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I have two sortable lists that are not connected to each other:

<ul id="list1">
    <li>Item1</li>
    <li>Item2</li>
    <li>Item3</li>
</ul>
<ul id="list2">
    <li>Container 1</li>
    <li>Container 2</li>
    <li>Container 3</li>
</ul>

Jquery:

$("#list1").sortable({
    items: "li",
    distance: 25,
    out: function (event, ui) {},
    over: function (event, ui) {},
    stop: function (event, ui) {}
});

$("#list2").sortable({
    items: "li",
    distance: 25,
    out: function (event, ui) {},
    over: function (event, ui) {},
    stop: function (event, ui) {}
});

How can I make it possible to drop an item of the first list any item of the second one, and get which one was dropped and where it was dropped?

Live jsfiddle

EDIT:I want to create a relation between the elements of the first list to the second. If the user drags an item from the first list and drops it into any item of the second list, I should get one relation (e.g. item1 - container1) and item1 should get back to its place.

share|improve this question
    
Have you considered using jqueryui.com/draggable and jqueryui.com/droppable ? –  ryadavilli Apr 9 '13 at 9:51
    
Yes, but it messes up the way they get sorted –  enb081 Apr 9 '13 at 9:52
    
possible to drop an item of the first list any item of the second one what does ths means ? –  alwaysLearn Apr 9 '13 at 9:58
    
@dreamCoder I want to create a relation between the elements of the first list to the second. If the user drags an item from the first list and drops it into any item of the second list, I should get one relation (e.g. item1 - container1) and item1 should get back to its place. –  enb081 Apr 9 '13 at 10:02
    
This is not exactly what you are asking for, but have you ever checked out knockoutjs? Here's a pretty cool jsFiddle by Ryan Niemeyer. jsfiddle.net/rniemeyer/Jr2rE –  dthartman Jan 29 at 17:59

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