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I have one asp.net mvc 3 application.

public ActionResult Students()
{ 
  return View();
}

When i request these actions thru browser, everything works fine. It returns appropriate views, but when such actions are called from another site(across domain) thru jQuery Ajax call, It give transport error.

as a result we need to return such views in JsonpResult type, but now the problem is how do browser load such views of type JsonpResult ? it doesn't return html part of the view instead it asks browser to save view result of type Jsonp.

Any suggestion, how to solve this ?

thanks.

share|improve this question
    
Yes, Absolutely true! –  Joe Sep 26 '12 at 9:25
    
I don't understand why you want to return a complete view (html document) in an ajax call? Ajax calls are mainly for pieces of data in expressed json, xml or html (partial view?). –  Mark Sep 26 '12 at 13:50

1 Answer 1

up vote 0 down vote accepted

You could use the RenderPartialViewToString method shown in this answer to render the view to a string and then return the custom JsonpResult you have written:

public class StudentsController : Controller
{
    public ActionResult Index()
    {
        MyViewModel model = ...
        return new JsonpResult(new 
        {
            html = RenderViewToString("Index", model)
        });
    }

    public string RenderViewToString(string viewName, object model)
    {
        ViewData.Model = model;
        using (var sw = new StringWriter())
        {
            var viewResult = ViewEngines.Engines.FindPartialView(ControllerContext, viewName);
            var viewContext = new ViewContext(ControllerContext, viewResult.View, ViewData, TempData, sw);
            viewResult.View.Render(viewContext, sw);
            viewResult.ViewEngine.ReleaseView(ControllerContext, viewResult.View);
            return sw.GetStringBuilder().ToString();
        }
    }

    protected string RenderPartialViewToString(string viewName, object model)
    {
        if (string.IsNullOrEmpty(viewName))
        {
            viewName = ControllerContext.RouteData.GetRequiredString("action");
        }

        ViewData.Model = model;
        using (var sw = new StringWriter())
        {
            var viewResult = ViewEngines.Engines.FindPartialView(ControllerContext, viewName);
            var viewContext = new ViewContext(ControllerContext, viewResult.View, ViewData, TempData, sw);
            viewResult.View.Render(viewContext, sw);
            return sw.GetStringBuilder().ToString();
        }
    }
}

The JsonpResult class used here could be found in this post.

And now you could invoke this controller action using AJAX from another domain:

var url = 'http://example.com/students/index';
$.getJSON(url + '?callback=?', function (data) {
    alert(data.html);
});
share|improve this answer
    
Whether RenderPartialViewToString method will return View ?? –  Joe Sep 26 '12 at 9:27
    
No, it returns a string. The first parameter is the view name and the second is the model. It will simply execute this view and return the result to a string that we are embedding into the JsonpResult. –  Darin Dimitrov Sep 26 '12 at 9:27
    
sorry for a dumb question, but controller action which returning View will get replaced with "return new JsonpResult(.. ", whether browser will recognize this (html) ? however this is a preliminary assumption, let me give a try first. –  Joe Sep 26 '12 at 9:31
    
I have slightly modified the controller action and added the RenderViewToString method in addition to RenderPartialViewToString. You should use the one that suits your needs. For example if you want to return the full markup with a Layout then use RenderViewToString. –  Darin Dimitrov Sep 26 '12 at 9:33
    
having error at return new JsonpResult(new { html = RenderViewToString("Index", model) }); –  Joe Sep 26 '12 at 9:40

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