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Hey all i am trying to get this working here:

<? 
echo ('<script type="text/javascript">
$(\'#fileupload\').fileupload({
}).bind(\'fileuploaddone\', function (e, data) {
    jQuery("#shadow").attr("src", "bannerImg/slider/\'' . 
    ' + jQuery(\"#slideNum\").val(); + ');
    echo ('\'.jpg");
    jQuery("#theText").html("New Slider Image:");') ?>

After it uploads an image it calls this script and i need it to see what value is selected in the select box. However, all i am getting this:

So naturally it does not work with showing the image. How can i rework this in order to get it working the way i need it too?

share|improve this question
<?php if($_POST['submit']){ ?>

       <script>
       //your script here
       </script>

<?php } ?>

follow this idea, instead of echoing your script better to put your script inside a 2 PHP enclosed tags like the above code..

share|improve this answer
    
Alright i did that and i got it working. Thanks Clint for the hint. – StealthRT Oct 5 '12 at 0:45
    
your welcome.. also echoing some html and other script than PHP would be more easy if are doing something like this especially tags with quotes "" or ''.. :) – Clint Bugs Oct 5 '12 at 0:50
up vote 0 down vote accepted
<script type="text/javascript">
  $('#fileupload').fileupload({
    }).bind('fileuploaddone', function (e, data) {
    jQuery("#shadow").attr("src", "bannerImg/slider/" + jQuery("#slideNum").val() + '.jpg');
    jQuery("#theText").html("New Slider Image:");

instead of:

<? 
echo ('<script type="text/javascript">
$(\'#fileupload\').fileupload({
}).bind(\'fileuploaddone\', function (e, data) {
    jQuery("#shadow").attr("src", "bannerImg/slider/\'' . 
    ' + jQuery(\"#slideNum\").val(); + ');
    echo ('\'.jpg");
    jQuery("#theText").html("New Slider Image:");') ?>
share|improve this answer

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