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I am trying to create a jQuery plugin.

$.fn.examplePlugin = function(callback) {
    $.item = $(this);
    $(this).hide('fast',function () {
        callback('bla');
    });

    function show(a) {
       alert(a);
    }    

}

and use

$('form').examplePlugin(function(data)) {
    this.show(data); // need to return alert 'bla'
});

need to return alert 'bla'

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closed as not a real question by T.J. Crowder, Sparky, mgibsonbr, bensiu, Jeff B Dec 20 '12 at 0:03

It's difficult to tell what is being asked here. This question is ambiguous, vague, incomplete, overly broad, or rhetorical and cannot be reasonably answered in its current form. For help clarifying this question so that it can be reopened, visit the help center.If this question can be reworded to fit the rules in the help center, please edit the question.

    
What do you think the code $.item = $(this); does? Because it's a really bad idea. For that matter, why do you think the return value of the callback you pass to hide is used for anything? Have you read the jQuery API documentation? It certainly doesn't mention jQuery doing anything with the return value of the callback. Any you've done nothing to trigger the function you're passing into your plug-in in your example use. Strongly recommend stepping back, reading the API, reading through some plug-in tutorials and source code, and trying again fresh. –  T.J. Crowder Dec 19 '12 at 22:42

1 Answer 1

up vote 0 down vote accepted

After your edits, your code almost does what you mean to do. There are only a couple of problems:

  1. What is the purpose of this line?

    $.item = $(this);
    

    You're creating a field in the jQuery object (alias $) that is referencing an element. If you call your plugin N times, that field will be overwritten N times. Whatever you were trying to accomplish, this is not the way to do it.

  2. Your function show is only available inside the closure function(callback) { ... }, you can't access it from outside. Calling this.show will do nothing, and you shouldn't try to add members to this because it refers to a DOM element.

    For a "proper" way of doing it, I'd suggest reading some tutorials on plugin authoring, but as a quick workaround, why don't you pass the show function as argument to the callback also?

    $(this).hide('fast',function () {
        callback(show, 'bla');
    });
    
    ...
    
    $('form').examplePlugin(function(show, data) {
        show(data); // will perform (not return) "alert('bla')"
    });
    
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1  
typo: function(show, data)) { should be function(show, data){ –  Roko C. Buljan Dec 19 '12 at 23:09

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