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I am always puzzled when I see:

Parent ref = new Child();

where Child class extends Parent.

  1. How does the object ref look like in memory?
  2. How is virtual method treated? non-virtual?
  3. How is it different from:
Child ref = new Child();
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2  
Smells like homework :) –  Stuart Golodetz Dec 5 '11 at 19:51
1  
I hope not, I hate it when I get tricked into answering homework. I took his word for why he was asking; maybe I should get rid of my answer... –  drdwilcox Dec 5 '11 at 19:57
    
I guess give the OP the benefit of the doubt eh? –  Stuart Golodetz Dec 5 '11 at 20:04
1  
@StuartGolodetz - I say absolutely. If he's cheating on homework, and I'm not saying he is, then so much the worse for him come final exam time. In any event, the question is clear, intelligent, and provides good content for Stack Overflow. –  Adam Rackis Dec 5 '11 at 20:15
5  
Try to not use 'ref' -- it is a keyword. –  Eric Lippert Dec 5 '11 at 22:06

4 Answers 4

How does the object look in memory?

Your question is unclear. There are two relevant memory locations. The variable is associated with a storage location. That storage location contains a reference to another storage location.

The variable's storage location is typically realized as a four or eight byte integer that contains a "managed pointer" -- a memory address known to the garbage collector.

The object's memory layout is also an implementation detail of the CLR. The memory buffer associated with the object will contain all the data for the object -- all the values of the fields and whatnot. It also contains a reference to yet another memory location, the virtual function table of the object.

The virtual function table (vtable) then contains even more references, this time references that refer to the methods associated with the most-derived type of the object.

How is virtual method treated? non-virtual?

Virtual methods are executed by looking up the object reference from the variable, then looking up the vtable, then looking up the method in the vtable, and then invoking that method.

Non-virtual methods are not invoked via the vtable because they are known at compile time.

How is it different from...

Non-virtual methods called on the object will call the version of the method based on the type of the variable. Virtual methods called on the object will call the version of the method based on the type of the object that the variable refers to.

If that is not all clear, you might want to read my article that explains how you might "emulate" virtual methods in a language that does not have them. If you can understand how to implement virtual methods yourself in a language that does not have them, that will help you understand how we actually do implement virtual methods.

http://blogs.msdn.com/b/ericlippert/archive/2011/03/17/implementing-the-virtual-method-pattern-in-c-part-one.aspx

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Thanks. This is what I was looking for. Best answer so far. –  Ting Yun Dec 6 '11 at 18:51

ref is a Child object. virtual methods are called on Child class. However, methods defined only in Child class are not visible when assigned to Parent object.

If foo() was not virtual, then the compile will select a method based on the declared type of the variable ref. If you have Parent ref = new Child(); then Parent.foo() will be called. If you have Child ref = new Child(); then Child.foo() will be called. Of course, in this case the C# compiler will ask you to use new in the declaration of Child.foo() to indicate that you mean to hide the implementation in Parent.

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I imagine ref just contains the address where the referred-to Child object can be found. If you call a virtual method, the actual method invoked depends on the dynamic type of the object (Child); if you call a non-virtual method, it depends on the static type (Parent). It's different from Child ref = ... because in that one, the static type is Child rather than Parent.

And I hope this isn't homework :)

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Think of it this way (assuming Parent is not an abstract class)

Parent ref = new Child();

and

Parent ref = new Parent();

Are mostly the same, except virtual methods overridden in Child will be called in the former, but not the latter.

The type that you declare the object as will determine which methods are available on it. Declaring an object to be a less specific type than what you instantiate it as—the former case—can affect which methods get called at runtime, but only if those methods are declared as abstract or virtual.

In either case, imagine you called a method foo on ref. The runtime would fine method foo on class Parent. The runtime would then see if foo was virtual (or abstract). If foo was not virtual or abstract, the runtime would call the foo Parent defines right then and there, and be done with it. If however foo were virtual or abstract, the runtime would check to see if ref were really instantiated to a more specific type that overrode foo. If so, it would call that foo

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if foo exists as non-virtual methods both in Parent and Child class, and ref.foo() is called. Which one is called? –  Ting Yun Dec 5 '11 at 21:22
    
The method will be called based on the type of ref. if you have Parent ref = new Child(); then Parent.foo() will be called. If you have Child ref = new Child(); then Child.foo() will be called. I have added this to my answer. –  drdwilcox Dec 6 '11 at 4:33
    
@TingYun - I couldn't have said it any clearer that drdwilcox did –  Adam Rackis Dec 6 '11 at 4:55

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