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I have a view that is not strongly typed. However I have in this view a partial view that is strongly typed.

How do I do I pass the model to this strongly typed view?

I tried something like

 public ActionResult Test()
        {
              MyData = new Data();
              MyData.One = 1;
              return View("Test",MyData)
        }

In my TestView

<% Html.RenderPartial("PartialView",Model); %>

This give me a stackoverflow exception. So I am not sure how to pass it on. Of course I don't want to make the test view strongly typed if possible as what happens if I had like 10 strongly typed partial views in that view I would need like some sort of wrapper.

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you're right about the wrapper, and its not a bad way to go –  hunter May 5 '10 at 18:42

2 Answers 2

up vote 4 down vote accepted

You should extend your model so that it can provide all necessary fields for the view (this is called ViewModel) or you provide them seperately with ViewData.

 public ActionResult Test()
        {
              MyData = new Data();
              MyData.One = 1;
              ViewData["someData"]=MyData;
              return View();
        }

then:

<% Html.RenderPartial("PartialView",ViewData["someData"]); %>

ViewData is a nice losely typed dictionary

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Then I would have to cast it in the partialview right? –  chobo2 May 6 '10 at 4:10
1  
What do you mean?If your partial view is strongly-typed with the MyData class, line above will render your view without a problem. As you can see, you send more than one models into your view by ViewData because it is not strongly typed, then you pull your models for each strongly-typed PartialView. –  Ufuk Hacıoğulları May 6 '10 at 8:27
    
I tried this but doesn't work for me so I tried @Html.Partial and found that works for me. I don't know why is it though. –  lawphotog May 22 '14 at 15:01

Put the object required by the partial into Viewdata and use ist in the view as input for the partial.

public ActionResult Test()
        {
              ViewData["DataForPartial"] = new PartialDataObject();
              return View("Test")
        }

In the view use:

<% Html.RenderPartial("PartialView",ViewData["DataForPartial"]); %>

But anyway: There is no reason no to have a stronly typed view.

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The problem is not it being the view being a strongly typed view is the fact that if you have more then one partial view in that view you can't make it a strongly typed view to fit all those cases unless you make some sort of wrapper or I guess use ViewData. –  chobo2 May 6 '10 at 4:12

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