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I'm building a jQuery plugin.

Calling the plugin

$('#box').jQueryPlugin({user:'user123'});

JQUERY PLUGIN

(function($){  
    $.fn.jQueryPlugin= function(options) {  

        var  
          defaults = {  
            user: ''
          }

            var options = $.extend(defaults, options);
            var o = options; 

             $.ajax({
               type: "get",
               url: "http://api.domain.com/user/"+o.user,
               data: "",
               dataType: "jsonp",
               success: function(data){
                    var p = data;
                    console.log(p.location);
                    $(this).html(p.location);
               }
            });

          // returns the jQuery object to allow for chainability.  
          return this;  
    }  
})(jQuery);  

If I were to use the above, the console.log would show an error that it couldn't write the p.location inside the div with id="box"

How would I be able to get it so that it can write to whichever div is specified when calling the plugin?

share|improve this question
    
this doesn't map to any HTML element in your success call. What is data supposed to return? What is the objective of your code? –  MalSu Aug 31 '12 at 13:54
    
the code works fine when it has the proper domain etc. my only issue is how to write the value of p.location into the selector used when calling the plugin –  Donald Aug 31 '12 at 13:55
    
You say p = data, what is data ? As I said, do a console.log($this) and see why your $(this).html won't map to anything on the DOM. Supposing data returns an id of an element, you're doing your selection wrong. –  MalSu Aug 31 '12 at 13:58

1 Answer 1

up vote 4 down vote accepted

this won't have the context you expect in the success callback, so you just need to assign your div to a var so you can use it later..

(function($){  
    $.fn.jQueryPlugin= function(options) {  

        var  
          defaults = {  
            user: ''
          }

            var options = $.extend(defaults, options);
            var o = options; 

            var $div = $(this);

             $.ajax({
               type: "get",
               url: "http://api.domain.com/user/"+o.user,
               data: "",
               dataType: "jsonp",
               success: function(data){
                    var p = data;
                    console.log(p.location);
                    $div.html(p.location); // now we have the original div;
               }
            });

          // returns the jQuery object to allow for chainability.  
          return this;  
    }  
})(jQuery);

Another method would be to set the context option in the $.ajax call, see the context option in the jQuery docs.

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