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Is there any way to do something like this?

void SomeMethod(Type generic)
{
    SomeGenericMethod<generic>();
}

I need to pass the type in as a "normal" parameter and not a generic type parameter.

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You can use reflection to accomplish most things, but it's not entirely clear (to me) what you want to do. Can you post more related code? –  RJ Lohan May 25 '12 at 3:00
    
FWIW, most API's that expose both will have the generic one call the non-generic one, since it can just pass typeof(T) as the type. Not sure that's the scenario you're in, but just in case it is. :) –  James Manning May 25 '12 at 3:11

2 Answers 2

up vote 4 down vote accepted

You can do it with reflection:

public class foo
{
    public void SomeMethod(Type type)
    {
        var methodInfo = this.GetType().GetMethod("SomeGenericMethod");
        var method = methodInfo.MakeGenericMethod(new[] { type });
        method.Invoke(this, null);
    }

    public void SomeGenericMethod<T>()
    {
        Debug.WriteLine(typeof(T).FullName);
    }
}

class Program
{
    static void Main(string[] args)
    {
        var foo = new foo();
        foo.SomeMethod(typeof(string));
        foo.SomeMethod(typeof(foo));
    }
}

That said, using reflection in this way means you are losing some of the benefits of using generics in the first place, so you might want to look at other design alternatives.

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Assuming that your method is defined in a class called MyClass, this should do it:

var MyObject = new MyClass();
typeof(MyClass).GetMethod("SomeGenericMethod").MakeGenericMethod(generic).Invoke(myObject, null);

Type.GetMethod() gets an object which describes a method defined in the Type it's called on. The method is generic, so we need to call MakeGenericMethod, and pass its one generic parameter.

We then invoke the method, passing the object we want the method called on and any arguments it takes. As it takes no arguments, we just pass null.

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