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I've been defining and using widgets like this:

 jQuery.widget('myname.dbtable', {...});
 jQuery.widget('myname.columnTime', {...});
 jQuery.widget('myname.columnDropdown', {...});

 jQuery('#table').dbtable({...});

My goal is to call a specific widget given a column's type (input, select, plain, etc) and I have tried to do this like so:

 var columntypes = {time:'columnDropdown', dropmenu:'columnDropdown'};


 for (var i=0; i<dbrows.length; i++) { 
   for (var c=0; c< dbrows[i].length; c++){
     type = dbrows[i][c][type];

     if (type === 'time'){
        column = jQuery('<div></div>');
        jQuery['myname'][columntypes[type]].call(column, {widtet-options});
        // and I expect this to be equivalent to (if type=dropmenu)
        // column.columnDropdown({widget-options})
     }
   }   
 }

This does not work though, and I see an error in the console:

   this._createWidget is not a function

So my question is basically:

How to I instantiate a widget on a jQuery element if I have the name of the widget in a variable?

share|improve this question
    
Not sure if it's a typo in your actual code or not, but jQuery(<div></div>) should be jQuery('<div></div>') –  Colin Mar 1 '12 at 16:08
    
thank you, ill correct it, but the problem is not syntax errors or similar. –  Ярослав Рахматуллин Mar 1 '12 at 16:09

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