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I'm getting a warning from ReSharper about a call to a virtual member from my objects constructor. Why would this be something not to do?

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31  
I've written about the answer here, along with code and screenshots. –  m.edmondson Aug 29 '12 at 10:04
12  
@m.edmondson, Seriously.. your comment should be the answer here. While Greg explanation is correct I did not understand it until I read your blog. –  Rosdi Kasim Apr 17 '13 at 6:50
    
Thanks @RosdiKasim - I'd be happy for you to answer it for me –  m.edmondson Apr 17 '13 at 7:35

12 Answers 12

up vote 534 down vote accepted

(Assuming you're writing in C# here)

When an object written in C# is constructed, what happens is that the initializers run in order from the most derived class to the base class, and then constructors run in order from the base class to the most derived class (see Eric Lippert's blog for details as to why this is).

Also in .NET objects do not change type as they are constructed, but start out as the most derived type, with the method table being for the most derived type. This means that virtual method calls always run on the most derived type.

When you combine these two facts you are left with the problem that if you make a virtual method call in a constructor, and it is not the most derived type in its inheritance hierarchy, that it will be called on a class whose constructor has not been run, and therefore may not be in a suitable state to have that method called.

This problem is, of course, mitigated if you mark your class as sealed to ensure that it is the most derived type in the inheritance hierarchy - in which case it is perfectly safe to call the virtual method.

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45  
Greg, please tell me why would anyone have a class SEALED (which cannot be INHERITED) when it has VIRTUAL members [that is to override in DERIVED classes]? –  Paul Pacurar Feb 15 '11 at 15:27
50  
If you want to make sure that a derived class cannot be further derived it's perfectly acceptable to seal it. –  Øyvind Feb 15 '11 at 19:40
19  
@Paul - The point is that have finished deriving the virtual members of the base class[es], and thus are marking the class as fully derived as you want it to be. –  ljs Feb 25 '11 at 16:37
3  
@Greg If the virtual method's behaviour has nothing to do with the instance variables, isn't this ok? It seems like maybe we should be able to declare that a virtual method will not modify the instance variables? (static?) For example, if you want to have a virtual method that can be overridden to instantiate a more derived type. This seems safe to me, and does not warrant this warning. –  Sahuagin Oct 7 '11 at 22:29
3  
@PaulPacurar - If you want to call a virtual method in the most derived class, you still get the warning while you know it's not going to cause a problem. In that case, you could share your knowledge with the system by sealing that class. –  Revolutionair Feb 26 '13 at 9:16

In order to answer your question, consider this question: what will the below code print out when the Child object is instantiated?

class Parent
{
    public Parent()
    {
        DoSomething();
    }
    protected virtual void DoSomething() {};
}

class Child : Parent
{
    private string foo;
    public Child() { foo = "HELLO"; }
    protected override void DoSomething()
    {
        Console.WriteLine(foo.ToLower());
    }
}

The answer is that in fact a NullReferenceException will be thrown, because foo is null. An object's base constructor is called before its own constructor. By having a virtual call in an object's constructor you are introducing the possibility that inheriting objects will execute code before they have been fully initialized.

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9  
+1 Clear, concise and code example. Thank you. –  Barton May 6 '13 at 18:38

The rules of C# are very different from that of Java and C++.

When you are in the constructor for some object in C#, that object exists in a fully initialized (just not "constructed") form, as its fully derived type.

namespace Demo
{
    class A 
    {
      public A()
      {
        System.Console.WriteLine("This is a {0},", this.GetType());
      }
    }

    class B : A
    {      
    }

    // . . .

    B b = new B(); // Output: "This is a Demo.B"
}

This means that if you call a virtual function from the constructor of A, it will resolve to any override in B, if one is provided.

Even if you intentionally set up A and B like this, fully understanding the behavior of the system, you could be in for a shock later. Say you called virtual functions in B's constructor, "knowing" they would be handled by B or A as appropriate. Then time passes, and someone else decides they need to define C, and override some of the virtual functions there. All of a sudden B's constructor ends up calling code in C, which could lead to quite surprising behavior.

It is probably a good idea to avoid virtual functions in constructors anyway, since the rules are so different between C#, C++, and Java. Your programmers may not know what to expect!

