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I have made a form validation using ajax post method. But i got the error "Uncaught TypeError: Cannot read property 'success' of null"...Can anybody help me to solve this...?

My Code

$.post("register.php",{uname:uname,pwd:pwd,cfmpwd:cfmpwd,email:email,gender:gender}).success(function(data){


        var obj = jQuery.parseJSON(data);
        $('.chatregalert').fadeIn('slow');
        if(obj.success == 1){
            $('.chatregalert').css('color','#067800');
            $('.chatuname').val('');
            $('.chatpwd').val('');
            $('.chatcfmpwd').val('');
            $('.chatemail').val('');
            $('.chatgender').val('');
        }else{
            $('.chatregalert').css('color','#CC0000');
        }
        $('.chatregalert').html(obj.msg);


    });
    return false;
});

I have tried alert(data) for success...It alert an empty box... How can i fix this..?

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2 Answers 2

up vote 1 down vote accepted

Finally i got the solution. The problem is my server doesn't support JSON because the version of my PHP is 5.1.6. The JSON support available only PHP 5.2 and higher versions..

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Could you try to do it like this :

$.post("register.php",
       {uname:uname,pwd:pwd,cfmpwd:cfmpwd,email:email,gender:gender},
       function(data){
            var obj = jQuery.parseJSON(data);
            $('.chatregalert').fadeIn('slow');
            if(obj.success == 1){
                $('.chatregalert').css('color','#067800');
                $('.chatuname').val('');
                $('.chatpwd').val('');
                $('.chatcfmpwd').val('');
                $('.chatemail').val('');
                $('.chatgender').val('');
            }else{
                $('.chatregalert').css('color','#CC0000');
            }
            $('.chatregalert').html(obj.msg);
     });
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You should also look at $.getJSON api.jquery.com/jQuery.getJSON –  N. Hodin Jun 26 '12 at 13:49
    
When i use this format it returns 'Unexpected end of script' error... –  vinu Jun 26 '12 at 14:18
    
Are you sure you don't have issues with your php script? Did you try to call it manually without ajax and if it works, try to just return parameters values to be sure you receive good data. –  N. Hodin Jun 26 '12 at 14:21
    
The same code works fine in local XAMPP server.. but it doesn't works in online server.. I think the server doesn't response the json object.. Because when i changed the code as....... .success(function(data){ alert(data) });... it alerts an empty box.. the server returns null.. –  vinu Jun 27 '12 at 4:31

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