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I have want to have 2 models in a view. The page contains both LoginViewModel and RegisterViewModel.

For eg.

public class LoginViewModel
{
    public string Email { get; set; }
    public string Password { get; set; }
}

public class RegisterViewModel
{
    public string Name { get; set; }
    public string Email { get; set; }
    public string Password { get; set; }
}

Do I need to make another view which holds these 2 views?

public BigViewModel
{
    public LoginViewModel LoginViewModel{get; set;}
    public RegisterViewModel RegisterViewModel {get; set;}
}

I need the validation attributes to be brought forward to the view, this is why I need the ViewModels.

Isn't there another way such as (without the BigViewModel):

 @model ViewModel.RegisterViewModel
 @using (Html.BeginForm("Login", "Auth", FormMethod.Post))
 {
        @Html.TextBoxFor(model => model.Name)
        @Html.TextBoxFor(model => model.Email)
        @Html.PasswordFor(model => model.Password)
 }

 @model ViewModel.LoginViewModel
 @using (Html.BeginForm("Login", "Auth", FormMethod.Post))
 {
        @Html.TextBoxFor(model => model.Email)
        @Html.PasswordFor(model => model.Password)
 }
share|improve this question
    
see this: codeproject.com/Articles/687061/… –  saeed serpooshan May 18 at 9:28

6 Answers 6

up vote 123 down vote accepted

There are lots of ways...

  1. with your BigViewModel you do:

    @model BigViewModel    
    @using(Html.BeginForm()) {
        @Html.EditorFor(o => o.LoginViewModel.Email)
        ...
    }
    
  2. you can create 2 additional views

    Login.cshtml

    @model ViewModel.LoginViewModel
    @using (Html.BeginForm("Login", "Auth", FormMethod.Post))
    {
        @Html.TextBoxFor(model => model.Email)
        @Html.PasswordFor(model => model.Password)
    }
    

    and register.cshtml same thing

    after creation you have to render them in the main view and pass them the viewmodel/viewdata

    so it could be like this:

    @{Html.RenderPartial("login", ViewBag.Login);}
    @{Html.RenderPartial("register", ViewBag.Register);}
    

    or

    @{Html.RenderPartial("login", Model.LoginViewModel)}
    @{Html.RenderPartial("register", Model.RegisterViewModel)}
    
  3. using ajax parts of your web-site become more independent

  4. iframes, but probably this is not the case

share|improve this answer
    
Is it a problem if 2 textboxes have the same name on the form due to using partialviews? –  Shawn Mclean Jan 22 '11 at 2:44
    
No, should be fine- click on the element itself using something like firebug (on firefox) and you will see something like id="LoginViewModel_Email" name = "LoginViewModel.Email", so in actual fact they are unique! A view model should be what you need, just post each page to a different URL and you should be fine –  Haroon Jan 22 '11 at 9:50
    
@Lol coder actually it would be 2 forms, one for each viewmodel, but anyway if you would have 2 or 3 or more with same name you would just get an array with that name on the server side (if you put it in the params of the post action method) –  Omu Jan 22 '11 at 10:58
    
@Chuck Norris I am using asp.net mvc 4 and implemented your partialviewresult technique but @Html.RenderAction is reporting a error that Expression must return a value –  Deeptechtons Oct 16 '12 at 4:10
    
@ChuckNorris Gotcha if you do return View("BIG_VIEW") inside one of the actionresult methods that receives the form values for either of the models then Stackoverflow exception occurs try that out –  Deeptechtons Oct 16 '12 at 4:24

I'd recommend using Html.RenderAction and PartialViewResults to accomplish this; it will allow you to display the same data, but each partial view would still have a single view model and removes the need for a BigViewModel

So your view contain something like the following:

@Html.RenderAction("Login")
@Html.RenderAction("Register")

