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Editorial Team
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Asked: 2026-05-22T15:38:05+00:00

class foo { public void bar(int i) { … }; public void bar(long i)

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class foo
{
  public void bar(int i) { ... };
  public void bar(long i) { ... };
}


foo.bar(10);

I would expect this code to give me some error, or at least an warning, but not so…

What version of bar() is called, and why?

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1 Answer

  1. Editorial Team

    The int version of bar is being called, because 10 is an int literal and the compiler will look for the method which closest matches the input variable(s). To call the long version, you’ll need to specify a long literal like so: foo.bar(10L);

    Here is a post by Eric Lippert on much more complicated versions of method overloading. I’d try and explain it, but he does a much better job and I ever could: http://blogs.msdn.com/b/ericlippert/archive/2006/04/05/odious-ambiguous-overloads-part-one.aspx

    from the C# 4.0 Specification:

    Method overloading permits multiple
    methods in the same class to have the
    same name as long as they have unique
    signatures. When compiling an
    invocation of an overloaded method,
    the compiler uses overload resolution
    to determine the specific method to
    invoke. Overload resolution finds the
    one method that best matches the
    arguments or reports an error if no
    single best match can be found. The
    following example shows overload
    resolution in effect. The comment for
    each invocation in the Main method
    shows which method is actually
    invoked.

     class Test {   
      static void F() {
        Console.WriteLine("F()");   
      }     
      static void F(object x) {
        Console.WriteLine("F(object)");     
      }
      static void F(int x) {
        Console.WriteLine("F(int)");    
      }
      static void F(double x) {
        Console.WriteLine("F(double)");     
      }
      static void F<T>(T x) {
        Console.WriteLine("F<T>(T)");   
      }
      static void F(double x, double y) {
        Console.WriteLine("F(double,double)");  
      }     

      static void Main() {
        F();                // Invokes F()
        F(1);           // Invokes F(int)
        F(1.0);         // Invokes F(double)
        F("abc");       // Invokes F(object)
        F((double)1);       // Invokes F(double)
        F((object)1);       // Invokes F(object)
        F<int>(1);      // Invokes F<T>(T)
        F(1, 1);        // Invokes F(double, double)
      } 
}

    As shown by the example, a particular
    method can always be selected by
    explicitly casting the arguments to
    the exact parameter types and/or
    explicitly supplying type arguments.

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