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42  
Greg Beech's answer, while unfortunately not voted as high as my answer, I feel is the better answer. It's certainly got a few more valuable, explanatory details I didn't take the time to include. –  Lloyd Sep 23 '08 at 18:17
1  
Actually the rules in Java are the same. –  OlegYch Nov 17 '11 at 22:02
8  
@JoãoPortela C++ is very different actually. Virtual method calls in constructors (and destructors!) are resolved using the type (and vtable) currently being constructed, not the most derived type as Java and C# both do. Here is the relevant FAQ entry. –  Jacek Sieka May 28 '12 at 8:26
1  
@JacekSieka you are absolutely correct. It's been a while since I coded in C++ and I somehow confused all this. Should I delete the comment to avoid confusing anyone else? –  João Portela May 28 '12 at 9:34

Reasons of the warning are already described, but how would you fix the warning? You have to seal either class or virtual member.

  class B
  {
    protected virtual void Foo() { }
  }

  class A : B
  {
    public A()
    {
      Foo(); // warning here
    }
  }

You can seal class A:

  sealed class A : B
  {
    public A()
    {
      Foo(); // no warning
    }
  }

Or you can seal method Foo:

  class A : B
  {
    public A()
    {
      Foo(); // no warning
    }

    protected sealed override void Foo()
    {
      base.Foo();
    }
  }
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13  
Oy! I really didn't know you could seal off methods like that. Great piece of information right there! –  Gleno Sep 13 '11 at 17:54
1  
+1 for sealed override; had no idea –  Sahuagin Sep 27 '11 at 5:37

In C#, a base class' constructor runs before the derived class' constructor, so any instance fields that a derived class might use in the possibly-overridden virtual member are not initialized yet.

Do note that this is just a warning to make you pay attention and make sure it's all-right. There are actual use-cases for this scenario, you just have to document the behavior of the virtual member that it can not use any instance fields declared in a derived class below where the constructor calling it is.

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There are well-written answers above for why you wouldn't want to do that. Here's a counter-example where perhaps you would want to do that (translated into C# from Practical Object-Oriented Design in Ruby by Sandi Metz, p. 126).

Note that GetDependency() isn't touching any instance variables. It would be static if static methods could be virtual.

(To be fair, there are probably smarter ways of doing this via dependency injection containers or object initializers...)

public class MyClass
{
    private IDependency _myDependency;

    public MyClass(IDependency someValue = null)
    {
        _myDependency = someValue ?? GetDependency();
    }

    // If this were static, it could not be overridden
    // as static methods cannot be virtual in C#.
    protected virtual IDependency GetDependency() 
    {
        return new SomeDependency();
    }
}

public class MySubClass : MyClass
{
    protected override IDependency GetDependency()
    {
        return new SomeOtherDependency();
    }
}

public interface IDependency  { }
public class SomeDependency : IDependency { }
public class SomeOtherDependency : IDependency { }
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Yes, it's generally bad to call virtual method in the constructor.

At this point, the objet may not be fully constructed yet, and the invariants expected by methods may not hold yet.

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One important aspect of this question which other answers have not yet addressed is that it is safe for a base-class to call virtual members from within its constructor if that is what the derived classes are expecting it to do. In such cases, the designer of the derived class is responsible for ensuring that any methods which are run before construction is complete will behave as sensibly as they can under the circumstances. For example, in C++/CLI, constructors are wrapped in code which will call Dispose on the partially-constructed object if construction fails. Calling Dispose in such cases is often necessary to prevent resource leaks, but Dispose methods must be prepared for the possibility that the object upon which they are run may not have been fully constructed.

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Because until the constructor has completed executing, the object is not fully instantiated. Any members referenced by the virtual function may not be initialised. In C++, when you are in a constructor, this only refers to the static type of the constructor you are in, and not the actual dynamic type of the object that is being created. This means that the virtual function call might not even go where you expect it to.

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Your constructor may (later, in an extension of your software) be called from the constructor of a subclass that overrides the virtual method. Now not the subclass's implementation of the function, but the implementation of the base class will be called. So it doesn't really make sense to call a virtual function here.

However, if your design satisfies the Liskov Substitution principle, no harm will be done. Probably that's why it's tolerated - a warning, not an error.

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There's a difference between C++ and C# in this specific case. In C++ the object is not initialized and therefore it is unsafe to call a virutal function inside a constructor. In C# when a class object is created all its members are zero initialized. It is possible to call a virtual function in the constructor but if you'll might access members that are still zero. If you don't need to access members it is quite safe to call a virtual function in C#.

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It is not forbidden to call a virtual function inside a constructor in C++. –  qbeuek Sep 23 '08 at 7:32
    
The same argument holds for C++, if you don't need to access members, you don't care they weren't initialized... –  David Pierre Sep 23 '08 at 9:17
2  
No. When you call a virtual method in a constructor in C++ it will invoke not the deepest overriden implementation, but the version associated with the current type. It is called virtually, but as if on a type of the current class - you don't have access to methods and members of a derived class. –  qbeuek Sep 26 '08 at 9:01

Another interesting thing I found is that ReSharper error can be 'satisfied' by doing something like below which is dumb to me (however, as mentioned by many earlier, it still is not a good idea to call virtual prop/methods in ctor.

public class ConfigManager
{

   public virtual int MyPropOne { get; private set; }
   public virtual string MyPropTwo { get; private set; }

   public ConfigManager()
   {
    Setup();
   }

   private void Setup()
   {
    MyPropOne = 1;
    MyPropTwo = "test";
   }

}

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