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I work with some advanced JavaScript people and they have used the SUPER keyword in their code. I admit, I don't have a good grasp of how and why one can and would use this.

Can someone direct me or show me how to become well versed in its usage and reasoning thereof?

Here are some examples:

openup: function( $super ) {
    $super();
    this.shop.enable_access();
}



addLeft: function( data ) {
    var cell = Element('td');
    if ( data.item_data ) {
        var item = new SRIL(data.item_data);
        item.attach(cell);
        item.show();
    }

    return cell;

}

var SRIL = Class.create(Module, {
initialize: function( $super, data ) {
    $super({ dom: 'show_line' });
    this.data = data;
    if ( data.Type[0] == 'Car' ) {
        //some code
    }
    else {
        // some code
    }
}

});

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1  
do you mean SUPER or super? case matters. –  Eric Strom Jan 6 '12 at 22:34
1  
$super changes things - it isn't a keyword but just a variable. –  pimvdb Jan 6 '12 at 22:39
2  
It looks to me like this code is built on the Prototype.js framework: prototypejs.org/learn/class-inheritance –  Mike Christensen Jan 6 '12 at 22:46

2 Answers 2

JavaScript does not have such a thing.

Update: You should have a look at the documentation of the library that is in use here. This is a library feature, not a language one.

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3  
It is a reserved future keyword, so it does "have" it. I don't know if there is any implementation that uses it, though. –  pimvdb Jan 6 '12 at 22:26
    
Is it not possible to create classes in JS and inherit them as a SUPER class? Think I saw something like that in coffeescript. –  Alex M Jan 6 '12 at 22:29
    
@Alex M: It is possible, but only if you implement it yourself with prototypes, not with JavaScript itself. This questions seems like a Java <-> JavaScript issue to me. –  copy Jan 6 '12 at 22:31
    
@copy: Do you mean prototype inheritance with "prototypes"? Why do you say it is not JavaScript? Prototype inheritance is how JavaScript manages the inheritance of objects. –  Felix Kling Jan 6 '12 at 22:39
    
@FelixKling: I was saying that JavaScript itself does not have a feature to reuse constructors (like Java's super). And it is not possible to create this with the keyword super since it's reserved. So I guessed this was mistake by the original poster. –  copy Jan 6 '12 at 22:49

Since Javascript doesn't have classical inheritance, structured instead according to a prototypal/functional model, developers have made various attempts at re-creating the classical model. super is part of one such strategy. The particular problem it solves is in the case of a child object that has the same method – even if it's just the constructor – as the parent object. Without creating super as an alias to the parent's methods, accessing such methods becomes somewhat cumbersome (and, in some cases, impossible).

John Resig has a wrapper that shows this off fairly well. Note his use of _super() in the first example to call the parent object's dance method.

share|improve this answer
    
I added some examples of what I am seeing in the code for your reference on its usage. –  james emanon Jan 6 '12 at 22:37
    
In those cases, the devs are probably using $super to refer to parent methods directly. In other words I assume $super refers to a parent method called open_up in the first example, and to a parent initialize method in the second. –  glortho Jan 6 '12 at 22:42

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