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How do I setup a class that represents an interface? Is this just an abstract base class?

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2  
Nobody has mentioned that if the idea is just to hide an implementation from clients you can use the pimpl idiom: herbsutter.com/gotw/_100 –  Brian Gordon Sep 6 '13 at 22:50

12 Answers 12

up vote 398 down vote accepted

To expand on the answer by bradtgmurray, you may want to make one exception to the pure virtual method list of your interface by adding a virtual destructor. This allows you to pass pointer ownership to another party without exposing the concrete derived class. The destructor doesn't have to do anything, because the interface doesn't have any concrete members. It might seem contradictory to define a function as both virtual and inline, but trust me - it isn't.

class IDemo
{
    public:
        virtual ~IDemo() {}
        virtual void OverrideMe() = 0;
};

class Parent
{
    public:
        virtual ~Parent();
};

class Child : public Parent, public IDemo
{
    public:
        virtual void OverrideMe()
        {
            //do stuff
        }
};

You don't have to include a body for the virtual destructor - it turns out some compilers have trouble optimizing an empty destructor and you're better off using the default. http://connect.microsoft.com/VisualStudio/feedback/details/560640/empty-c-destructors-prevent-optimization

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67  
Virtual desctuctor++! This is very important. You may also want to include pure virtual declarations of the operator= and copy constructor definitions to prevent the compiler auto-generating those for you. –  xan Nov 25 '08 at 17:52
16  
An alternative to a virtual destructor is a protected destructor. This disables polymorphic destruction, which may be more appropriate in some circumstances. Look for "Guideline #4" in gotw.ca/publications/mill18.htm. –  Fred Larson Nov 25 '08 at 19:06
4  
If you know you're not going to delete the class through a base class, you don't need the virtual destructor. However, it's never really harmful to make the destructor virtual anyway (except for one vtable lookup, oh no!). –  bradtgmurray Jul 17 '09 at 14:28
5  
One other option is to define a pure virtual (=0) destructor with a body. The advantage here is that the compiler can, theoretically, see that vtable has no valid members now, and discard it altogether. With a virtual destructor with a body, said destructor can be called (virtually) e.g. in the middle of construction via this pointer (when constructed object is still of Parent type), and therefore the compiler has to provide a valid vtable. So if you don't explicitly call virtual destructors via this during construction :) you can save on code size. –  Pavel Minaev Dec 31 '09 at 9:04
24  
How typical of a C++ answer that the top answer doesn't directly answer the question (though obviously the code is perfect), instead it optimizes the simple answer. –  Tim Aug 24 '12 at 22:49

Make a class with pure virtual methods. Use the interface by creating another class that overrides those virtual methods.

A pure virtual method is a class method that is defined as virtual and assigned to 0.

class IDemo
{
    public:
        virtual void OverrideMe() = 0;
}

class Child : public IDemo
{
    public:
        virtual void OverrideMe()
        {
            //do stuff
        }
}
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13  
you should have a do nothing destructor in IDemo so that it is defined behavior to do: IDemo *p = new Child; /*whatever */ delete p; –  Evan Teran Nov 26 '08 at 8:33
3  
Why is the OverrideMe method in Child class is virtual ? Is that necessary ? –  Cemre Jan 31 '12 at 22:26
3  
@Cemre - no it's not necessary, but it doesn't hurt either. –  Martin Rennix Feb 12 '12 at 11:15

The whole reason you have a special Interface type-category in addition to abstract base classes in C#/Java is because C#/Java do not support multiple inheritance.

C++ supports multiple inheritance, and so a special type isn't needed. An abstract base class with no non-abstract (pure virtual) methods is functionally equivalent to a C#/Java interface.

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8  
It would still be nice to be able to create interfaces, to save us from typing so much (virtual , =0, virtual destructor). Also multiple inheritance seems like a really bad idea to me and I've never seen it used in practice, but interfaces are needed all the time. To bad the C++ comity won't introduce interfaces just because I want them. –  Ha11owed Aug 1 '12 at 6:05
4  
Ha11owed: It has interfaces. They're called classes with pure virtual methods and no method implementations. –  Miles Rout Jan 1 '13 at 6:51

There is no concept of "interface" per se in C++. AFAIK, interfaces were first introduced in Java to work around the lack of multiple inheritance. This concept has turned out to be quite useful, and the same effect can be achieved in C++ by using an abstract base class.

An abstract base class is a class in which at least one member function (method in Java lingo) is a pure virtual function declared using the following syntax:


class A
{
  virtual void foo() = 0;
};

An abstract base class cannot be instantiated, i. e. you cannot declare an object of class A. You can only derive classes from A, but any derived class that does not provide an implementation of foo() will also be abstract. In order to stop being abstract, a derived class must provide implementations for all pure virtual functions it inherits.

Note that an abstract base class can be more than an interface, because it can contain data members and member functions that are not pure virtual. An equivalent of an interface would be an abstract base class without any data with only pure virtual functions.

And, as Mark Ransom pointed out, an abstract base class should provide a virtual destructor, just like any base class, for that matter.

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5  
More than "lack of multiple inheritance" I would say, to replace multiple inheritance. Java was designed like this from the beginning because multiple inheritance create more problems than what it solves. Good answer –  OscarRyz Nov 25 '08 at 17:32
6  
Oscar, that depends on whether you are a C++ programmer who learned Java or vice versa. :) IMHO, if used judiciously, like almost anything in C++, multiple inheritance solves problems. An "interface" abstract base class is an example of a very judicious use of multiple inheritance. –  Dima Nov 25 '08 at 17:40
1  
@OscarRyz Wrong. MI only creates problem when misused. Most alleged problems with MI would also come up with alternate designs (without MI). When people have a problem with their design with MI, it's the fault of MI; if they have a design problem with SI, it's their own fault. "Diamond of death" (repeated inheritance) is a prime example. MI bashing is not pure hypocrisy, but close. –  curiousguy Aug 16 '12 at 3:24

My answer is basically the same as the others but I think there are two other important things to do:

  1. Declare a virtual destructor in your interface or make a protected non-virtual one to avoid undefined behaviours if someone tries to delete an object of type IDemo.