Where Login & Register are both actions in your controller defined like the following:

public PartialViewResult Login( )
{
    return PartialView( "Login", new LoginViewModel() );
}

public PartialViewResult Register( )
{
    return PartialView( "Register", new RegisterViewModel() );
}

The Login & Register would then be user controls residing in either the current View folder, or in the Shared folder and would like something like this:

/Views/Shared/Login.cshtml: (or /Views/MyView/Login.cshtml)

@model LoginViewModel
@using (Html.BeginForm("Login", "Auth", FormMethod.Post))
{
    @Html.TextBoxFor(model => model.Email)
    @Html.PasswordFor(model => model.Password)
}

/Views/Shared/Register.cshtml: (or /Views/MyView/Register.cshtml)

@model ViewModel.RegisterViewModel
@using (Html.BeginForm("Login", "Auth", FormMethod.Post))
{
    @Html.TextBoxFor(model => model.Name)
    @Html.TextBoxFor(model => model.Email)
    @Html.PasswordFor(model => model.Password)
}

And there you have a single controller action, view and view file for each action with each totally distinct and not reliant upon one another for anything.

share|improve this answer
1  
This makes alot of sense in terms of designing, but in terms of efficiency, doesn't it have to go through 3 full cycles of the mvc cycle? stackoverflow.com/questions/719027/renderaction-renderpartial/… –  Shawn Mclean Jan 24 '11 at 17:30
3  
Yes you're correct: it causes an additional full MVC cycle for each RenderAction. I always forget its part of the futures pack since my project always includes that dll by default. Its really up to preference and application requirements as to if the additional mvc cycles are worth the separation it gives on the design side. A lot of times you can cache the RenderAction results so the only hit you take is the slight extra processing via the controller factory. –  Thechoyce Jan 24 '11 at 18:14
    
I've implemented the above.. what am i missing? Please help: stackoverflow.com/questions/9677818/… –  diegohb Mar 13 '12 at 3:02
    
Holy crap! This worked perfectly for me right out of the gate. I'm building an internal site with only a couple users... so efficiency isn't a real concern of mine. THANK YOU! –  Derek Evermore Aug 14 '13 at 15:23

Another way is to use:

@model Tuple<LoginViewModel,RegisterViewModel>

I have explained how to use this method both in the view and controller for another example: Two models in one view in ASP MVC 3

In your case you could implement it using the following code:

In the view:

@using YourProjectNamespace.Models;
@model Tuple<LoginViewModel,RegisterViewModel>

@using (Html.BeginForm("Login1", "Auth", FormMethod.Post))
{
        @Html.TextBoxFor(tuple => tuple.Item2.Name, new {@Name="Name"})
        @Html.TextBoxFor(tuple => tuple.Item2.Email, new {@Name="Email"})
        @Html.PasswordFor(tuple => tuple.Item2.Password, new {@Name="Password"})
}

@using (Html.BeginForm("Login2", "Auth", FormMethod.Post))
{
        @Html.TextBoxFor(tuple => tuple.Item1.Email, new {@Name="Email"})
        @Html.PasswordFor(tuple => tuple.Item1.Password, new {@Name="Password"})
}

Note that I have manually changed the Name attributes for each property when building the form. This needs to be done, otherwise it wouldn't get properly mapped to the method's parameter of type model when values are sent to the associated method for processing. I would suggest using separate methods to process these forms separately, for this example I used Login1 and Login2 methods. Login1 method requires to have a parameter of type RegisterViewModel and Login2 requires a parameter of type LoginViewModel.

if an actionlink is required you can use:

@Html.ActionLink("Edit", "Edit", new { id=Model.Item1.Id })

in the controller's method for the view, a variable of type Tuple needs to be created and then passed to the view.

