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How to set a popup window that open when first time the page load? i m using this code for my popup how to set session for this popup? is there any way to use ip as session?

    <script>
        !window.jQuery && document.write('<script src="fancybox/jquery-1.4.3.min.js"><\/script>');
    </script>

    <script type="text/javascript" src="fancybox/jquery.fancybox-1.3.4.pack.js"></script>   

    <script type="text/javascript">

    $(document).ready(function() {


        $("a#example1").fancybox();

        $("a#example1").trigger('click');


    });
    </script>


    <link rel="stylesheet" type="text/css" href="fancybox/jquery.fancybox-1.3.4.css" media="screen" />


</head>



<body>

<a id="example1" href="images/pic.jpg"></a> 



</body>
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3 Answers 3

Check for a cookie, and if not there, do the popup and set the cookie for next time; if the cookie is there, don't do the popup. Quirksmode has some functions for making cookies easier, or of course there's the jQuery cookie plugin (and probably about 50 others).

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+1 ya i was gona sayit too –  shareef Jun 20 '12 at 10:08

you can use jquery-cookie

Demo :

$(document).ready(function() {
       if($.cookie('popup') != 1){
           $.cookie('popup', '1');
           $("a#example1").fancybox();
           $("a#example1").trigger('click');
        }
    });
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not working for me... :( –  capri Jun 20 '12 at 10:46
    
@capri did you download the plugin and load it inside your document, if so provide the script you did –  mgraph Jun 20 '12 at 10:48

Using sessions for this would be an unnecessary load on your server. Use cookies instead, that helps to store data in the user's computer.

Use Javascript/your server language to check the cookie and show the popup based on its value!

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