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I just want to ask, if I replace this code 1 with code 2, is it still same or not for the action?

Code 1

$(document).ready(function(){

  var thumb = $('img#thumb');        

  new AjaxUpload('imageUpload', {
    action: $('form#newHotnessForm').attr('action'),
    name: 'image',
    onSubmit: function(file, extension) {
      $('div.preview').addClass('loading');
    },
    onComplete: function(file, response) {
      thumb.load(function(){
        $('div.preview').removeClass('loading');
        thumb.unbind();
      });
      thumb.attr('src', response);
    }
  });

});

Code 2

$(document).ready(function(){

      var thumb = $('img#thumb');        

      new AjaxUpload('imageUpload', {
        action: 'upload.php',
        name: 'image',
        onSubmit: function(file, extension) {
          $('div.preview').addClass('loading');
        },
        onComplete: function(file, response) {
          thumb.load(function(){
            $('div.preview').removeClass('loading');
            thumb.unbind();
          });
          thumb.attr('src', response);
        }
      });

    });

Thank you.

share|improve this question
    
do console.log( $('form#newHotnessForm').attr('action') == 'upload.php') Not sure what you are trying to do.. but if you know that the action should always be 'upload.php' (which is probably what you want) then why query the dom for that? – Lucky Soni Feb 15 '14 at 23:36
    
yes its the same... it selects the action of the form. having issues with that ? – Dwza Feb 15 '14 at 23:41
up vote 0 down vote accepted

It should be the same, if $('form#newHotnessForm').attr('action') is equal to 'upload.php'.

share|improve this answer
    
comment would be enough – Dwza Feb 15 '14 at 23:41

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