Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

I am using jQuery draggable/droppable to enable elements in a grid to be swapped. For example, when element 1 is dropped onto element 2 they change places.

There are two problems:

  1. After a successful drag-drop the clone still floats back to its original position. How can I prevent this? I only want it to float back if it's not dropped onto a valid target.

  2. Ideally I'd like to set helper: original as well, but when I tried this I couldn't work out how to correctly calculate the swapped positions in the drop function.

I've put the code on jsFiddle, and below for reference:

<div id="room"></div>

<script>
$(function() {
//Set up seats - four rows of eight
for (var row = 0; row < 4; row++) {
    for (var col = 0; col < 8; col++) {
        $('#room').append('<div class="seat" style="top: ' + (row * 45 + 15) + 'px; left: ' + (col * 117 + 18) + 'px;">' + (row * 4 + col + 1) + '</div>');
    }
}

//Swap function from http://blog.pengoworks.com/index.cfm/2008/9/24/A-quick-and-dirty-swap-method-for-jQuery
jQuery.fn.swap = function(b) {
    b = jQuery(b)[0];
    var a = this[0];
    var t = a.parentNode.insertBefore(document.createTextNode(''), a);
    b.parentNode.insertBefore(a, b);
    t.parentNode.insertBefore(b, t);
    t.parentNode.removeChild(t);
    return this;
};

$(".seat").draggable({
    revert: true,
    helper: "clone"
});

$(".seat").droppable({
    accept: ".seat",
    hoverClass: "ui-state-hover",
    drop: function(event, ui) {

        var draggable = ui.draggable,
            droppable = $(this),
            dragPos = draggable.position(),
            dropPos = droppable.position();

        draggable.css({
            left: dropPos.left + 'px',
            top: dropPos.top + 'px'
        });

        droppable.css({
            left: dragPos.left + 'px',
            top: dragPos.top + 'px'
        });
        draggable.swap(droppable);
    }
});

});
</script>
share|improve this question

1 Answer 1

up vote 0 down vote accepted

I resolved this with $(ui.helper).hide(); in the drop function.

share|improve this answer

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.