Example:

public ActionResult Details()
{
    var tuple = new Tuple<LoginViewModel, RegisterViewModel>(new LoginViewModel(),new RegisterViewModel());
    return View(tuple);
}

or you can fill the two instances of LoginViewModel and RegisterViewModel with values and then pass it to the view.

share|improve this answer
    
This was a great way to handle it, thanks! Did what I needed. –  Todd Davis Mar 21 '13 at 22:04

User a view model that contains multiple view models:

   namespace MyProject.Web.ViewModels
   {
      public class UserViewModel
      {
          public UserDto User { get; set; }
          public ProductDto Product { get; set; }
          public AddressDto Address { get; set; }
      }
   }

In your view:

  @model vDieu.Web.ViewModels.UserViewModel

  @Html.LabelFor(model => model.User.UserName)
  @Html.LabelFor(model => model.Product.ProductName)
  @Html.LabelFor(model => model.Address.StreetName)
share|improve this answer

I want to say that my solution was like the answer provided on this stackoverflow page: ASP.NET MVC 4, multiple models in one view?

However, in my case, the linq query they used in their Controller did not work for me.

This is said query:

var viewModels = 
        (from e in db.Engineers
         select new MyViewModel
         {
             Engineer = e,
             Elements = e.Elements,
         })
        .ToList();

Consequently, "in your view just specify that you're using a collection of view models" did not work for me either.

However, a slight variation on that solution did work for me. Here is my solution in case this helps anyone.

Here is my view model in which I know I will have just one team but that team may have multiple boards (and I have a ViewModels folder within my Models folder btw, hence the namespace):

namespace TaskBoard.Models.ViewModels
{
    public class TeamBoards
    {
        public Team Team { get; set; }
        public List<Board> Boards { get; set; }
    }
}

Now this is my controller. This is the most significant difference from the solution in the link referenced above. I build out the ViewModel to send to the view differently.

public ActionResult Details(int? id)
        {
            if (id == null)
            {
                return new HttpStatusCodeResult(HttpStatusCode.BadRequest);
            }

            TeamBoards teamBoards = new TeamBoards();
            teamBoards.Boards = (from b in db.Boards
                                 where b.TeamId == id
                                 select b).ToList();
            teamBoards.Team = (from t in db.Teams
                               where t.TeamId == id
                               select t).FirstOrDefault();

            if (teamBoards == null)
            {
                return HttpNotFound();
            }
            return View(teamBoards);
        }

Then in my view I do not specify it as a list. I just do "@model TaskBoard.Models.ViewModels.TeamBoards" Then I only need a for each when I iterate over the Team's boards. Here is my view:

@model TaskBoard.Models.ViewModels.TeamBoards

@{
    ViewBag.Title = "Details";
}

<h2>Details</h2>

<div>
    <h4>Team</h4>
    <hr />


    @Html.ActionLink("Create New Board", "Create", "Board", new { TeamId = @Model.Team.TeamId}, null)
    <dl class="dl-horizontal">
        <dt>
            @Html.DisplayNameFor(model => Model.Team.Name)
        </dt>

        <dd>
            @Html.DisplayFor(model => Model.Team.Name)
            <ul>
                @foreach(var board in Model.Boards)
                { 
                    <li>@Html.DisplayFor(model => board.BoardName)</li>
                }
            </ul>
        </dd>

    </dl>
</div>
<p>
    @Html.ActionLink("Edit", "Edit", new { id = Model.Team.TeamId }) |
    @Html.ActionLink("Back to List", "Index")
</p>

I am fairly new to ASP.NET MVC so it took me a little while to figure this out. So, I hope this post helps someone figure it out for their project in a shorter timeframe. :-)

share|improve this answer

a simple way to do that

we can call all model first

@using project.Models

then send your model with viewbag

// for list
ViewBag.Name = db.YourModel.ToList();

// for one
ViewBag.Name = db.YourModel.Find(id);

and in view

// for list
List<YourModel> Name = (List<YourModel>)ViewBag.Name ;

//for one
YourModel Name = (YourModel)ViewBag.Name ;

then easily use this like Model

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