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I am trying to use this example as shown HERE in JSFIDDLE, the problem i am having is that I would like when dropping to squeeze the new record in between and not swap. I tried adding a for loop in the drop function that increases the destination record if the target is less than that one or decreases it if the target is more than the destination.

The problem is that I am ending up with repeated positions like 4,4 or 5, 5, 5. Are there any examples of Kendo UI that i can use with this functionality?, instead of swaping?.

example:

id   text      position
1    world        1
2    cup          2
3    Brazil       3
4    2014         4
5    Soccer       5

If i move record 4 to the top i would like to

id   text      position
4    2014         1
1    World        2
2    Cup          3
3    Brazil       4
5    Soccer       5

I would appreciate if anyone could point me in the right direction.

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2 Answers 2

up vote 3 down vote accepted

The way to insert a row when drag/drop is to use the datasource insert (or add) capability. At the high level you are inserting the row into the new location, and removing it from the old location. Kendo's grid will automatically refresh the display - you just need to get the data right. The next challenge is to get the target row number. You've done this by adding a column in the grid, and executing target.get("position")). I've used the datasource.indexOf method for this, and removed the Position column - cleaning up the display. Ref jsfiddle. Following is a small excerpt of the code (thanks to Lars below for improvements!)

grid.table.kendoDropTargetArea({
    filter: "td",
    group: "gridGroup",
    drop: function (e) {
        e.draggable.hint.hide();
        var target = dataSource.getByUid($(e.draggable.currentTarget).data("uid")),
            destElement = $(e.dropTarget).closest("tr"),
            dest = dataSource.getByUid(destElement.data("uid")),
            destPosition = dataSource.indexOf(dest);

        //not on same item
        if (target.get("id") !== dest.get("id")) {
            dataSource.remove(target);
            dataSource.insert(destPosition, target);
        }
    }
});
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Would you be able to modify the current fiddle to see this working?. I just want to see where it should be added. –  ergwin Jan 26 '14 at 17:39
    
I'd like to, but I'm using IE 11, and your fiddle doesn't allow me (as a user) to drag/drop at all, and I'm not able to see the problem. –  Rick Mortensen Jan 26 '14 at 22:40
    
Oh man.. i did not check this before.., so i guess i cant use this drag and drop because it would not work in IE, sucks –  ergwin Jan 26 '14 at 23:24
    
@ergwin it will work fine with a current version of Kendo UI - see my answer –  Lars Höppner Jan 27 '14 at 3:39
    
Created a jsfiddle from Lars' excellent post, and updated above comments and code. I've cleaned up the grid display by removing the position column, so that you have 2 examples (Lars and mine) depending on how you want to interface with your users. –  Rick Mortensen Jan 27 '14 at 13:02

Since you're only trying to modify the order of the rows, your original approach should work. Instead of swapping the position, you need to adjust the position of all other rows depending on their relative position to the source row and target row.

Your drop target definition might then look something like this:

grid.table.kendoDropTargetArea({
    filter: "td",
    group: "gridGroup",
    drop: function (e) {
        e.draggable.hint.hide();
        var target = dataSource.getByUid($(e.draggable.currentTarget).data("uid")),
            destElement = $(e.dropTarget).closest("tr"),
            dest = dataSource.getByUid(destElement.data("uid")),
            sourcePosition,
            targetPosition,
            position,
            item;

        //not on same item
        if (target.get("id") !== dest.get("id")) {
            // set new position for dropped item
            sourcePosition = target.get("position");
            targetPosition = dest.get("position");
            if (targetPosition > sourcePosition) {
                targetPosition -= 1;
            }
            target.set("position", targetPosition);

            // update positions for all other items
            for (var i = 0, max = dataSource.total(); i < max; i++) {
                item = dataSource.at(i);
                if (item.uid === target.uid) continue;
                position = item.position;

                // items which had a higher position than the source item need to move down by one
                if (position >= sourcePosition) {
                    position -= 1;
                }
                // items which had a higher position than the target position need to move up by one
                if (position >= targetPosition) {
                    position += 1;
                }

                item.set("position", position);
            }

            dataSource.sort({
                field: "position",
                dir: "asc"
            });
        }
    }
});

(demo)

share|improve this answer
    
Is there a way to minimize the weight on the for loop, with 2500 items it becomes a little too much for it. –  ergwin Jan 28 '14 at 1:43
    
depends on what you need - the for loop itself isn't that expensive, but updating the DOM elements is; so when you enable paging + virtual scrolling, it works for 2500 without problems: jsfiddle.net/lhoeppner/uWUW3/11 –  Lars Höppner Jan 28 '14 at 2:33

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