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in the QandATable.php I have a form below which contains a file input and an iframe:

var $fileVideo = $("<form action='videoupload.php' method='post' enctype='multipart/form-data' target='upload_target_video' onsubmit='return videoClickHandler(this);' class='videouploadform' >" + 
"Video File: <input name='fileVideo' type='file' class='fileVideo' /></label>" +  
"<input type='submit' name='submitVideoBtn' class='sbtnvideo' value='Upload' /></label>" + 
 "<p class='listVideo' align='left'></p>" +
"<iframe class='upload_target_video' name='upload_target_video' src='/' style='width:0px;height:0px;border:0px;solid;#fff;'></iframe></form>"); 

Now below I have a jquery code which is triggered when the file has finished uploading.

  function stopVideoUpload(success, videofilename){

      var result = '';
      videocounter++;

      if (success == 1){
         result = '<span class="videomsg'+videocounter+'">The file was uploaded successfully</span>';
          $('.listVideo').eq(window.lastUploadVideoIndex).append('<div>' + htmlEncode(videofilename));
      }


      return true;   
}

Now the result of the file upload and the file name is determined with the code below. But what my question is that how can I display the $id variable in a text input?

 <script language="javascript" type="text/javascript">
 window.top.stopVideoUpload(<?php echo $result; ?>,'<?php echo $id . $_FILES['fileVideo']['name'] ?>');
 </script> 
share|improve this question
    
You can't just mix javascript and php, if that is what you are asking. For communication between javascript(client-side) and php(server-side) you have to use AJAX - w3schools.com/php/php_ajax_php.asp. Also, note that the AJAX request can be simplified with javascript libraries like jQuery –  intelis Jan 20 '13 at 0:53
    
@intelis I have been trying to follow the W3school example but can't seem to get it working. Can you provide a sample? –  user1964964 Jan 20 '13 at 1:39

1 Answer 1

up vote 0 down vote accepted

I might be misunderstanding your question, but if you change type='text' to type='hidden' on your input field, then the $id variable will be in a hidden input.

share|improve this answer
    
Sorry, I rushed my question, I meant turn it into a text input, not a hidden input, sorry bout that –  user1964964 Jan 20 '13 at 0:46

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