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I am wondering if it's possible to return a jQuery widget instance from a function. I've since figured out a completely different way to do what I want, so this is just to satisfy my own curiosity.

Say I have two widgets and one inherits from the other. I also have some code that might have a childWidget, or it might have a parentWidget. But all that matters is calling a method on the parent widget--in this case, doSomething(). Rather than writing if statements every time to figure out whether to call childWidget('doSomething') or parentWidget('doSomething'), can I write this code once, return the correct widget, and then call doSomething()?

A very rudimentary example:

<!doctype html>

<html lang="en">
  <meta charset="utf-8" />
  <title>Little widget test</title>
  <script src=""></script>
  <script src=""></script>

  $(function() {
        //create parentWidget with doSomething function
    $.widget( "custom.parentWidget", {
      options: {
        widgetName: 'parent'
      _create: function() {
          // add a class for theming
          .addClass( this.options.widgetName );
      doSomething: function( event ) {


    //create child widget; just overrides the widgetName property
    $.widget( "custom.childWidget", $.custom.parentWidget, {
      options: {
        widgetName: 'child'

        //make an instance of each widget
    $( "#my-widget1" ).parentWidget();
    $( "#my-widget2" ).childWidget();

    //function to get the widget instance
    $.fn.getWidget = function() {
                return $(this).parentWidget();

            return $(this).childWidget();

    //this does not work
    $( "#my-widget1" ).getWidget()('doSomething');


  <div id="my-widget1">parent widget</div>
  <div id="my-widget2">child widget</div>

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because return $(this).parentWidget() does not return a widget instance it returns the jquery wrapper for this element ie the same object as $(this) - as you know jQuery works based on chaining – Arun P Johny Sep 10 '13 at 22:54
Also the public methods on a widget is called using $( "#my-widget1" ).parentWidget('doSomething'); – Arun P Johny Sep 10 '13 at 22:55
Yes, I'm familiar with all that. My question is really whether or not you can get a handle on a widget independently of the element it's attached to. I think the answer is no, but as I said, this is curiosity on my part. – Rebecca Campbell Sep 11 '13 at 15:50

1 Answer 1

up vote 0 down vote accepted

Based on my tests, I'm fairly certain the answer to this is "no."

What I did settle on was funneling all calls to the widget through a common function, since I only need to make very simple calls to my widget, each containing one parameter:

$.fn.callMyWidget = function (params) {
    if ($(this).is('.parent')) {
    else {

//so now I can do this:
$( "#my-widget1" ).callMyWidget('doSomething');
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