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 have the following classes -

public abstract class BusinessObject { }
public abstract class Form: BusinessObject { }
public abstract class BillableForm: Form { }
public class MembershipForm: BillableForm { }

public abstract class Dto<T>: where T: BusinessObject { }
public abstract class InboxDto<T>: Dto<T> where T: Form { }
public class MembershipFormDto: InboxDto<MembershipForm> { }

And I have the following views -

membershipform.cshtml:
@model AdminSite.Models.MembershipFormDto
@{
    Layout = "~/Views/Inbox/Shared/_LayoutForm.cshtml"
}

_LayoutForm.cshtml:
@model InboxDto<Form>

When I land on the membershipform.cshtml page, I get the following exception stating:

The model item passed into the dictionary is of type 'AdminSite.Models.MembershipFormDto', but this dictionary requires a model item of type 'AdminSite.Infrastructure.Models.InboxDto`1[BusinessLogic.Inbox.Form]'.

From everything I can tell, MembershipFormDto IS-A InboxDto of type MembershipForm, where MembershipForm IS-A Form. What gives?

share|improve this question
    
Can you post the code for your action method? –  Chandu Oct 7 '12 at 22:48
    
The exception isn't coming from the action method. The action method works fine when I switch _LayoutForm.cshtml to use @model dynamic but I'd rather have a strongly typed model. This is an issue with the C# typing system possibly and some ignorance on my part. –  MushinNoShin Oct 7 '12 at 22:50

1 Answer 1

This turned out to be an issue of covariance.

I added the following interface -

public interface IInboxDto<out T>

and modified the InboxDto class to implement that interface -

public abstract class InboxDto<T>: Dto<T>, IInboxDto<T> where T: Form { }

In short, covariance is going from a more defined type to a less defined type; specifically referencing a more defined object with a less defined reference. The reason the compiler complains is it's preventing a scenario like this:

List<String> instanciatedList = new List<String>;
List<Object> referenceList = instanciatedList;
referenceList.add(DateTime);

The final line makes sense, a DateTime IS-A Object. We've said referenceList is a List of Object. However it's instanciated as a List of String. A List of Object is more permissive than a List of String. Suddenly our guarantees from new List<String> are being ignored.

However the out and in keywords for Interface definitions tells the compiler to relax, we know what we're doing and understand what we're getting ourselves into.

More information.

share|improve this answer
1  
3 hours of wrestling with this problem until I finally ask on SO. Then it takes me 20 minutes to find the answer myself. Le sigh. –  MushinNoShin Oct 7 '12 at 23:36
    
Well, typically the process of defining the problem makes us think about the problem more clearly, and often pushes us to recognize the problem. It's a great question though, and while your solution works.. I would caution anyone that doesn't know exactly what they're doing to be careful. –  Erik Funkenbusch Oct 8 '12 at 0:05
    
Yes, any time one tells the compiler to back off, they're implicitly claiming they know what the dangers are. Here be dragons :) –  MushinNoShin Oct 8 '12 at 0:32

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.