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How do I convert a dropdown in this format:

<select id="yearfilter" name="yearfilter">
<option value="">All years</option>
<option value="2011">2011</option>
<option value="2010">2010</option>
<option value="2009">2009</option>
</select>

into an unordered list in this format:

<ul id="yearfilter" name="yearfilter">
<li value="">All years</li>
<li value="2011">2011</li>
<li value="2010">2010</li>
<li value="2009">2009</li>
</ul>

using jquery??

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6 Answers 6

up vote 3 down vote accepted
$('#yearfilter').parent().append('<ul id="newyearfilter" name="yearfilter"></ul>');
$('#yearfilter option').each(function(){
  $('#newyearfilter').append('<li value="' + $(this).val() + '">'+$(this).text()+'</li>');
});
$('#yearfilter').remove();
$('#newyearfilter').attr('id', 'yearfilter');

this is how I would do it.

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I am so going to get some hate for this solution but what about this?

var rep = $("select")
          .clone()
          .wrap("<div></div>")
          .parent().html()
          .replace(/select/g,"ul")
          .replace(/option/g,"li");

$("select").replaceWith(rep);
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There is no reason to add name attributes to ul, nor value attributes to li tags.

Try this: http://jsfiddle.net/vfjFK/2/

$(function(){
    var id = "yearfilter";
    $('#'+id).after("<ul id='temp' />")
        .children("option").each(function() {
            $("#temp").append("<li>"+$(this).text()+"</li>");
        })
        .end().remove();
    $('#temp').attr("id",id);
});

If you really need the useless attributes, though, try this: http://jsfiddle.net/vfjFK/3/

$(function(){
    var id = "yearfilter";
    $('#'+id).after("<ul id='temp' />")
        .children("option").each(function() {
            $("#temp").append('<li value="'+$(this).val()+'">'+$(this).text()+"</li>");
        })
        .end().remove();
            $('#temp').attr({"id":id,"name":id});
});
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You can use map() to build the <li> elements from the <option> elements, and replaceAll() to replace the <select> element:

var $yearFilter = $("#yearfilter");
$yearFilter.find("option").map(function() {
    var $this = $(this);
    return $("<li>").attr("value", $this.attr("value")).text($this.text()).get();
}).appendTo($("<ul>").attr({
    id: $yearFilter.attr("id"),
    name: $yearFilter.attr("name")
})).parent().replaceAll($yearFilter);

You can see the results in this fiddle.

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Here is one way to do it:

var $select = $('#yourSelectElement'),
    $ul = $('<ul></ul>').attr('id', $select.attr('id'))
                        .attr('name', $select.attr('name'));

$select.children().each(function() {
    var $option = $(this);
    $('<li></li>').val($option.val())
                  .text($option.text())
                  .appendTo($ul);
});

$select.replaceWith($ul);
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You would simply replace the tags with their counterpart:

 var select = $('#yearFilter');
 var ul = $('<ul/>');
 ul.attr({ id: select.attr('id'), name: select.attr('name') });

 select.find('option').each(function()
 {
     var item = $('<li/>');
     item.text(this.Text).val(this.val());

     ul.append(item);
 });

 $('#yearFilter').replaceWith(ul);
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