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I have some jQuery code which is throwing a really weird error. Google Chrome calls the error Uncaught TypeError: Illegal invocation.I don't know how to solve it.Here is my code..

jquery-ajax

$.ajax(
                {

                    type:"POST",
                    url:"http://localhost/registrationvalidation.php",
                    data:{ftname:fname,ltname:lname,gend:gender,emailid:email,dt:date,desnation:designation,usrname:uname,pswd1:pwd1,pswd2:pwd2},
                    success:function(data)
                    {  

                        if(data=="ok")
                        {

                            alert(data);
                            return true;
                        }
                        else
                        {
                            alert(data);
                            return false;
                        }
                    }

                });

Friends can u tell me the reason for this error.

share|improve this question
    
Which line is causing the error ? 1 - Are you sure, each variable is initialized ? 2 - the main script that you are launching is on localhost too ? 3 - Have you correctly initialized you jquery environment by including proper js files ? 4 - There is a "});" at the end which do not close anything and create a syntax error. Is your $.ajax method enclosed in an other code snippet ? –  Gilles Hemmerlé Dec 10 '12 at 8:38
    
The code you've quoted has a syntax error (you have too many }); lines in it), but that would cause a syntax error, not an illegal invocation. Please quote your actual code (copy and paste, not retyped) and quote the actual error message (copy and paste), as well as telling us which line is the line the error references. –  T.J. Crowder Dec 10 '12 at 8:40
    
after entering into the $.ajax({,the error is showing –  aji136252 Dec 10 '12 at 8:45
    
Is all your variables passed to .data argument strings ? You must not pass object to this parameter. Could you show us the initialisation of the variables fname,lname,gender,email,pwd1,pwd2, usrname –  Gilles Hemmerlé Dec 10 '12 at 8:52
    
var fname=$('input:text[name=firstname]').val(); var lname=$('input:text[name=lastname]').val(); var gender=$('input:text[name=gender]').val(); var email=$("#email").val(); var date=$("#date").val('yyyy-MM-dd'); var designation=$('input:text[name=designation]').val(); var uname=$('input:text[name=username]').val(); var pwd1=$('input:password[name=password1]').val(); var pwd2=$('input:password[name=password2]').val(); –  aji136252 Dec 10 '12 at 8:57

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