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I'm experimenting with jQuery draggable. When dragging then reverting, the revert does not always position the draggable object exactly back to where it started - it can be several pixels out.

html:

<div id="draggable2" class="formsection ui-widget-content resizable">
<p>I am draggable2</p>
</div>

jquery:

$(".formsection").draggable({
    grid: [20, 20],
    revert: true, 
    zIndex: 9700,
}); 

css

.formsection{position:absolute; top:20px; left:20px; width: 220px; height: 80px; padding: 5px; float: left; margin: 0 10px 10px 0; font-size: .9em; 
             background-color:#eee; border:solid 1px green; }

It seems to work first time, but if a drag a second time it is always out, but inconsistently so. Anyone know how to fix?

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2 Answers 2

up vote 4 down vote accepted

This is a known bug in jQuery UI with "revert" and "grid". There is a ugly workaround in the bug comments, but it involves changing jQuery UI itself.

I've created a much simpler workaround:

$(".formsection").draggable({
    grid: [20, 20],
    zIndex: 9700,
    stop: function(event, ui) {
        this._originalPosition = this._originalPosition || ui.originalPosition;
        ui.helper.animate( this._originalPosition );
    }
});

The first time the Draggable is dragged, it saves the orginalPosition, because that's the only time it's correct, and then use the animate method with our saved position the consecutive times, instead of using the built in "revert".

Example on jsfiddle

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Any idea how one can get this functionality to work in the style of revert: 'invalid'? Eg if the drop was on to the target don't revert. –  John Hunt Nov 12 '11 at 5:19

I solved it like this:

$( ".formsection" ).bind( "dragstart", function(event, ui) {
    ui.originalPosition.top = $(this).position().top;
    ui.originalPosition.left = $(this).position().left;
});

The advantages of this method is that you can still use the built in revert functionality of draggable (and droppable)

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