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I was wondering if there's a way to specify a model for the _layout.cshtml file, i've seen lots of posts with the basic same question with people replying with "alternative" solutions, not saying it's not possible nor showing how exactly we could achieve this

having some experience with webforms I've been trying to migrate to MVC and often find myself with such questions, I've found this website: http://blog.bitdiff.com/2012/05/sharing-common-view-model-data-in.html which partially solved my problem but even them don't bind their _layout.cshtml with a @model, as far as I know, I have to specify a model on each view if I want to access the SharedContext, please correct if I'm wrong

what I wanted to do is declare a "@model Namespace.MyModel" on _layout.cshtml so it could retrieve its information by itself, instead of having to implement a model for each view inherinting from the LayoutModel

*I hope I'm being clear, basically, I wanted to know how can I declare @model tag on a _layout.cshtml so it can access its own model

with the solution I linked before (even though it's not linked to my question) I have to do: @(((BaseController)ViewContext.Controller).Context.Property) to get the shared information, and if I could simply declare (and use) a @model instead, I could accomplish the same thing by doing something like: @Model.Property*

as you can see, im struggling trying to migrate whatever I already know from webforms to MVC and it's being quite difficult for me since I have to adopt certain practices which are completely different from what I'm used to

thanks in advance

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Why does your _layout need a model? –  EkoostikMartin Jul 25 '13 at 21:19
2  
Okay, having a model in _layout is not a good idea, you could use the ViewBag for that - check out this answer stackoverflow.com/questions/6267727/… –  EkoostikMartin Jul 25 '13 at 21:31
3  
_layout is a partial used by all of your views. Specifying a model there would add restriction to every view on your site to also have that model. –  James Jul 25 '13 at 21:38
1  
As an alternative to ViewBag you can also use a child action. –  Jasen Jul 25 '13 at 21:40
2  
@leandrokoiti - you are avoiding one "bad practice" (dynamic typing of ViewBag), but trying to replace it with another bad practice (tying your layout to model data). Layouts should not rely on data... –  EkoostikMartin Jul 25 '13 at 21:46
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4 Answers

up vote 4 down vote accepted

Even though you already accepted an answer, based on your saying you are just pulling an image URL you should do it using JQuery, not a model.

This code is untested, apologies for that. Feel free to point out if I typed a bug. The HTML element containing the background image has the id="url" attribute so the selectors work.

Controller

[HttpGet]
public string GetSessionUrl()
{
    //logic to detmine url
    return url;
}

JQuery

$(document).ready(function () {
    var $url = $('#url');
    var options = {
        url: "/Home/GetSessionUrl",
        type: "get",
        async:false
    };

    $.ajax(options).done(function (data) {
        $url.attr('src', data);
    });
});
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1  
+1 this is the cleanest solution –  EkoostikMartin Jul 26 '13 at 13:31
    
hey James thanks again for taking your time, I switched to your answer because you stated that a model is not suited for this job in particular, and Ant P solved my problem on a broader scope, I wish I could choose both as answers since they both solve my problem in two different ways, but since you solved specifically what I was trying to achieve I selected yours and I really thankful for your help, that code did the job, just needed to add () after "function" on the first line of the JS hehe –  leandro koiti Jul 26 '13 at 13:37
    
ah good catch on the typo, glad to help. –  James Jul 26 '13 at 13:41
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You should delegate the parts of your layout that "need a model" to a separate controller using partial views and RenderAction:

@Html.RenderAction("SomeAction", "LayoutController")

Have LayoutController.SomeAction return a PartialViewResult, which you can then strongly type to a model.

share|improve this answer
    
thank you Ant P, I guess it is the same thing as Jasen commented, so I went through that direction, I have a child action which renders the section I need inside the _layout file and so I didn't have to tie my layout with a model and now I have a child action that simply renders what I need inside the layout, I guess this is the best solution, thanks a lot! –  leandro koiti Jul 26 '13 at 13:04
    
You're welcome - Jasen's is a solid answer; I hadn't read through all the comments. –  Ant P Jul 26 '13 at 20:48
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You can add BaseModel to _Layout.

@model BaseModel

Then all models inherit from that BaseModel class.

public class MyModel : BaseModel
{
}

As others stated, it is not a good practice. If your model forgets to inherit from BaseModel, it'll throws exception at run time. However, it is up to you.

share|improve this answer
    
hey Win, thx a lot, since I'm trying to avoid bad practices I went to the direction pointed by Jasen and Ant P and created a child action to render what I needed inside the _layout file, thanks a lot for your help! –  leandro koiti Jul 26 '13 at 13:06
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In BaseController you can declare any model as property.

public class BaseController : Controller
{
    public BaseController ()
    {
        MyTag = new TagModel ();  // or get db, take any value from there           
    }

    public TagModel MyTag { get; set; }
}

In action:

ViewBag.MyTag = MyTag ;

And in _Layout.cshtml, you can use

@{
  var myTag = (TagModel)ViewBag.MyTag;
}
share|improve this answer
1  
hey Jhoon, although I really liked your idea I went to the direction noted by Ant P and Jasen and decided to create a child action, thanks a lot for the idea though, I really appreciate the help! –  leandro koiti Jul 26 '13 at 13:05
    
good coding for you –  Jhoon Bey Jul 27 '13 at 16:23
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