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I have a strange problem with my model passed to the View

Controller

[Authorize]
public ActionResult Sth()
{
    return View("~/Views/Sth/Sth.cshtml", "abc");
}

View

@model string

@{
    ViewBag.Title = "lorem";
    Layout = "~/Views/Shared/Default.cshtml";
}

The error message

The view '~/Views/Sth/Sth.cshtml' or its master was not found or no view engine supports the searched locations. The following locations were searched:
~/Views/Sth/Sth.cshtml
~/Views/Sth/abc.master  //string model is threated as a possible Layout's name ?
~/Views/Shared/abc.master
~/Views/Sth/abc.cshtml
~/Views/Sth/abc.vbhtml
~/Views/Shared/abc.cshtml
~/Views/Shared/abc.vbhtml

Why can't I pass a simple string as a model ?

share|improve this question
1  
Why are you using those relative paths? use this: View("Sth", null, "abc"); – gdoron Mar 21 '12 at 10:38
up vote 70 down vote accepted

Yes you can if you are using the right overload:

return View("~/Views/Sth/Sth.cshtml" /* view name*/, 
            null /* master name */,  
            "abc" /* model */);
share|improve this answer
    
You're right, it works. Thank You – Tony Mar 21 '12 at 10:26
6  
Alternative solution: return View("~/Views/Sth/Sth.cshtml", model: "abc") – fejesjoco Feb 13 '14 at 15:04
1  
Another Solution: return View("~/Views/Sth/Sth.cshtml", (object)"abc") – Jas Apr 26 '14 at 14:39

If you use named parameters you can skip the need to give the first parameter altogether

return View(model:"abc");

or

return View(viewName:"~/Views/Sth/Sth.cshtml", model:"abc");

will also serve the purpose.

share|improve this answer

You meant this View overload:

protected internal ViewResult View(string viewName, Object model)

MVC is confused by this overload:

protected internal ViewResult View(string viewName, string masterName)

Use this overload:

protected internal virtual ViewResult View(string viewName, string masterName,
                                           Object model)

This way:

return View("~/Views/Sth/Sth.cshtml", null , "abc");

By the way, you could just use this:

return View("Sth", null, "abc");

Overload resolution on MSDN

share|improve this answer
1  
Now I see, I was using the constuctor string viewName, object model – Tony Mar 21 '12 at 10:27
2  
@Tony. You meant method not constructor I guess. And the Overload resolution Got the wrong method(for you...) – gdoron Mar 21 '12 at 10:29
    
Even just typecasting the string to object would probably have helped the overload resolution: return View("Sth", (object) "abc");, but calling the method View(string, string, object) is definitely clearer, in either case. – Owen Blacker May 21 '12 at 12:57
    
@OwenBlacker. I thought the same thing, but it will cause problem as the view expecting a string not an object as a model. so it will pass only stage one and then fail. – gdoron May 21 '12 at 12:59
1  
@gdoron Ah, that would make sense. Using the View(string, string, object) overload, as you mentioned in your answer, certainly seems like The Right Answer™, any any case. – Owen Blacker May 21 '12 at 16:59

It also works if you declare the string as an object:

object str = "abc";
return View(str);

Or:

return View("abc" as object);
share|improve this answer

It also works if you pass null for the first two parameters:

return View(null, null, "abc");
share|improve this answer

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