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I have a view with a partial view in it. I have a model in the view and a kendogrid in the partial view. I also have an ajax call to teh controller just updates my model without returning a view. Say I need to click a toolbar button on the grid that generates an id. Now i want to return that id to the view(by updating model with that id). But success(data) is not firing

$.ajax({
            type: "POST",
            data: JSON.stringify({ Id: pId, schId: sId}),
            contentType: "application/json; charset=utf-8",
            dataType: "JSON",
            cache: false,
            url: '@(Url.Action("Process", "Controller"))',
            success: function (data) {
                var abc = data.InvoiceId;---->not fired
            },
        });

Controller

public ActionResult Process(int Id, int schId, SearchModel mymodel, [DataSourceRequest]DataSourceRequest request)
        {
            int myId = -1;

                // generate the Id);
        myId = generatenewId(Id,schId);-- this gets generated and myId is updated
            }

            mymodel.Id = myId 
            return View(mymodel)

        }
share|improve this question
    
You specify that you expect JSON in the response with dataType: "JSON", but you send "View(model)" result in your action. This could surely cause some misbehaviour. You should probably use simply "return Json(mymodel)" in you action as a result. –  Zoltán Tamási Apr 17 at 20:19
1  
Are you hitting your Controller's Action if/when you debug? –  Bazinga Apr 17 at 20:20
    
If you use Kendo Grid, using $("#your-grid").kendoGrid({ dataSource: { type: "json", ... }) could be a lot easier. –  Win Apr 17 at 20:20
    
If the success isn't fired, the error is. Try adding an error callback and inspecting the three parameters. –  Kevin B Apr 17 at 21:32
    
@user3520033 if the answer helped you please accept it! –  8bitcat Apr 25 at 23:26

2 Answers 2

You should decide wether you want to send a HTML result (view), or JSON result (Json), and call the corresponding result in your Action. If you set the dataType to JSON in your jQuery Ajax call, you should return Json result, for example:

public ActionResult Process(int Id, int schId, SearchModel mymodel, [DataSourceRequest]DataSourceRequest request)
{
  int myId = -1;
  // generate the Id);
  myId = generatenewId(Id,schId);-- this gets generated and myId is updated
  mymodel.Id = myId 
  return Json(mymodel) // this will return Json in the response containing your model object
  //return View(mymodel) !!! This would return a full HTML response rendered with you model
}
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This is how I do it using a mail form!

Look at the signature in my controller I use JsonResult not ActionResult! Also I return JSON not a View!

return Json(result);

IN MY CONTROLLER

 public JsonResult AjaxMailer(MailerModel model)
 {
            Emailer mailer = new Emailer();
            JsonResult Jr = new JsonResult();
            string result = mailer.DispatchEmail(model.phone, model.name, model.message, model.email);
            return Json(result);
 }

JAVASCRIPT IN MY VIEW

function imClicked(e) {
    e.preventDefault();
    var messageObj = 
   {
       "name": "",
       "email": "",
       "phone": "",
       "message": "",

   };
    messageObj.name = $("#name").val();
    messageObj.email = $("#email").val();
    messageObj.phone = $("#phone").val();
    messageObj.message = $("#message").val();

    $.ajax({
        dataType: "json",
        contentType: 'application/json',
        type: 'POST',
        url: '/Contact/AjaxMailer',
        data: JSON.stringify(messageObj),
        error: printError,
        success: mailsent

    });
};
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1  
He should not use JsonRequestBehavior.AllowGet unless he needs to. The OP has set the request method to "POST", so no need for that. –  Zoltán Tamási Apr 17 at 21:22
    
@ZoltánTamási opps I missed that updated per request! –  8bitcat Apr 17 at 21:53

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