Sign up ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free.

This is a challenging one that got me stumped while I was coding today. Suppose I am running the Sub Test1() and Test2() and would like to print out the value of the Shadows method of the instance of the object I am passing in to TestCall() (see below - it is clearer) using the following restrictions:

  1. Can't change the contents of Class A, B, and C
  2. Can't change Sub Test1() and Sub Test2()
  3. TestCall() can't have an if, select case etc. statement that tries to figure out the type of the argument passed in and then do CType(o, <C or B>).Method(). Suppose there are an infinite number of classes like B and C all of which inherit from A or B or C and shadow Method
  4. You can't change the attributes of Subs (i.e. you can't change Shadows to Overridable/Overrides)

I would like to dynamically do the equivalent of CType(o, C).Method() and print out C.Method for Test1 and then dynamically do the equivalent of CType(o, B).Method() and print out B.Method.

<TestFixture()> _
Public Class Test

    Public Sub Test1()
        Dim o As A = New C
        TestCall(o)  '<-- THIS SHOULD PRINT "C.Method"
    End Sub

    Public Sub Test2()
        Dim o As A = New B
        TestCall(o)  '<-- THIS SHOULD PRINT "B.Method"
    End Sub

    Public Sub TestCall(ByVal o as A)
    End Sub

    Class A
        Public Sub Method()
        End Sub
    End Class

    Class B
        Inherits A

        Public Shadows Sub Method()
        End Sub
    End Class

    Class C
        Inherits B

        Public Shadows Sub Method()
        End Sub
    End Class
End Class
share|improve this question
In essence you are asking: how to call a shadowing method as if it is the overriding method, correct? –  Abel Aug 3 '11 at 23:20
essentially yes –  Denis Aug 4 '11 at 13:41

2 Answers 2

You problem comes from the fact that if you use the keyword Shadows you create a new method with the same name that hides the original method, the inverse of overriding an overridable (virtual) method.

The only way that I can think of to solve this dynamically is to find out the declaring type, query that type for existing methods of a certain signature and then call that method.

If this is what you are after, the following code for TestCall (sorry, in C#, but you tagged your question with C#) will do. The only thing you need to know is the name of the method, which you had to know in the original situation also.

public void TestCall(A someAorBorC)
    // store declaring type
    Type T = someAorBorC.GetType();

    // find shadowed method
    var method = (from m in T.GetMethods()
                 where m.DeclaringType == T
                 && m.Name == "Method"
                 select m).SingleOrDefault();
    if (method == null)
        throw new Exception("Method 'Method' not found in declaring type");

    // call method
    method.Invoke(someAorBorC, null);

// Console:
share|improve this answer
Not worries about C#. Don't care what .NET language you favor. We noticed a more complicated version of this problem in a third-party software that we bought that had this "Shadows" for almost every sub instead of "Virtual/Overrides" (can't replace - TOO MANY PLACES)and we found a bug in it so were thinking of a good way to fix it. (my test example essentially tries to capture the problem in a very simple scenario) Reflection is good and I briefly thought about it and would be my last resort but I was thinking maybe there is some other trick here that I don't know about... –  Denis Aug 4 '11 at 13:43
@Denis: no, there's no other trick (other than different reflection approaches). However, if you need to use this in other scenario's then tests (OP), then I suggest you cache the method. The lookup is very expensive. –  Abel Aug 4 '11 at 14:21
up vote 0 down vote accepted

Another way to do this as I discovered a few days ago WITHOUT reflection:

Public Sub TestCall(ByVal someAorBorC as A)
    Convert.ChangeType(someAorBorC, someAorBorC.GetType()).Method()
End Sub
share|improve this answer

Your Answer


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.