Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free.

i have a html button with "button-account" name in html body and want update aspx page with ajax when user click the button

I get this error in google chrom

SyntaxError: JSON.parse: unexpected character

and this in fire fox

SyntaxError: JSON.parse: unexpected character

Here's my Code

<script type="text/javascript" >
    $(document).ready(function () {

        $("#button-account").bind("click", "accountRegister");

        function accountRegister() {
            var waitObj = "<span class='wait' > <img  src='Resource/Images/loading.gif' alt='' /> </span>";
            var user = $("[name='username']").val();
            var pass = $("[name='password']").val();
            var dataObj = {
                "username": user,
                "password": pass,
            };
            $.ajax({
                type: "POST",
                url: "Checkout.aspx/login",
                data: dataObj,
                contentType: "application/json; charset=utf-8",
                dataType: "json",
                beforSend: function () {
                    $(this).attr("disabled", "true");
                    $(this).after(waitObj);
                },
                success: function (msg) {
                    // Replace the div's content with the page method's return.
                    alert("success");
                    $("#checkout").slideUp("slow");
                    $("#payment-address").slideDown("slow");
                },
                error: function (msg) {
                    alert("error");
                },
                complete: function () {
                    $(this).attr("disabled", "false");
                    $(".wait").remove();
                },
            });
        }


    });





</script>

and here's my webmethod

[WebMethod]
    public static string login()
    {
        //bool UserIsValid = false;
        //string userName = "";
        //string pass = "";
        //MembershipUser u = Membership.GetUser(userName);
        //pass = u.GetPassword();
        //if (UserIsValid)
        //{
        //  //  returnAsHtml = "true";

        //}
        //else
        //{
        //    //returnAsHtml = "use is not valid";

        //}
        JavaScriptSerializer js = new JavaScriptSerializer();
        string result = js.Serialize("{ a:'1' }");
        return result;

    }

and fiddler return 200 status. but return html. i know this is my mistake. how solve it?

any help is appriciate...

share|improve this question
    
Could you show the part of the code, where JSON.parse() is called? –  M4N May 14 '13 at 11:23

3 Answers 3

The server probably returns an error-page (e.g. "<html> ...") instead of the JSON response you expected.

Use fiddler, chrome's developer tools or a similar tool to check what the exact answer is, that the server returns.


In response to your comments:

Check what the content of the returned HTML page is. It's probably an error caused by your server-side code (e.g. an unhandled exception) or the server-side configuration.

share|improve this answer
    
hi, fiddler result is 200, ajax run successfully –  Mohammadreza May 14 '13 at 11:17
    
@Edalat: but what is the content of the response? Is it the expected JSON or is it an HTML (error-)page? –  M4N May 14 '13 at 11:19
    
it return html, unfourtunetly. –  Mohammadreza May 14 '13 at 11:29

Change this

var dataObj = {
                "username": user,
                "password": pass,
            };

To this

var dataObj = {
                "username": user,
                "password": pass
            };

You have an extra comma , ("password": pass,) after pass, so it is not able to serialize it properly.

Edit:

Try this

[WebMethod]
    public static string login()
    {
        //bool UserIsValid = false;
        //string userName = "";
        //string pass = "";
        //MembershipUser u = Membership.GetUser(userName);
        //pass = u.GetPassword();
        //if (UserIsValid)
        //{
        //  //  returnAsHtml = "true";

        //}
        //else
        //{
        //    //returnAsHtml = "use is not valid";

        //}

        //JavaScriptSerializer js = new JavaScriptSerializer();
        //string result = js.Serialize("{ a:'1' }"); // no need to serialize 
        return "{ a:'1' }";

    }
share|improve this answer
    
hi @Pawan Nogariya, thanks, but it doesn't work yet. –  Mohammadreza May 14 '13 at 11:19
    
Hmm, ok. Can you post the code then that uses JSON.parse? –  Pawan Nogariya May 14 '13 at 11:26
    
nogriya, yes, i merge my server code to post –  Mohammadreza May 14 '13 at 11:35
    
I edited my answer. Please see the edit part. –  Pawan Nogariya May 14 '13 at 11:39
    
not work yet , response return HTML document @pawan nogariya –  Mohammadreza May 14 '13 at 11:55
up vote 0 down vote accepted

so sorry!!!

in other section a called this

 $('#button-login').live('click', function () {
    $.ajax({
        url: 'Checkout.aspx?login',
        type: 'post',
        data: $('#checkout #login :input'),
        dataType: 'json',
        beforeSend: function () {
            $('#button-login').attr('disabled', true);
            $('#button-login').after('<span class="wait">&nbsp;<img src="Resource/Images/loading.gif" alt="" /></span>');
        },
        complete: function () {
            $('#button-login').attr('disabled', false);
            $('.wait').remove();
        },
        success: function (json) {
            $('.warning, .error').remove();

            if (json['redirect']) {
                location = json['redirect'];
            } else if (json['error']) {
                $('#checkout .checkout-content').prepend('<div class="warning" style="display: none;">' + json['error']['warning'] + '</div>');

                $('.warning').fadeIn('slow');
            }
        },
        error: function (xhr, ajaxOptions, thrownError) {
            alert(thrownError + "\r\n" + xhr.statusText + "\r\n" + xhr.responseText);
        }
    });
});
share|improve this answer

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.