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How do I get the coordinate position after using jQuery drag and drop? I want to save the coordinate to a database, so that next time I visit, the item will be in that position. For example, x: 520px, y: 300px?

EDIT:

I am PHP and mysql programmer :)

Is there any tutorial out there?

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8 Answers 8

I just made something like that (If I understand you correctly).

I use he function position() include in jQuery 1.3.2.

Just did a copy paste and a quick tweak... But should give you the idea.

// Make images draggable.
$(".item").draggable({

    // Find original position of dragged image.
    start: function(event, ui) {

    	// Show start dragged position of image.
    	var Startpos = $(this).position();
    	$("div#start").text("START: \nLeft: "+ Startpos.left + "\nTop: " + Startpos.top);
    },

    // Find position where image is dropped.
    stop: function(event, ui) {

    	// Show dropped position.
    	var Stoppos = $(this).position();
    	$("div#stop").text("STOP: \nLeft: "+ Stoppos.left + "\nTop: " + Stoppos.top);
    }
});

<div id="container">
    <img id="productid_1" src="images/pic1.jpg" class="item" alt="" title="" />
    <img id="productid_2" src="images/pic2.jpg" class="item" alt="" title="" />
    <img id="productid_3" src="images/pic3.jpg" class="item" alt="" title="" />
</div>

<div id="start">Waiting for dragging the image get started...</div>
<div id="stop">Waiting image getting dropped...</div>
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Just used this to help enhance by droppable application, many thanks! –  Pez Cuckow Jun 4 '10 at 12:47
1  
still works perfectly in 04/2013. THANKS! –  hellion Apr 30 '13 at 17:24
    
Does this really work for anybody?? I had no luck with this. See my answer for solution that works. –  Yarin Dec 19 '13 at 3:29

Had the same problem. My solution is next:

$("#element").droppable({
    drop: function( event, ui ) {

        // position of the draggable minus position of the droppable
        // relative to the document
        var $newPosX = ui.offset.left - $(this).offset().left;
        var $newPosY = ui.offset.top - $(this).offset().top;

    }
});
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I am having trouble understanding this. Can you please explain what is "ui" and what is "this" ? attn : this solution worked for me. –  jumpa Jun 18 '12 at 18:13
4  
From jQuery UI documentation: "All callbacks receive two arguments: The original browser event and a prepared ui object: 1) ui.draggable - current draggable element, a jQuery object; 2) ui.helper - current draggable helper, a jQuery object; 3) ui.position - current position of the draggable helper { top: , left: } ; 4) ui.offset - current absolute position of the draggable helper { top: , left: } . –  Webars Jul 1 '12 at 10:46
    
Thanks man, I was having hard time struggling until I found your solution. This really helps me. –  przbadu Sep 20 at 11:08

This worked for me:

$("#element1").droppable(
{
    drop: function(event, ui)
    {
        var currentPos = ui.helper.position();
            alert("left="+parseInt(currentPos.left)+" right"+parseInt(currentPos.top));
    }
});
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If you are listening to the dragstop or other events, the original position should be a ui parameter:

dragstop: function(event, ui) {
    var originalPosition = ui.originalPosition;
}

Otherwise, I believe the only way to get it is:

draggable.data("draggable").originalPosition

Where draggable is the object you are dragging. The second version is not guaranteed to work in future versions of jQuery.

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this is the right solution! –  Sumit Jul 26 '13 at 7:18

I would start with something like this. Then update that to use the position plugin and that should get you where you want to be.

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Cudos accepted answer is great. However, the Draggable module also has a "drag" event that tells you the position while your dragging. So, in addition to the 'start' and 'stop' you could add the following event within your Draggable object:

    // Drag current position of dragged image.
    drag: function(event, ui) {

        // Show the current dragged position of image
        var currentPos = $(this).position();
        $("div#xpos").text("CURRENT: \nLeft: " + currentPos.left + "\nTop: " + currentPos.top);

    }
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I was need to save the start position and the end position. this work to me:

    $('.object').draggable({
        stop: function(ev, ui){
            var position = ui.position;
            var originalPosition = ui.originalPosition;
        }
    });
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None of the above worked for me.

Here's my solution- works great:

$dropTarget.droppable({
    drop: function( event, ui ) {

    // Get mouse position relative to drop target: 
    var dropPositionX = event.pageX - $(this).offset().left;
    var dropPositionY = event.pageY - $(this).offset().top;
    // Get mouse offset relative to dragged item:
    var dragItemOffsetX = event.offsetX;
    var dragItemOffsetY = event.offsetY;
    // Get position of dragged item relative to drop target:
    var dragItemPositionX = dropPositionX-dragItemOffsetX;
    var dragItemPositionY = dropPositionY-dragItemOffsetY;

    alert('DROPPED IT AT ' + dragItemPositionX + ', ' + dragItemPositionY);

(Based partly off solution given here: http://stackoverflow.com/a/10429969/165673)

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