Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

I am migrating a Webforms site to MVC. In my webforms site I have pages that utilise various combinations of User Controls, then chunks of html then Labels, Textboxes etc.

I don't want to hardwire each page so I am going to drive the output for each page from a CMS which specifies the order to insert the controls into the page.

I imagine each control will now be a Partial View in MVC. (Let me know if that's not correct).

So if I have two different partial views, ViewA and ViewB, how do I create a controller method that inserts the partial views into the view that is returned in the order determined by the CMS for a given url?

So assuming the controller method is called Reports and it takes a parameter called product.

eg //MySite/Reports?product=A returns a view containing ViewA, ViewA, ViewB, ViewA

whereas

//MySite/Reports?product=B returns a view containing ViewA, ViewB, ViewA, ViewB etc

So what should the code be for the controller method?

I hope that makes sense

share|improve this question

1 Answer 1

up vote 3 down vote accepted

If I understood you correctly this should solve your problem

Just create a new class derived from PartialViewResult which accepts multiple view names to render them. And to make it a little more usable create a new extension method for the controller to call your customized ViewResult.

That worked for me. You can use it so simply:

public ActionResult Index()
{
    return this.ArrayView(new string[] { "ViewA", "ViewB" });
}

To make it work ArrayViewResult class should be:

public class ArrayViewResult : PartialViewResult
{
    public IEnumerable<string> Views;

    protected override ViewEngineResult FindView(ControllerContext context)
    {
        return base.FindView(context);
    }
    public override void ExecuteResult(ControllerContext context)
    {
        if (context == null)
            throw new ArgumentNullException("context");
        if (!Views.Any())
            throw new Exception("no view...");


        TextWriter writer = context.HttpContext.Response.Output;

        foreach(var view in Views)
        {
            this.ViewName = view;
            ViewEngineResult result = FindView(context);

            ViewContext viewContext = new ViewContext(context, result.View, ViewData, TempData, writer);
            result.View.Render(viewContext, writer);

            result.ViewEngine.ReleaseView(context, result.View);
        }
    }
}

Extension method:

namespace System.Web.Mvc
{
    public static class ArrayViewResultExtension
    {
        public static ArrayViewResult ArrayView(this Controller controller, string[] views)
        {
            return ArrayView(controller, views, null);
        }
        public static ArrayViewResult ArrayView(this Controller controller, string[] views, object model)
        {
            if (model != null)
            {
                controller.ViewData.Model = model;
            }

            return new ArrayViewResult
            {
                ViewName = "",
                ViewData = controller.ViewData,
                TempData = controller.TempData,
                ViewEngineCollection = controller.ViewEngineCollection,
                Views = views
            };
        }
    }
}
share|improve this answer
    
Top man Yilmaz - that works perfectly!! –  Frank Cannon Feb 7 at 11:28

Your Answer

 
discard

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.