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Update: as said in the comments, the C++/CLI should have been value struct; the compiler error 'clearly' stated "must be a value type".


In C#, I can write

      public struct Id<T> : IComparable<Id<T>>
    {
        public int CompareTo(Id<T> other)
        {
            throw new NotImplementedException();
        }
    }

When I try to do the same in C++/CLI

generic<typename T>
public ref struct Id : System::IComparable<Id<T>>
{
public:
    virtual int CompareTo(Id<T> other)
    {
        throw gcnew System::NotImplementedException();
    }
};

I get a compiler error error C3225: generic type argument for 'T' cannot be '...::Id<T>', it must be a value type or a handle to a reference type.

Is it this compiler error which still isn't fixed?

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possible dupe of stackoverflow.com/questions/1558620/… –  parapura rajkumar May 27 '11 at 22:35
4  
Don't forget that in C++/CLI, ref struct means the same as C# class. To get the equivalent of your C# code, you need public value struct. –  David Yaw May 27 '11 at 22:39
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2 Answers

In C++/CLI, you need to use handles on the managed, reference types. This compiles:

generic<typename T>
public ref struct Id : System::IComparable<Id<T>^>
{
public:
    virtual int CompareTo(Id<T>^ other)
    {
        throw gcnew System::NotImplementedException();
    }
};
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2  
While your code is correct, your explanation is not -- not all managed types need to be decorated with handles, only ref managed types. I.e., if ref struct Id were instead value struct Id, then the OP's code would have been correct as-is. –  ildjarn May 27 '11 at 23:17
    
Thanks for the clarification. I'll edit. –  jwismar May 27 '11 at 23:30
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up vote 1 down vote accepted

As stated in the comments; the C++/CLI equivalent of C#'s struct is value struct, not ref struct.

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