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I have two pages called openclosediv.php and content.php. In openclosediv.php page I have list of records and a button(show/hide div button) which brings content.php into the that's placed in openclosediv.php . In content.php page I have a ckeditor whenever I click the button, told above, the first time ckeditor appears however, after the first time whenever I push the button ckeditor does not appear.

Here is the code which shows/hides the div in openclosediv.php :

    function ShowHideDiv(divid)
    {   

   var block=document.getElementById(divid).style.display;
   if(block=="none")
   {
    document.getElementById(divid).style.display="block";
   }
   else
   {
    document.getElementById(divid).style.display="none";
   }
   var data="divid="+divid;
   jQuery('#'+divid).showLoading();
    $.ajax({
           type: "POST",
           url: "content.php",
           data: data,
           error: function(){
           alert('Error while loading!');
         },
          success: function(data){
            jQuery('#'+divid).hideLoading();
    $('#'+divid).html(data);
     }
     });
   }

And here how I creat ckeditor in content.php:

                $ckeditor = new CKEditor();
                $ckeditor->basePath  = 'ckeditor/' ;
                CKFinder::SetupCKEditor( $ckeditor, 'ckfinder/' ) ;
                $config['height'] = '300';
        $config['width'] = '700';
                $initialValue = "";
                $ckeditor->editor("somename", $initialValue, $config);

Thanks in advance.

share|improve this question

1 Answer 1

Since you are using jQuery, you can use the .toggle() method instead of manually showing and hiding:

function ShowHideDiv(divid)
{
    $('#' + divid).toggle();

    // Do ajax
}

The .toggle() code should replace this piece:

var block=document.getElementById(divid).style.display;
if(block=="none")
{
   document.getElementById(divid).style.display="block";
}
else
{
   document.getElementById(divid).style.display="none";
}
share|improve this answer
    
Thanks for your reply. But I am doing some database processing in content.php page. Will it still work if I write .toggle(); And should I place it to the line in which I placed $('#'+divid).html(data); –  complex05 Nov 6 '12 at 15:23
    
See my edit above. This javascript is being executed client-side so what you are doing on the server happens before this ever occurs. –  cillosis Nov 6 '12 at 15:28
    
instead of the part you mentioned I put $("#"+divid).toggle(); however, it did not work again. –  complex05 Nov 7 '12 at 6:50
    
It shows up once and never shows up again. –  complex05 Nov 7 '12 at 7:58

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