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I implemented draggable image using jQuery-ui Draggable and saved coordinates into database.

Now I am getting coordinates and images url in xml format.

I want to reset the image position. where it was saved.

============= Here is source code:=============

$.ajax({
             type: "GET",
             url: "devices.xml",
             dataType: "xml",
             success: function(xml) {
                 $(xml).find('device').each(function(){
                    var idText = $(this).attr('id');
                    var longAddress = $(this).find('longAddress').text();
                    var imgSrc = $(this).find('type').text();
                    var xAxis = $(this).find('x-axis').text();
                    var yAxis = $(this).find('y-axis').text();

                    var oNewImg = document.createElement('img');
                    oNewImg.id = idText;
                    oNewImg.src = imgSrc;                                                         

                    document.body.appendChild(oNewImg);

                    var originalLeft = parseInt($('#'+oNewImg.id).position().left);

                    $('#'+oNewImg.id).css('left', (xAxis) + 'px');
                    $('#'+oNewImg.id).css('top', (yAxis) + 'px');});
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Please provide some code so we can get an idea of what you're trying to achieve. –  treeface Oct 12 '10 at 0:41

1 Answer 1

This might sound funny, but why don't you do it? Query the database and for each image output:

<div class="container">
    <?php
      // SQL query
      $buffer = mysql_query($q);
      while($v = mysql_fetch_assoc($buffer)) {
         echo '<img src="'.$v['url'].'" style="top: '.$v['top'].'px; left: '.$v['left'].'px" />'; 
       }
    ?>
</div>
        <style>
            .container {
               width: 100%;
               height: 100%;
               position: relative;
            }
            .container img {
               position: relative;
            }
        </style>

If you got the jQuery part, and storing the images locations in the db, I don't see how you could have problems displaying them...

share|improve this answer
    
My page is just html page and i am using jquery.ajax() to retrive the data. so i am creating dynamic image component on page. –  user472812 Oct 12 '10 at 2:46
    
and how do you store the positions in the database then? –  Claudiu Oct 12 '10 at 3:09
    
$(function() { $(".draggable").draggable( { drag: function(event, ui) { $(".draggable").css("opacity", "0.7"); var originalLeft = parseInt($(this).position().left); var originalTop = parseInt($(this).position().top); var sLeftRef = (originalLeft - parseInt($("#area_map").position().left)); var sTopRef = (originalTop - parseInt($("#area_map").position().top)); // here i send data by appending url to save position }, cursor: "move" }); }); –  user472812 Oct 13 '10 at 3:14
    
Is it posible to print image on page with defined position using jquery??? –  user472812 Oct 13 '10 at 4:20

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