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In C++ it is done with "using", and in C#?

public class foo
{
   public void print(string s) {...}
}

public class bar : foo
{
   // shadowing
   public void print(object o) {...}
}

How to promote foo.print, so foo.print and bar.print would be at the same "level" for compiler (for bar of course)?

Update 1

Originally I added a paragraph about common confusion between shadowing and overriding, but then I deleted it, because I thought it will be offensive to readers.

Shadowing is like overloading spanned over inheritance tree. Shadowing is NOT overriding.

Update 2

After shadowing foo.print is no longer taken into account when resolving the overloaded method print. Promoting foo.print would get it back into process -- so when I call bar_object.print("hello") the method foo.print would be called.

share|improve this question
    
What do you mean by promote? What do you intend to happen? For bar.print to override foo.print? –  Oded Dec 10 '12 at 12:26
    
isn't this an overload? in foo you need a print method that accepts an object? –  CR41G14 Dec 10 '12 at 12:28

1 Answer 1

up vote 3 down vote accepted

In your concrete example, bar.print(object) indeed "shadows" the more specific foo.print(string):

new bar().print("i am a string");

This will call the method defined on bar, although the method on foo would have a parameter that matches the type better.
What happens here is the following: The compiler finds a method on bar with the right name ("print"), the right number of parameters (1) and a parameter type to which the passed in parameter is convertable to (string can be converted to object).
Because of this, there is no reason for the compiler to look further up the inheritance chain.

As far as I am aware, there is no construct similar to C++'s using.
If you want to use the method defined on the base class, you basically have three options:

  1. On the caller side: Convert the bar instance to foo:

    var bar = new bar();
    var foo = (foo)bar;
    foo.print("i am a string"); // Will call foo.print(string)
    
  2. On the calee side: Inside bar.print(object) check the type of the passed parameter:

    public void print(object o)
    {
        var s = o as string;
    
        if(s != null)
            base.print(s);
        else
        {
            // Other code.
        }
    }
    
  3. This will come the closest to the C++ using: Actually override or hide the original method in the derived class:

    public class bar : foo
    {
        public new void print(string s)
        {
            base.print(s);
        }
    
        public void print(object o)
        {
            // some code
        }
    }
    
share|improve this answer
    
You don't have to explain what shadowing is :-) I know what it is. Both your solutions are technically correct (thank you), however they are no-go. The first one for obvious reason -- caller would have to know entire inheritance tree by heart (and this is very error prone). The second involves a lot of trickery -- comparing it to C++ using foo.print in bar definition it makes me look further to other approaches. –  greenoldman Dec 10 '12 at 12:45
    
@greenoldman: I just updated my answer - please check for an idea on how to solve it. –  Daniel Hilgarth Dec 10 '12 at 12:49
    
Meanwhile I used the same construct :-). I will keep this question open for a while (to attract other readers), if nothing better will appear, I will accept your answer. I hope it is OK with you. –  greenoldman Dec 10 '12 at 12:52
    
@greenoldman: I don't think you will find any simpler solution than just doing public new void print(string s) as shown above. –  Matthew Watson Dec 10 '12 at 12:52
    
@greenoldman: It sure is ok for me. –  Daniel Hilgarth Dec 10 '12 at 12:53

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