Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free.

I am using this method http://jqueryui.com/demos/sortable/#connect-lists to connect two lists that i have. I want to be able to drag from list A to list B but when the item is dropped, i need to keep the original one still in list A. I checked the options and events but I believe there is nothing like that. Any approaches?

share|improve this question
    
Good question odle. I had a hard time with the docs on this as well. –  Adam Fraser Apr 4 '13 at 20:22
    
Had a hard time finding a solution. Good question. –  Birju Shah Oct 22 '13 at 19:59

5 Answers 5

up vote 18 down vote accepted

For a beginning, have a look at this, and read @Erez answer, too.

    $(function() {
        $( "#sortable1" ).sortable({
            connectWith: ".connectedSortable",
            remove: function(event, ui) {
                ui.item.clone().appendTo('#sortable2');
                $(this).sortable('cancel');
            }
        }).disableSelection();

    $( "#sortable2" ).sortable({
            connectWith: ".connectedSortable"
        }).disableSelection();
    });
share|improve this answer
6  
The downside of this approach is that the order of $('#sortable2') is not preserved. Ex. if you drop an item into $('#sortable2') at the top of the list, this solution will render the dropped item at the bottom of the list. Erez's answer below does preserve the dropped position and was a better solution in my use case. –  Andrew Sauder Dec 23 '12 at 10:00

I know this is old, but I could not get Erez's answer to work, and Thorsten's didn't cut it for the project I need it for. This seems to work exactly how I need:

$( "#sortable2, #sortable1" ).sortable({
connectWith: ".connectedSortable",

 remove: function(e,li) {
        copyHelper= li.item.clone().insertAfter(li.item);
        $(this).sortable('cancel');
        return li.clone();
    }     
      
}).disableSelection();
});

Hope it helps someone else.

share|improve this answer

When using Erez's solution below but for connecting 2 sortable portlets (basis was the portlet example code from http://jqueryui.com/sortable/#portlets), the toggle on the clone would not work. I added the following line before 'return li.clone();' to make it work.

copyHelper.click(function() { var icon = $( this ); icon.toggleClass( "ui-icon-minusthick ui-icon-plusthick" ); icon.closest( ".portlet" ).find( ".portlet-content" ).toggle();});

This took me a while to figure out so I hope it helps someone.

share|improve this answer

Erez' solution works for me, but I found its lack of encapsulation frustrating. I'd propose using the following solution to avoid global variable usage:

$("#sortable1").sortable({
    connectWith: ".connectedSortable",

    helper: function (e, li) {
        this.copyHelper = li.clone().insertAfter(li);

        $(this).data('copied', false);

        return li.clone();
    },
    stop: function () {

        var copied = $(this).data('copied');

        if (!copied) {
            this.copyHelper.remove();
        }

        this.copyHelper = null;
    }
});

$("#sortable2").sortable({
    receive: function (e, ui) {
        ui.sender.data('copied', true);
    }
});

Here's a jsFiddle: http://jsfiddle.net/v265q/190/

share|improve this answer
1  
Using a hidden placeholder in the first list will give it the common dragged from the exact position effect like so jsfiddle.net/BrianDillingham/v265q/320 –  Brian Dillingham Sep 19 '14 at 19:49
$( "#sortable1" ).sortable({
    connectWith: ".connectedSortable",
    forcePlaceholderSize: false,
    helper: function(e,li) {
        copyHelper= li.clone().insertAfter(li);
        return li.clone();
    },
    stop: function() {
        copyHelper && copyHelper.remove();
    }
});
    $(".connectedSortable").sortable({
        receive: function(e,ui) {
            copyHelper= null;
        }
});
share|improve this answer
3  
This approach is preferable to Thorsten's since this one preserves the order of the original list. –  Adam Fraser Apr 4 '13 at 20:21
2  
Works perfectly! This really should be marked as the correct answer. –  Matthew T. Baker May 15 '14 at 13:42
    
Much better answer than the one that is marked correct. This copies and preserves the order. –  jkinz Apr 14 at 19:31

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.