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I am having a problem when trying to use each() twice.

I have a list of radio checked buttons of which each has a datasrc of a website.

Example:

<input type="radio" checked datasrc="www.john.com" id="John">John<br/>
<input type="radio" checked datasrc="www.maria.com" id="Maria">Maria<br/>
<input type="radio" datasrc="www.joe.com" id="Joe">Joe<br/>​

I want to retrieve each checked radio button so I do this:

$("input:radio").each(function(){

var name = $(this).attr("id");


    if($("[id="+name+"]:checked").length == 1)
    {
        var src = $('#' + name).attr("datasrc")                                                                                                                                                                                                                                                                                                                                                                                                                                                                     

      console.log(name);
      console.log(src);                        

    }                                                                                                                                                                                                                                                                                                                                                                                                                                                                        
});

Now when I retrieve every checked radio button, I want to append it with id its id and for value, its datasrc. For example:

<div id="John">www.john.com</div>
<div id="Maria">www.maria.com</div>

When I tried using each again I get manage to get it printed but several times. For example john will print 4 times and maria will print 5 times (the amount of the id).

For example:

$("input:radio").each(function () {

   var name = $(this).attr("id");

   if ($("[id=" + name + "]:checked").length == 1) {
      var src = $('#' + name).attr("datasrc")

      var html = "";
      for (i = 0; i < name.length; i++) {
         html += "<div id='" + name + "'>" + src + "</div>"
      }

      $("body").append(html);


   }

});

Will print:

www.john.com
www.john.com
www.john.com
www.john.com
www.maria.com
www.maria.com
www.maria.com
www.maria.com
www.maria.com

What I'm I doing wrong?

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4 Answers 4

up vote 1 down vote accepted

It's because you're nesting a for loop inside each so the results of the for loop run as many times as the each loop...You don't need the for loop though, a simple array and and each() will work:

Edit: Made it a function so you can use it at any time.

var getUrls = function () {

    var urls = [];

    $('input:radio').each(function () {

        var $this = $(this),
            id = $this.attr('id'),
            url = $this.attr('datasrc');

        if ($(this).prop('checked')) {
            urls.push('<div class="' + id + '">' + url + '</div>');
        }

    });

    return urls;

};

$('body').append(getUrls().join(''));
share|improve this answer
    
Works great. You need to change src with url thought. Thanks –  jQuerybeast Mar 17 '12 at 8:54
    
Yeah just noticed. –  elclanrs Mar 17 '12 at 8:55
    
I would use a class tho like suggested below –  elclanrs Mar 17 '12 at 8:56
1  
You'd have to provide some other ID for the generated DIV otherwise they will be duplicate with the radio IDs. –  Didier Ghys Mar 17 '12 at 8:57
    
I will never be using same ID thus I dont need to provide class. Thank you –  jQuerybeast Mar 17 '12 at 9:00

I think your script could be overly simplified like this:

$("input:radio").each(function () {

    // save for re-use
    var $this = $(this);

    // no need for jquery for javascript properties
    // 'this' is the DOM element and has a 'checked' property
    if (this.checked) {
        var src = $this.attr('datasrc');
        // you'd have to prefix the generated DIV id
        // otherwise you'll end up with duplicate IDs
        $('body').append("<div id='div" + this.id + "'>" + src + "</div>");
    }

});​

DEMO

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"Amount of id" makes me prick my ears. Each id may only be once on every page. If you use the same id on more than one element, the markup will be illegal.

share|improve this answer
    
I will use it once lol. Name it class, makes no difference to me since I'm the one creating the markup. –  jQuerybeast Mar 17 '12 at 8:51
    
Currently you are creating DIVs with the same id as the corresponding radio button, and this is illegal! –  devnull69 Mar 17 '12 at 9:00
    
Yes in my real-life example, the radio buttons are in a completely different page, passed into DB and retrieved in other page with the corresponding ID. –  jQuerybeast Mar 17 '12 at 9:01

I solved your problem http://jsfiddle.net/3nvcj/

$(function() {

    $(':checked').each(function(index, element) {

        $('#result').append($('<div>').attr('id', $(element).attr('id')).text($(element).attr('datasrc')));
    });
});
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