Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

Right this is what I want for the solution. When the user clicks on the "Cancel" button, it would try to find the file name of the file that is going to be cancelled and then delete the database row containing that file name.

The problem is that it is not recognizing the file name as it is stating that imagecancelname=undefined. As this is undefined, it can't delete the database row containing the file name as it doesn't recognize the name of the file. By doing a print $imagecancelsql it is displaying this below after I have cancelled uploading a file:

DELETE FROM Image WHERE ImageFile = 'ImageFiles/undefined'

So the question is that how can I get imagecancelname to recognise the name of the file which is going to be cancelled so then it can be used to be able to delete the database row containing the file name?

Below is the current form code:

var $fileImage = $("<form action='imageupload.php' method='post' enctype='multipart/form-data' target='upload_target' onsubmit='return startImageUpload(this);' class='imageuploadform' >" + 
  "Image File: <input name='fileImage' type='file' class='fileImage' /></label><br/><br/><label class='imagelbl'>" + 
  "<input type='submit' name='submitImageBtn' class='sbtnimage' value='Upload' /></label>" +     
  "</p><p class='imagef1_cancel' align='center'></p>" +
  "<iframe class='upload_target' name='upload_target' src='#' style='width:0;height:0;border:0px;solid;#fff;'></iframe></form>");

Below is the startImageUpload function where it displays the cancel button when file is uploading and where it contains the cancel button function if the user clicks on the Cancel button:

    var sourceImageForm; 

         function startImageUpload(imageuploadform, imagecancelname){

  $(imageuploadform).find('.imagef1_upload_process').css('visibility','visible');
  $(imageuploadform).find('.imagef1_cancel').css('visibility','visible');
  $(imageuploadform).find('.imagef1_upload_form').css('visibility','hidden');
  sourceImageForm = imageuploadform;

/*The above would show and hide elements within the form the file is being uploaded.
For example if I have three forms and the second form is uploading a file, then it
shows and hides the elements within the second form only */

        $(imageuploadform).find('.imagef1_cancel').html('<div><button type="button" class="imageCancel" id="image_cancel_' + imagecancelname + '">Cancel</button></div>').find(".imageCancel").on("click", function(event) {
        $.ajax("cancelimage.php?imagecancelname=" + $(this).attr('id').slice(13));

});       
      return true;
}

Finally below is the cancelimage.php script where when the user clicks on the Cancel button, it will navigate to this script and this is where the script is used to delete the database row by finding the file name using the $GET method.

<?php

  // ... connected to DB

  $image_cancel_ = $_GET["imagecancelname"];
  $imagecancelsql = "
    DELETE FROM Image 
    WHERE ImageFile = 'ImageFiles/".mysql_real_escape_string($image_cancel_)."'
  ";

  print $imagecancelsql;

  mysql_close();

?>

Below is the print of the query:

Notice: Undefined index: imagecancelname in /web/stud/xxx/Mobile_app/cancelimage.php on line 19 array(0) { } DELETE FROM Image WHERE ImageFile = 'ImageFiles/'

share|improve this question
    
not sure if it will help, but shouldn't it be <input type="button"... /> instead of <button type="button"...></button> ? –  jbabey May 16 '12 at 15:44
    
@jbabey I just looked at w3schools, it is definetly <button></button> –  user1394925 May 16 '12 at 15:54
1  
@user1391585 w3fools.com - although in this isntance they are correct. –  DaveRandom May 16 '12 at 15:55
    
@user1391585 ...which my spelling is not. Instance. Obviously. –  DaveRandom May 16 '12 at 16:17
add comment

2 Answers

up vote 0 down vote accepted

My guess is that the browser does not like the custom attribute you defined on the button to hold the file path. However, you can easily store this information in a standard attribute - the id. Try this JS instead:

function startImageUpload(imagecancelname){
  // All this can be chained into one since .html() returns the correct jQuery object
  $('.imagef1_cancel').eq(window.lastUploadImageIndex).html('<div><button type="button" class="imageCancel" id="image_cancel_' + imagecancelname + '">Cancel</button></div>').find(".imageCancel").on("click", function(event) {
    $.ajax("cancelimage.php?imagecancelname=" + $(this).attr('id').slice(13));
  });     
  return true;
}
share|improve this answer
    
Before I test this, what does slice(13) mean? –  user1394925 May 16 '12 at 15:58
    
It's basically the same as the PHP substr() function. Here, it's cutting the first 13 characters off the ID before sending it to the server, because I added the 13 characters image_cancel_ to the beginning of the ID to help avoid collisions with other IDs you may already have on your page. See this –  DaveRandom May 16 '12 at 16:14
    
It is giving me an error in error console: $(this).attr('id') is undefined. Update code in question –  user1394925 May 16 '12 at 16:19
    
You seem to have leaked a space in there instead of an underscore - yours is image_cancel ' + imagecancelname, mine is image_cancel_' + imagecancelname –  DaveRandom May 16 '12 at 16:24
    
Also your function now makes no sense, please try substituting your entire function code for the code above, I have wrapped the two $('.imagef1_cancel').eq(window.lastUploadImageIndex)... lines into a single statement. –  DaveRandom May 16 '12 at 16:25
show 10 more comments

I think the image should not be stored in your DB before the complete upload. If the image is cancelled, then it will not be in DB.

To answer the precise question of undefined, in jquery, attr is to get markup attribute. ( ).

You should put an id on your file upload input :

<input id='fileImage' name='fileImage' type='file' class='fileImage' />

and then use it to get the value

var image_cancel = $('#fileImage').val();
share|improve this answer
    
When you said image should not be in db before upload is complete, that is actually what I wanted to do but I didn't know how to do this. The problem is that while file is uploading, it inserts the db row, when I press cancel, because file was in its uploading process, then it inserted row in database. Anyway can I show you php script of file upload so you can see when database row is inserted? –  user1394925 May 16 '12 at 15:57
    
I can't use the file input textbox to retreive the file name. Reason for this is that if I upload "Tulips.png" for first time, in server it saves it as "Tulips.png", but if I upload same file second time, then in server it saves it as "Tulips_2.png". This is in php script where it uploads the file –  user1394925 May 16 '12 at 16:08
    
in the php upload script, there is a move_uploaded_file() function. If this function is successfull, the you update your DB row with your copied file. –  djleop May 18 '12 at 15:21
add comment

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.