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How to generate a HTML of a given partial view on ASP.NET view engine is known.

But if this functionality is used on razor partial view it does not work, as exception says the partial view does not derive from "UserControl".

How to fix the rendering to support razor partial view?

I need this because I generate emails form this partial views ...

UPDATE:

Code that fails (@mcl):

public string RenderPartialToString(string controlName, object viewData)
    {
        ViewPage viewPage = new ViewPage() { ViewContext = new ViewContext() };
        viewPage.Url = this.GetUrlHelper();

        string fullControlName = "~/Views/Email/" + controlName + ".ascx";

        viewPage.ViewData = new ViewDataDictionary(viewData);
        viewPage.Controls.Add(viewPage.LoadControl(fullControlName));

        StringBuilder sb = new StringBuilder();
        using (StringWriter sw = new StringWriter(sb))
        {
            using (HtmlTextWriter tw = new HtmlTextWriter(sw))
            {
                viewPage.RenderControl(tw);
            }
        }
        return sb.ToString();
    }
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1  
Can you show the code you have so far that generates the exception? –  mlibby Dec 3 '10 at 12:48

6 Answers 6

up vote 105 down vote accepted
@Html.Partial("nameOfPartial", Model)

Update

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

    ViewData.Model = model;

    using (StringWriter sw = new StringWriter()) {
        ViewEngineResult viewResult = ViewEngines.Engines.FindPartialView(ControllerContext, viewName);
        ViewContext viewContext = new ViewContext(ControllerContext, viewResult.View, ViewData, TempData, sw);
        viewResult.View.Render(viewContext, sw);

        return sw.GetStringBuilder().ToString();
    }
}
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Yes, this is how you render a partial view inside a view. But how to render it inside a controller action? –  Peter Stegnar Dec 3 '10 at 12:42
    
Updated the answer. –  jgauffin Dec 3 '10 at 12:53
    
Great this is it now! Works with Razon and ASP notation. –  Peter Stegnar Dec 3 '10 at 18:57
2  
One subquestiuon: How to render the view that is in another Controller scope then the current? Lets say it is in "EmailController" scope (Email view folder)? –  Peter Stegnar Dec 4 '10 at 11:38
1  
This was a great solution. I had the exact need with email and opted to use this. –  uadrive Oct 25 '11 at 16:52

great code; little hint: if you sometimes have to bypass more data and not only the viewmodel ..

 if (model is ViewDataDictionary)
 {
     controller.ViewData = model as ViewDataDictionary;
 } else {
     controller.ViewData.Model = model;
 }
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1  
You have not completed your answer –  poohdedoo Oct 20 '13 at 3:17

Although adequate answers have already been given, I'd like to propose a less verbose solution, that can be used without the helper methods available in an MVC controller class. Using a third party library called "RazorEngine" you can use .Net file IO to get the contents of the razor file and call

string html = Razor.Parse(razorViewContentString, modelObject);

Get the third party library here.

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public static string RenderViewToString(Controller controller, string viewName, object model)
{
    var oldController = controller.RouteData.Values["controller"].ToString();

    if (controller.GetType() != typeof(EmailController))
        controller.RouteData.Values["controller"] = "Email";

    var oldModel = controller.ViewData.Model;
    controller.ViewData.Model = model;
    try
    {
        using (var sw = new StringWriter())
        {
            var viewResult = ViewEngines.Engines.FindView(controller.ControllerContext, viewName,
                                                                       null);

            var viewContext = new ViewContext(controller.ControllerContext, viewResult.View, controller.ViewData, controller.TempData, sw);
            viewResult.View.Render(viewContext, sw);

            //Cleanup
            controller.ViewData.Model = oldModel;
            controller.RouteData.Values["controller"] = oldController;

            return sw.GetStringBuilder().ToString();
        }
    }
    catch (Exception ex)
    {
        Elmah.ErrorSignal.FromCurrentContext().Raise(ex);

        throw ex;
    }
}
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I saw that someone was wondering how to do it for another controller.

In my case I had all of my email templates in the Views/Email folder, but you could modify this to pass in the controller in which you have views associated for.

public static string RenderViewToString(Controller controller, string viewName, object model)
    {
        var oldController = controller.RouteData.Values["controller"].ToString();

        if (controller.GetType() != typeof(EmailController))
            controller.RouteData.Values["controller"] = "Email";

        var oldModel = controller.ViewData.Model;
        controller.ViewData.Model = model;
        try
        {
            using (var sw = new StringWriter())
            {
                var viewResult = ViewEngines.Engines.FindView(controller.ControllerContext, viewName,
                                                                           null);

                var viewContext = new ViewContext(controller.ControllerContext, viewResult.View, controller.ViewData, controller.TempData, sw);
                viewResult.View.Render(viewContext, sw);

                //Cleanup
                controller.ViewData.Model = oldModel;
                controller.RouteData.Values["controller"] = oldController;

                return sw.GetStringBuilder().ToString();
            }
        }
        catch (Exception ex)
        {
            Elmah.ErrorSignal.FromCurrentContext().Raise(ex);

            throw ex;
        }
    }

Essentially what this does is take a controller, such as AccountController and modify it to think it's an EmailController so that the code will look in the Views/Email folder. It's necessary to do this because the FindView method doesn't take a straight up path as a parameter, it wants a ControllerContext.

Once done rendering the string, it returns the AccountController back to its initial state to be used by the Response object.

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You could also use the RenderView Controller extension from here

and use it like this:

public ActionResult Do() {
var html = this.RenderView("index", theModel);
...
}

it works for razor and web-forms viewengines

share|improve this answer
    
Checked the link. @ChurkNorris is the author of ASP.net MVC Awesome, which is a commercial product from version 2.0 (currently latest release Mar 12 2012). Version 1.9 (latest release Jun 9 2011) is still open source, but probably won't be developed any more. Any forks of 1.9 out there? –  Joel Purra Apr 11 '12 at 14:26

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