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Hi I came across this piece of code and I was wondering specifically what is going on with this.each(function(i,e) and var $e = $(e);. I'd like to know what the programmer is trying to do.

Thanks!

$.fn.rssfeed = function (url, options, fn) {
    return this.each(function (i, e) {
            var $e = $(e);
            var s = '';
}
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3 Answers 3

i is the index of the currently iterated element of the .each loop. e is the actual DOM element.

var $e = $(e);

assigns the $e variable the current DOM element wrapped in a jQuery object in order to take advantage of jQuery's normalised DOM methods.

Plugins typically get applied to all elements matching a particular selector, so:

$("div").rssfeed(url, options, fn);

would lead to the plugin iterating over all div elements within the .each loop.

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2  
Additional info: it is a good way to reduce processing cost, instead of instatiating the object again when required. –  Jules Aug 4 '11 at 3:49
    
sorry it's still a bit unclear. is $e now referencing a DOM element? –  locoboy Aug 4 '11 at 4:30
    
No, $e gets assigned the result of wrapping e in a jQuery object. e is just a plain DOM element. –  karim79 Aug 4 '11 at 4:38
    
what does that mean, to wrap a DOM element in a jquery object? –  locoboy Aug 4 '11 at 4:58
$.fn.rssfeed = function (url, options, fn) {

    //Here this refers to the jquery object
    //i refers to the index in the loop
    //e refers to the dom element os $(e) will give the jquery object corresponding to the dom element
    return this.each(function (i, e) {
            var $e = $(e);
            var s = '';
}
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each(function(i, e)) just like

for(var i = 0; i < this.length; i++){
   var $e = $(this[i]);
}

Actually, e maybe a dom element and $(e) is just user jquery to make it be a object ($e);

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