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below I have an iframe which deals with a file input:

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 I have a function below where when the file has stopped uploading and has successfully uploaded into the server, it will display the name of the file uploaded:

    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) + 
          '<input type="text" name="videoidhide" value=""/><br/><hr/></div>');
      }


      return true;   
}

You will also see that there is a text input next to the file name. This is relevant to my question.

Below is the php script the frame links to videoupload.php and this script will upload the files and insert the data into the database:

     move_uploaded_file($_FILES["fileVideo"]["tmp_name"],
      "VideoFiles/" . $_FILES["fileVideo"]["name"]);
      $result = 1;

    $videosql = "INSERT INTO Video (VideoFile) 
    VALUES (?)";

        if (!$insert = $mysqli->prepare($videosql)) {
      // Handle errors with prepare operation here
    }

            //Dont pass data directly to bind_param store it in a variable
$insert->bind_param("s",$vid);

//Assign the variable
$vid = 'VideoFiles/'.$_FILES['fileVideo']['name'];

 $insert->execute();

        if ($insert->errno) {
          // Handle query error here
        }

        $insert->close();     

?>

 <script language="javascript" type="text/javascript">
 window.top.stopVideoUpload(<?php echo $result; ?>, '<?php echo $_FILES['fileVideo']['name'] ?>');
 </script>  

Below is an example database showing the insert of the file:

Video_Question Table:

 VideoId (PK auto)  VideoFile
 1                  VideoFiles/carrace.mp4
 2                  VideoFiles/cricket.mov

Now what my question is that where you see in the mysqli code where it inserts the uploded video file into the VideoFile field in the db, how can I retrieve the value from the VideoId field and display it in the text input for each associated uploaded file?

For example if carrace.mp4 was uploaded, then retrieve the VideoId 1 from the db and display it in the text input next to the name of the uploaded file.

share|improve this question

1 Answer 1

up vote 1 down vote accepted

Just call $mysqli->insert_id and append it to the file name before you call the function stopVideoUpload

Also $vid needs to be assigned before you bind it, not after

     $insert->execute();
     $id = $mysqli->insert_id;
        if ($insert->errno) {
          // Handle query error here
        }

        $insert->close();     

?>

 <script language="javascript" type="text/javascript">
 window.top.stopVideoUpload(<?php echo $result; ?>, '<?php echo $id. $_FILES['fileVideo']['name'] ?>');
 </script>  
share|improve this answer
    
Can I ask how you would append it to the text input value because my attempt isn't working. Keep getting error that mysqli should not be called here. –  user1914374 Jan 18 '13 at 21:34
    
@user1930247 something like the example above. –  ROY Finley Jan 18 '13 at 21:42
    
Oh I see what you have done, it works in terms of outputting the id, but I don't want the user to be able to see the video id, hence why I want the value in a hidden input –  user1914374 Jan 18 '13 at 22:14
    
OH, wait a minute Im not thinking, why dom't I just put the hidden input in the above code in your answer. –  user1914374 Jan 18 '13 at 23:07
    
ah.... now you see. that will work –  ROY Finley Jan 18 '13 at 23:08

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