Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

This is just a quick question since I cant figure out what's the actual problem here, maybe someone has more experience in extending a jquery-ui widget.

I'm trying to change some behaviour in the menu._close method, extending the widget like this:

( function($, undefined ) {
    $.widget('ui.menu', $.ui.menu, {
        _close: function(startMenu) {
            this._super('_close', startMenu)
                    console.log('extension works!')
        } 
    } )
} (jQuery) );

As far as I can tell from the sources I found, this is the correct way. But now, the problem is the _super method. It should call the original menu._close method, and it does - delivering the only parameter startMenu to it. But the parent method fails.

Here is the source of the original jquery-ui menu._close method:

_close: function( startMenu ) {
    if ( !startMenu ) {
        startMenu = this.active ? this.active.parent() : this.element;
    }

    startMenu
        .find( ".ui-menu" )
        .hide()
        .attr( "aria-hidden", "true" )
        .attr( "aria-expanded", "false" )
        .end()
        .find( "a.ui-state-active" )
        .removeClass( "ui-state-active" );
}

Now, it tells me TypeError: startMenu.find is not a function, and yes, it's not because this.element is not an actual jQuery object. But my question is, why?

I only extended the method, whitout changing any functionality, only adding a debug mesasge after the original method was called, delivering the only parameter to it. What am I doing wrong here?

Thanks in advance, have a nice weekend!

share|improve this question

1 Answer 1

up vote 1 down vote accepted

_super() already knows which base method it should call, so passing its name is redundant.

You only have to write:

_close: function(startMenu) {
    this._super(startMenu);
    console.log("extension works!");
}

In your current code, the first argument passed to the base method will be the method name instead of startMenu, which will indeed result in the base method failing.

share|improve this answer
    
Thanks a lot! Well, then I did get something wrong on this tutorial: gist.github.com/scottgonzalez/962848 here the _super() method uses '_create' as parameter, so I figured it was needed. (I looked up the _super method somewhere else too, and there it was documented that way too) maybe I've read outdated informations then. –  Katai Apr 20 '13 at 12:52
    
@Katai, that tutorial may refer to a previous release of jQuery UI (the widget factory was revamped since then). That said, even the official documentation is weird (for instance, saying _super() does not accept arguments). I double-checked in the current source code, and the pattern definitely is "do not pass the method name, do pass any other argument". –  Frédéric Hamidi Apr 20 '13 at 13:13

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.