Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

What is the difference between declaring a method in a base type "virtual" and then overriding it in a child type using the "override" keyword as opposed to simply using the "new" keyword when declaring the matching method in the child type?

share|improve this question
3  
MSDN say "Using new creates a new member with the same name and causes the original member to become hidden, while override extends the implementation for an inherited member" –  Jeson Park Aug 14 '13 at 12:04
    
see this stackoverflow.com/questions/17717570/… –  Shahrooz Aug 20 '13 at 11:43
    
MSDN - msdn.microsoft.com/en-us/library/ms173153.aspx –  dayuloli Apr 14 '14 at 10:31

8 Answers 8

up vote 123 down vote accepted

The "new" keyword doesn't override, it signifies a new method that has nothing to do with the base class method.

public class Foo
{
     public bool DoSomething() { return false; }
}

public class Bar : Foo
{
     public new bool DoSomething() { return true; }
}

public class Test
{
    public static void Main ()
    {
        Foo test = new Bar ();
        Console.WriteLine (test.DoSomething ());
    }
}

This prints false, if you used override it would have printed true.

(Base code taken from Joseph Daigle)

So, if you are doing real polymorphism you SHOULD ALWAYS OVERRIDE. The only place where you need to use "new" is when the method is not related in any way to the base class version.

share|improve this answer
    
You should revise your code, I had made the methods static (which is valid for using the "new" keyword). But I decided it was clearer to use instance methods. –  Joseph Daigle Oct 1 '08 at 22:16
1  
Thank you, i missed the "static" part. Should take more attention on the future –  albertein Oct 1 '08 at 22:17
    
Note that the line Foo test = new Bar () is crucial here, the new / override keyword for the metods determine which metod is called when you put a Bar into a Foo variable. –  Thomas N Apr 20 at 13:00

I always find things like this more easily understood with pictures:

Again, taking joseph daigle's code,

public class Foo
{
     public /*virtual*/ bool DoSomething() { return false; }
}

public class Bar : Foo
{
     public /*override or new*/ bool DoSomething() { return true; }
}

If you then call the code like this:

Foo a = new Bar();
a.DoSomething();

NOTE: The important thing is that our object is actually a Bar, but we are storing it in a variable of type Foo (this is similar to casting it)

Then the result will be as follows, depending on whether you used virtual/override or new when declaring your classes.

Virtual/Override Explanation

share|improve this answer
21  
Code comments and pictures! Excellent! –  i3ensays Oct 2 '08 at 1:29
1  
Thanks....but could you please explain a little about picture above with regard to the casting you said? –  odiseh Jul 2 '09 at 11:30
    
Oops If forgot to add these few line to my prev. comment: do you mean virtual/overriding and non-vitual/new are used just for polymorphysm concept and when you simply declare a variable (not using casting) they don't mean? Thanks again. –  odiseh Jul 2 '09 at 11:35
    
this answer is exactly what I was looking for. The only problem I had is that flickr images are blocked at my workplace so I had to access it via my phone... –  mezoid Apr 8 '10 at 7:34
3  
Real effort to answer the question. –  iMatoria Jul 21 '11 at 3:33

Here's some code to understand the difference in the behavior of virtual and non-virtual methods:

class A
{
    public void foo()
    {
        Console.WriteLine("A::foo()");
    }
    public virtual void bar()
    {
        Console.WriteLine("A::bar()");
    }
}

class B : A
{
    public new void foo()
    {
        Console.WriteLine("B::foo()");
    }
    public override void bar()
    {
        Console.WriteLine("B::bar()");
    }
}

class Program
{
    static int Main(string[] args)
    {
        B b = new B();
        A a = b;
        a.foo(); // Prints A::foo
        b.foo(); // Prints B::foo
        a.bar(); // Prints B::bar
        b.bar(); // Prints B::bar
        return 0;
    }
}
share|improve this answer
    
This answer truly and clearly demonstrates what happens in each scenario. Thanks. :) –  Nick Miller Jul 15 '14 at 12:58

The new keyword actually creates a completely new member that only exists on that specific type.

For instance

public class Foo
{
     public bool DoSomething() { return false; }
}

public class Bar : Foo
{
     public new bool DoSomething() { return true; }
}

The method exists on both types. When you use reflection and get the members of type Bar, you will actually find 2 methods called DoSomething() that look exactly the same. By using new you effectively hide the implementation in the base class, so that when classes derive from Bar (in my example) the method call to base.DoSomething() goes to Bar and not Foo.

share|improve this answer

virtual / override tells the compiler that the two methods are related and that in some circumstances when you would think you are calling the first (virtual) method it's actually correct to call the second (overridden) method instead. This is the foundation of polymorphism.

(new SubClass() as BaseClass).VirtualFoo()

Will call the SubClass's overriden VirtualFoo() method.

new tells the compiler that you are adding a method to a derived class with the same name as a method in the base class, but they have no relationship to each other.

(new SubClass() as BaseClass).NewBar()

Will call the BaseClass's NewBar() method, whereas:

(new SubClass()).NewBar()

Will call the SubClass's NewBar() method.

share|improve this answer
    
really like this sentence " tells the compiler " –  Mina Gabriel Mar 26 at 22:31

Beyond just the technical details, I think using virtual/override communicates a lot of semantic information on the design. When you declare a method virtual, you indicate that you expect that implementing classes may want to provide their own, non-default implementations. Omitting this in a base class, likewise, declares the expectation that the default method ought to suffice for all implementing classes. Similarly, one can use abstract declarations to force implementing classes to provide their own implementation. Again, I think this communicates a lot about how the programmer expects the code to be used. If I were writing both the base and implementing classes and found myself using new I'd seriously rethink the decision not to make the method virtual in the parent and declare my intent specifically.

share|improve this answer
    
The technical explanations of new vs override are sound, but this answer seems to help the most for guiding devs on which to use. –  Sully Feb 26 '14 at 14:21

The difference between the override keyword and new keyword is that the former does method overriding and the later does method hiding.

Check out the folllowing links for more information...

MSDN and Other

share|improve this answer
    
Thanks for the clarification and the valuable links. –  i3ensays Oct 2 '08 at 1:27
  • new keyword is for Hiding. - means you are hiding your method at runtime. Output will be based base class method.
  • override for overriding. - means you are invoking your derived class method with the reference of base class. Output will be based on derived class method.
share|improve this answer

Your Answer

 
discard

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.