Sign up ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free.

I need on one view to only choose between several element in a list. Element of my list are complex type.

I receive in the viewBag the list of all elements I can choose.

I tried several things without success, the most approaching thing of what I want is this:

@{SelectList list = new SelectList(ViewBag.Entities, Model);}
@Html.DropDownListFor(x => x, list);

Have you an idea about how to use this?

EDIT: Tried this too:

@Html.DropDownListFor(x => x, new SelectList(ViewBag.Entities, "", "Name"));

EDIT2: also tried to change my model, having a "int" as id, representing the current id of entity

@Html.DropDownListFor(x => x, new SelectList(ViewBag.Entities, "Id", "Name"));

Still have this exception:

System.ArgumentException was unhandled by user code
  Message=Value cannot be null or empty.
Parameter name: name
       at System.Web.Mvc.Html.SelectExtensions.SelectInternal(HtmlHelper htmlHelper, String optionLabel, String name, IEnumerable`1 selectList, Boolean allowMultiple, IDictionary`2 htmlAttributes)
       at System.Web.Mvc.Html.SelectExtensions.DropDownListFor[TModel,TProperty](HtmlHelper`1 htmlHelper, Expression`1 expression, IEnumerable`1 selectList, String optionLabel, IDictionary`2 htmlAttributes)
       at System.Web.Mvc.Html.SelectExtensions.DropDownListFor[TModel,TProperty](HtmlHelper`1 htmlHelper, Expression`1 expression, IEnumerable`1 selectList)
       at ASP._Page_Areas_Account_Views_Auth_EntityChooser_cshtml.Execute() in d:\Workspace\XYZ\Main\Code\AdManager\Areas\Account\Views\Auth\EntityChooser.cshtml:line 20
       at System.Web.WebPages.WebPageBase.ExecutePageHierarchy()
       at System.Web.Mvc.WebViewPage.ExecutePageHierarchy()
       at System.Web.WebPages.WebPageBase.ExecutePageHierarchy(WebPageContext pageContext, TextWriter writer, WebPageRenderingBase startPage)
       at System.Web.Mvc.RazorView.RenderView(ViewContext viewContext, TextWriter writer, Object instance)
       at System.Web.Mvc.BuildManagerCompiledView.Render(ViewContext viewContext, TextWriter writer)
       at System.Web.Mvc.ViewResultBase.ExecuteResult(ControllerContext context)
       at System.Web.Mvc.ControllerActionInvoker.InvokeActionResult(ControllerContext controllerContext, ActionResult actionResult)
       at System.Web.Mvc.ControllerActionInvoker.<>c__DisplayClass1c.<InvokeActionResultWithFilters>b__19()
       at System.Web.Mvc.ControllerActionInvoker.InvokeActionResultFilter(IResultFilter filter, ResultExecutingContext preContext, Func`1 continuation)
share|improve this question
What is the type of your model? –  tugberk Jan 26 '12 at 12:25
Depends of which try we are talking about, I tried to use my custom model, int, ... –  J4N Jan 26 '12 at 14:29

2 Answers 2

The method you're calling, defines Model as the SelectedValue. You should give the names to use for dataValueField and dataTextField:

@{SelectList list = new SelectList(ViewBag.Entities, "Key", "Value");}
@Html.DropDownListFor(x => x, list);

Given that ViewBag.Entities is a Dictionary. If it contains a list of your own objects, simply point to the properties you want to use, instead of Key and Value.

share|improve this answer
The problem, is that I do not have a "Key value to be set on the "x", I need the entire object of the list stored –  J4N Jan 26 '12 at 12:07
Can you post what's inside ViewBag.Entities? The code for the complex type? Seems like what you're trying to do is not possible. You can only put a list of key/value pairs inside a dropdown list. Alternatively, you can serialize your object to JSON and put that in the value field. But that's a very bad idea IMHO! –  MartinHN Jan 26 '12 at 14:02
up vote 1 down vote accepted

Solution I finally found a way to do it:

@Html.DropDownListFor(x => x.SelectedId, new SelectList(Model.AvailableEntities, "Id", "Name"));

I had to put a property on my model which can store the value. It seems that the DropDownListFor doesn't really likes that I've this x=>x

share|improve this answer
Oh. If you'd told what your model on the view looked like, I could have told you that :) –  MartinHN Jan 27 '12 at 6:52
but in the different tests, my model wasn't the same, in the first test, I was having directly one model of type "Entity", after that I was having a view model, with my object as property and now I've a view model with an id –  J4N Jan 27 '12 at 10:19
And that's very important info, as you can see your solution required you to know about the property on the model :) –  MartinHN Jan 27 '12 at 14:18

Your Answer


By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.