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I have a problem here...Im using jquery here..n using visual studio 2008..I need to find the coordinate of an image after being drag n drop in a div.But what I had got is that the coordinate counts from out of div..I want it counts from inside the div..


Here's my code:

    cursor: 'move',        // sets the cursor apperance
    containment: '#dragThis2',
    drag: function() {
    var offset = $(this).offset();
    var xPos = Math.abs(offset.left);
    var yPos = Math.abs(;
    $('#posX').text('x: ' + xPos);
    $('#posY').text('y: ' + yPos);
    stop: function(event, ui) {

    // Show dropped position.
    var Startpos = $("#dragThis").position();
    var Stoppos = $(this).position();

    $("#dragThis2").val((Stoppos.left - Startpos.left));
    var left = Math.abs(Stoppos.left);
    var top = Math.abs(;
    $('#posX').text('left: ' + left);
    $('#posY').text('top: ' + top);

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you can always subtract the offset of div from image position to relative offset – Comet Jun 13 '12 at 8:44
ok,can u give me sample code on how to subtract? – catcool Jun 13 '12 at 9:21

3 Answers 3

you can use position():

The .position() method allows us to retrieve the current position of an element relative to the offset parent.

var pos = $(this).position();
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I'm sorry but it doesn't work – catcool Jun 13 '12 at 10:54

Try this This function does exact the task.

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but that uses mouse function....I don't use the mouse function.. – catcool Jun 13 '12 at 10:41

If #dragThis2 is your parent div then

var parentLeft = $("#dragThis2").position().left;
var parentTop = $("#dragThis2").position().top;

var left = Math.abs(Stoppos.left - parentLeft);
var top = Math.abs( - parentTop);
$('#posX').text('left: ' + left);
$('#posY').text('top: ' + top);​

will give you left and top relative to parent div #dragThis2

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