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When I try to render a partial view whose model type is specified as:

@model dynamic

by using the following code:

@{Html.RenderPartial("PartialView", Model.UserProfile);}

I get the following exception:

'System.Web.Mvc.HtmlHelper<dynamic>' has no applicable method named 'RenderPartial' but appears to have an extension method by that name. Extension methods cannot be dynamically dispatched. Consider casting the dynamic arguments or calling the extension method without the extension method syntax.

However, the same code in a .aspx file works flawlessly. Any thoughts?

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5 Answers 5

up vote 42 down vote accepted

Just found the answer, it appears that the view where I was placing the RenderPartial code had a dynamic model, and thus, MVC couldn't choose the correct method to use. Casting the model in the RenderPartial call to the correct type fixed the issue.

source: http://stackoverflow.com/questions/3822546

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11  
Right, the main reason this doesn't work is that C# does not support calling an extension method (which is what Html.RenderPartial() is) when any of the arguments is of a dynamic type. You have to either call the extension method statically or cast the argument to a non-dynamic type. –  Eilon Nov 8 '10 at 1:22

Instead of casting the model in the RenderPartial call, and since you're using razor, you can modify the first line in your view from

@model dynamic

to

@model YourNamespace.YourModelType

This has the advantage of working on every @Html.Partial call you have in the view, and also gives you intellisense for the properties.

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4  
+1 as seems more sensible to me than Diego's suggestion - for reasons noted above. i.e. if you know what type you are dealing with, then deal with that type ! –  MemeDeveloper Aug 2 '11 at 4:15
    
doesn't make sense. If I want to use a dynamic model I would like that the helpers help me. Dynamic model in most cases is simpler and more productive since you don't have to declare the classes. –  ema Feb 29 '12 at 16:24
1  
@ema - using dynamic models also leads to sloppier, poorly thought-out code. ViewModels are almost always a better idea than dynamic models. Unless you like finding compile errors at run-time! –  Josh M. May 2 at 23:01

Can also be called as

@Html.Partial("_PartialView", (ModelClass)View.Data)
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This has the downside that it generates a temporary (and potentially large) MvcHtmlString on the fly, rather than just writing to the output directly. –  Drew Noakes Feb 10 '11 at 10:13
    
Will this not work with RenderPartial? –  ajbeaven Apr 18 '11 at 22:00

There's another reason that this can be thrown, even if you're not using dynamic/ExpandoObject. If you are doing a loop, like this:

@foreach (var folder in ViewBag.RootFolder.ChildFolders.ToList())
{
    @Html.Partial("ContentFolderTreeViewItems", folder)
}

In that case, the "var" instead of the type declaration will throw the same error, despite the fact that RootFolder is of type "Folder. By changing the var to the actual type, the problem goes away.

@foreach (ContentFolder folder in ViewBag.RootFolder.ChildFolders.ToList())
{
    @Html.Partial("ContentFolderTreeViewItems", folder)
}
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Here's a way to pass a dynamic object to a view (or partial view)

Add the following class anywhere in your solution (use System namespace, so its ready to use without having to add any references) -

    namespace System
    {
        public static class ExpandoHelper
        {
            public static ExpandoObject ToExpando(this object anonymousObject)
            {
                IDictionary<string, object> anonymousDictionary = HtmlHelper.AnonymousObjectToHtmlAttributes(anonymousObject);
                IDictionary<string, object> expando = new ExpandoObject();
                foreach (var item in anonymousDictionary)
                    expando.Add(item);
                return (ExpandoObject)expando;
            }

        }
    }

When you send the model to the view, convert it to Expando :

    return View(new {x=4, y=6}.ToExpando());

Cheers

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