this.param1 = param1;
        this.param2 = param2;
    },
});

var SubClassA = BaseClass.extend
({
    construct: function(param1)
    {
        this.super.construct(param1, 'This is A.');
    },
});

var SubClassB = BaseClass.extend
({
    construct: function(param1)
    {
        this.super.construct(param1, 'This is B.');
    },
});

var a = new SubClassA('A stuff.');
var b = new SubClassB('B stuff.');

console.log(a.param1); // A stuff.
console.log(b.param1); // B stuff.

console.log(a.param2); // This is A.
console.log(b.param2); // This is B.
share|improve this answer

I have something similar and I do this:

function SubClass (param1) {
    BaseClass.call(this, param1, "I am A.");
}

This gives me all the properties of BaseClass on the instance object of SubClass.

EDIT: Here is some information on the call function. It's useful because you can specify what this is during the call and provide an argument list.

share|improve this answer

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.