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Bear in mind, this code works in C#, but not in VC++.net (infuriating). I'm wondering where my mistake is on here.

Given the code:

public interface class iTest
{
   public:
   generic <typename T>
   virtual void AddCriteriaList(List<T> ^CriterionList);
};

generic <typename Q>
public ref class IUseInterface : iTest
{
   public:
   generic <typename T>
   virtual void AddCriteriaList(List<T> ^CriterionList)
   {

   }
};

I get the error error C3766: 'IUseInterface' must provide an implementation for the interface method 'void iTest::AddCriteriaList(System::Collections::Generic::List ^)'

The strange thing, is if I remove the generic constraint (Q) on IUseInterface, the error goes away. I don't understand how making my class generic would have ANYTHING to do with a generic on a specific function.

Any ideas? Thanks

share|improve this question
    
Totally different languages ... – C. Ross May 17 '11 at 14:11
    
They're extremely similar, and should follow the same compilation rules in a situation like this. – greggorob64 May 17 '11 at 14:13
up vote 1 down vote accepted

Well, it seems to compile just fine if you don't use a List parameter, and just use a T parameter. Just use add them all in a loop or something, its a few lines of extra code, but will compile for you.

share|improve this answer
1  
Very astute. You're astute. – greggorob64 May 18 '11 at 14:30
    
Why thank you. That is a very astute statement. You sir, are the astutest of all of us. – espais May 18 '11 at 17:04

I don't have the answer for that, but this works, if it's good enough for you:

generic <typename T>
public interface class iTest
{
   public:
   virtual void AddCriteriaList(List<T> ^CriterionList);
};

generic <typename Q, typename T>
public ref class IUseInterface : iTest<T>
{
public:
   virtual void AddCriteriaList(List<T> ^CriterionList)
   {
   }
};
share|improve this answer
    
I'm trying very hard to have any solution not have iTest itself be generic. I have a collection of iTests, and if I type them, they'd have to all have the same constraint, for instance, Dictionary<long, iTest<SomeTime^>^>, won't work out. Thanks though – greggorob64 May 17 '11 at 14:31

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