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is there a way to make Jquery ui sortable have it's item index count from bottom instead of from top?

For example:

<ul id="sortable">
    <li>Item 1</li> // ui.item.index() = 0
    <li>Item 2</li> // ui.item.index() = 1
    <li>Item 3</li> // ui.item.index() = 2
    <li>Item 4</li> // ui.item.index() = 3
</ul>

And have it like this:

<ul id="sortable">
    <li>Item 1</li> // ui.item.index() = 3
    <li>Item 2</li> // ui.item.index() = 2
    <li>Item 3</li> // ui.item.index() = 1
    <li>Item 4</li> // ui.item.index() = 0
</ul>

I'm trying to set the z-index from div.Zindex where it's z-index: (ui.item.index()*10):

$( "#sortable" ).sortable({
    stop: function(event, ui) {
        $( "#sortable li" ).map( function(){
            var updateZindex = 0;
            if($(this).index() == 0){
                updateZindex = 1000;
            }else{
                updateZindex = $(this).index()*10;
            }
            $('#parent').find('div[id='+$(this).attr('id')+']').css('z-index', updateZindex);
        });
    }
});
$( "#sortable" ).disableSelection();

Thank you

share|improve this question
    
details on how your trying to use it? –  Prat Sep 19 '13 at 15:13
    
sorry, I've updated with the code I'm trying to fix with the item.index() –  CIRCLE Sep 19 '13 at 15:23
    
Instead of trying to reverse the order, couldn't you just negate the sort position for the z-index? 1 would become -10, 2->-20, etc. –  Will M Sep 19 '13 at 15:28
    
@Will I can't do that because if I give negative z-index the div's hide behind everything including the body wich has a background image –  CIRCLE Sep 19 '13 at 15:33
    
Hmm, pretty sure there's a way to set z-index relative to these elements only. Looking that up now... –  Will M Sep 19 '13 at 15:39

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