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I am having trouble getting the correct value in my hidden input.

Below I have a form which gets appended into a table everytime he user clicks a button:

  var $fileImage = $("<form action='imageupload.php' method='post' enctype='multipart/form-data' target='upload_target_image' onsubmit='return imageClickHandler(this);' class='imageuploadform' >" + 
    "<p class='imagef1_upload_form' align='center'><br/><span class='msg'></span><label>" + 
    "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>" + 
    "<input type='hidden' class='numimage' name='numimage' value='" + numimage + "' /></p>" +
    "<iframe class='upload_target_image' name='upload_target_image' src='#' style='width:0px;height:0px;border:0px;solid;#fff;'></iframe></form>");

    $image.append($fileImage); 

Now this is the problem I am recieving and it deals with the hidden input in the form:

<input type='hidden' class='numimage' name='numimage' value='" + numimage + "' />

Lets say I append two forms into a table, one form in row 1 (value in hidden input should be 1) and one form in row 2 (value in hidden input should be 2).

Now if I upload a file using form 1, then the value in hidden input equals 1 which is correct. If I then upload a file using form 2, then the value in the input equals 2. This is fine.

The problem is that if I revert back to form 1 and upload another file, because of the way I have coded it, the value of the hidden input is still 2 when it should really be 1.

So what my question is that how can the code below be changed so that the value of the hidden input is the number depending on which form is used to upload the file, (value = 1 for form 1 used, value = 2 for form 2 used, value =3 for form 3 used etc)

Below is the code:

var numimage = 0;

...//form code from top goes here

//CODE BELOW INCREMENTS A QUESTION NUMBER AND INCREMENTS THE HIDDEN VALUE FOR EACH ROW ADDED
          $('.num_questions').each( function() {

    var $this = $(this);

     var $questionNumber = $("<input type='hidden' class='num_questionsRow'>").attr('name',$this.attr('name')+"[]")
                   .attr('value',$this.val());

     $qid.append($questionNumber);                             


    ++numimage;        
    $(".numimage").val(numimage);



});

//BELOW STARTS THE UPLOADING OF THE FILE

function startImageUpload(imageuploadform){

  $(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;

}); 

//BELOW IS CODE FOR WHEN FILE UPLOAD STOPS  
function stopImageUpload(){

      $(sourceImageForm).find('.imagef1_upload_form .msg').html(result);
      $(sourceImageForm).find(".fileImage").replaceWith("<input type='file' class='fileImage' name='fileImage' />");
      $(sourceImageForm).find('.imagef1_upload_form').css('visibility','visible');  

return true;
}
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1 Answer

up vote 0 down vote accepted

Add this method in any place

function GetFormCount(){
  var frm = $('FORM');

    if(frm[0] != undefined)
    {
       if(length in frm )
       {
          return  frm.length ;
       }
        return 1;
    }
    return 0;
}

JS Change creation of your form

var $fileImage = $("<form action='imageupload.php' method='post' enctype='multipart/form-data' target='upload_target_image' onsubmit='return imageClickHandler(this);' class='imageuploadform' >" + 
    "<p class='imagef1_upload_form' align='center'><br/><span class='msg'></span><label>" + 
    "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>" + 
    "<input type='hidden' class='numimage' name='numimage' value='" + GetFormCount()+ "' /></p>" +
    "<iframe class='upload_target_image' name='upload_target_image' src='#' style='width:0px;height:0px;border:0px;solid;#fff;'></iframe></form>");

p.s. As i understood you have this field in each form.

share|improve this answer
    
if you don't mind can you alter your javascript code so it includes my jquery code becuse I am a bit confused on what I need to do, it will be easier for me if you show an example with my code :) –  user1681039 Sep 26 '12 at 21:03
    
See my updates. In this case you will have hidden form with value of own form. If you have 3 form you will have three hidden form with value '0,1,2' –  Anton Baksheiev Sep 26 '12 at 21:08
    
Oh sorry I understand now all I need to do is use the javascript code you have kindly given me but simply change var frm = $('FORM'); to var frm = $('.imageuploadform'); . Or can I keep it to var frm = $('FORM'); ? –  user1681039 Sep 26 '12 at 21:19
    
You can change, but in this case all your forms should have this class. –  Anton Baksheiev Sep 26 '12 at 21:22
    
Thank you very much for the code and your answer :) Im guessing I also dont need this ++numimage; $(".numimage").val(numimage); –  user1681039 Sep 26 '12 at 21:23
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