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I am in the process of creating a prototype project using MVC 3 and I have come across a situation which I can't seem to find an answer for and it seems like I might be approaching the problem the wrong way.

A quick overview of my project; it is based on the MVC template you get with Visual Studio and I use the links (tabs) on the supplied _Layout view to access some of my other views. One of these links opens a second partial view that again contains links for more views (admin specific. hence the split). The problem I am having is that I can't seem to display views with the @RenderBody in the second partial view, which I understand is because you can't have more than one @RenderBody in a completed HTML file, which makes sense.

So my question is, how can I display the views in this manner? Also, probably more importantly, is this the correct way to achieve this 'sub menu' system I am trying for or is there a better way to achieve this?

Here is the relevant parts of the views, first is the 'main' _Layout file:

<body>
    <div class="page">
        <header>
            <div id="title">
                <h1>Test App</h1>
            </div>
            <nav>
                <ul id="menu">
                    <li>@Html.ActionLink("Home", "Index", "Home")</li>
                    @if (User.Identity.IsAuthenticated)
                    {
                        <li>@Html.ActionLink("Contracts", "List", "Contract", new { user=User.Identity.Name, page=1 }, null)</li>
                    }
                    @if (User.IsInRole("Administrator"))
                    {
                        <li id="admin">@Html.ActionLink("Administration", "Administration", "Home")</li>
                    }
                </ul>
            </nav>
        </header>
        <section id="main">
            @RenderBody()
        </section>
        <footer>
        </footer>
    </div>
</body>

When clicking the <li id="admin">@Html.ActionLink("Administration", "Administration", "Home")</li> link, then the Home controller return the second partial view shown below:

<header>
    <div id="admintitle">
        <h1>Administration</h1>
    </div>  
</header>
<body>
    <div id="div-1a">
         <nav>
            <ul id="adminmenu">
                <li>@Html.ActionLink("Contact", "List", "Contact")</li>
                <li>@Html.ActionLink("Home", "Index", "Home")</li>
            </ul>
        </nav>
    </div>
    <div id="div-1c">
        <h1>Test</h1>   
    </div>
    <section id="adminmain">
        @RenderBody()
    </section>
</body>

When I try and run the code, it fails due to the second @RenderBody, which is understandable.

If you need any more information, then please let me know.

Thanks very much.

share|improve this question
    
What do you want to do in the RenderBody() of 'Administration' view? –  Mohayemin Aug 10 '12 at 8:40
    
@Mohayemin Show a View that will be returned by any of the ActionLinks in the Administration View. –  XN16 Aug 10 '12 at 8:58

4 Answers 4

up vote 3 down vote accepted

Convert

From

<section id="adminmain">
   @RenderBody()
</section>

To

   <div id="adminmain"></div>

From

@Html.ActionLink("Contact", "List", "Contact")

To

@Ajax.ActionLink("Contact", "List", "Contact", new AjaxOptions { UpdateTargetId = "adminmain" })

And in ContactController List action return PartialView() instead of 'View()'.

Do not forget to include jquery.unobtrusive-ajax in your view to make Ajax work.

And before all read Roman's Answer

share|improve this answer
    
Now that looks like what I need, I will try it later, thanks very much! –  XN16 Aug 10 '12 at 9:51
    
Sorry, but it doesn't work as expected. While the view is returned, it is returned as a basic, unformatted HTML page on its own (i.e. nothing of my partial views exist). Thanks anyway. –  XN16 Aug 10 '12 at 18:26
    
Did you notice the @Ajax instead of @Html for the ActionLink? –  Mohayemin Aug 11 '12 at 3:31
    
Yes I used the @Ajax, but it only returns the unformatted view with the surrounding Layout views. –  XN16 Aug 11 '12 at 8:07
    
Just realised I didn't have unobtrusive ajax referenced in my view! It works now I have added the following: <script src="@Url.Content("~/Scripts/jquery.unobtrusive-ajax.min.js")" type="text/javascript"></script> –  XN16 Aug 11 '12 at 9:07

You can not use @RenderBody() multiple times. One @RenderBody() in your main _Layout file is fair enough. In your second view use instead @RenderPartial() or @RenderAction.

UPDATE (based on first comment)

Let's say you want to render /Administrator/TheAction, so you will call

@{
    Html.RenderAction("TheAction", "Administrator");
}

TheAction action will look like this:

public PartialViewResult TheAction() {
    return PartialView();
}

And it will render the view in ~/Views/Administrator/TheAction.cshtml right inside the place from which you called the RenderAction().

The importance is that it does not accomplish another @RenderBody. As you can see in TheAction() example, you are returning PartialViewResult, which does not have any @RenderBody() helper.

share|improve this answer
    
I looked into @RenderPartial, but it doesn't seem to be able to call a specific controller action, so I will try @RenderAction. However, how do you determine the location of the returned view? As in what @RenderBody accomplishes in the main partial view. Thanks very much. –  XN16 Aug 10 '12 at 8:31
    
Thanks for the extra information, however if I changed my @Html.ActionLink to @RenderAction() then the returned view would be placed within the <li> block, but I want it to appear in the @section block which currently holds the incorrect @RenderBody. This is why I think I might be going about this the wrong way! –  XN16 Aug 10 '12 at 9:04
1  
I think you didn't understand my post correctly, try to read it few times more. Maybe you should consider reading something about partial views. –  Roman Mazur Aug 10 '12 at 9:12
    
I understand the concept of partial views and how they work, it was just in this particular case I was a bit stuck, hence me questioning my use of them in this case. @Mohayemin below seems to have a possible solution. I guess I wasn't clear enough that I want the view to be shown when a user invokes it via an ActionLink. –  XN16 Aug 10 '12 at 10:27

I have found a solution which incorporates both @Roman Mazur and @Mohayemin's answers with an AJAX call.

I changed my View to the following as Roman suggested:

public PartialViewResult List() {
    return PartialView();
}

I then changed the section to a div as Mohayemin suggested:

<div id="adminmain"></div> 

I then created a link that invokes an AJAX script on it's click event:

<li><a id="load-partial">CONTACTS</a></li>

<script>
$(document).ready(function () {
    $('#load-partial').click(function () {
        $.ajax({
            url: '/Contact/List/',
            datatype: 'html',
            success: function (data) {
                $('#adminmain').empty().html(data);
            }
        });
    });
});
</script>

It works well, but I am always open to more suggestions on how to improve it.

Thanks very much.

share|improve this answer

I came across something interesting when working with nested partial views in MVC4. Just in case somebody stumbles upon this..

When rendering a partial view in a loop,

@Html.Partial()

does not work.

Instead, use @Html.RenderPartial(); that emits the HTML instead of HTML encoded in the former case and works.

Cheers!

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