  2. Use virtual inheritance to avoid problems whith multiple inheritance. (There is more often multiple inheritance when we use interfaces.)

And like other answers:

  • Make a class with pure virtual methods.
  • Use the interface by creating another class that overrides those virtual methods.

    class IDemo
    {
        public:
            virtual void OverrideMe() = 0;
            virtual ~IDemo() {}
    }
    

    Or

    class IDemo
    {
        public:
            virtual void OverrideMe() = 0;
        protected:
            ~IDemo() {}
    }
    

    And

    class Child : virtual public IDemo
    {
        public:
            virtual void OverrideMe()
            {
                //do stuff
            }
    }
    
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2  
+1 for mentioning the virtual inheritance. –  neuro May 3 '11 at 8:20
1  
there is no need for virtual inheritance as you do not have any data members in an interface. –  Robocide Jul 3 '11 at 7:22
2  
Virtual inheritance is important for methods as well. Without it, you will run into ambiguities with OverrideMe(), even if one of the 'instances' of it is pure virtual (just tried this myself). –  Knarf Navillus Aug 1 '12 at 0:22
2  
@Avishay_ "there is no need for virtual inheritance as you do not have any data members in an interface." Wrong. –  curiousguy Aug 16 '12 at 3:25
    
Notice that virtual inheritance may not work on some gcc versions, as version 4.3.3 which is shipped with WinAVR 2010: gcc.gnu.org/bugzilla/show_bug.cgi?id=35067 –  mMontu Sep 19 '12 at 17:55

As far I could test, it is very important to add the virtual destructor. I'm using objects created with new and destroyed with delete.

If you do not add the virtual destructor in the interface, then the destructor of the inherited class is not called.

class IBase {
public:
    virtual ~IBase() {}; // destructor, use it to call destructor of the inherit classes
    virtual void Describe() = 0; // pure virtual method
};

class Tester : public IBase {
public:
    Tester(std::string name);
    virtual ~Tester();
    virtual void Describe();
private:
    std::string privatename;
};

Tester::Tester(std::string name) {
    std::cout << "Tester constructor" << std::endl;
    this->privatename = name;
}

Tester::~Tester() {
    std::cout << "Tester destructor" << std::endl;
}

void Tester::Describe() {
    std::cout << "I'm Tester [" << this->privatename << "]" << std::endl;
}


void descriptor(IBase * obj) {
    obj->Describe();
}

int main(int argc, char** argv) {

    std::cout << std::endl << "Tester Testing..." << std::endl;
    Tester * obj1 = new Tester("Declared with Tester");
    descriptor(obj1);
    delete obj1;

    std::cout << std::endl << "IBase Testing..." << std::endl;
    IBase * obj2 = new Tester("Declared with IBase");
    descriptor(obj2);
    delete obj2;

    // this is a bad usage of the object since it is created with "new" but there are no "delete"
    std::cout << std::endl << "Tester not defined..." << std::endl;
    descriptor(new Tester("Not defined"));


    return 0;
}

If you run the previous code without virtual ~IBase() {};, you will see that the destructor Tester::~Tester() is never called.

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1  
Best answer on this page as it makes the point by supplying a practical, compilable example. Cheers! –  Lumi Mar 10 '12 at 22:43
    
Testet::~Tester() runs only when the obj is "Declared with Tester". –  Alessandro L. Jan 17 '13 at 14:01

All good answers above. One extra thing you should keep in mind - you can also have a pure virtual destructor. The only difference is that you still need to implement it.

Confused?


    --- header file ----
    class foo {
    public:
      foo() {;}
      virtual ~foo() = 0;

      virtual bool overrideMe() {return false;}
    };

    ---- source ----
    foo::~foo()
    {
    }

The main reason you'd want to do this is if you want to provide interface methods, as I have, but make overriding them optional.

To make the class an interface class requires a pure virtual method, but all of your virtual methods have default implementations, so the only method left to make pure virtual is the destructor.

Reimplementing a destructor in the derived class is no big deal at all - I always reimplement a destructor, virtual or not, in my derived classes.

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3  
Why, oh why, would anyone want to make the dtor in this case pure virtual? What would be the gain of that? You'd just force something onto the derived classes that they likely have no need to include - a dtor. –  Johann Gerell Nov 26 '08 at 7:57
3  
Updated my answer to answer your question. Pure virtual destructor is a valid way to achieve (the only way to achieve?) an interface class where all methods have default implementations. –  Rodyland Dec 2 '08 at 20:27

If you're on Windows then you could do the following:

struct __declspec(novtable) IFoo
{
    virtual void Bar() = 0;
};

class Child : public IFoo
{
public:
    virtual void Bar() override { /* Do Something */ }
}

I like this approach because it results in a lot smaller interface code and the generated code size can be significantly smaller. The use of novtable removes all reference to the vtable pointer in that class, so you can never instantiate it directly. See the documentation here - novtable.

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2  
I don't quite see why you used novtable over standard virtual void Bar() = 0; –  Flexo Sep 17 '11 at 13:09
    
It's in addition to (I've just noticed the missing = 0; which I've added). Read the documentation if you don't understand it. –  Mark Ingram Sep 20 '11 at 14:44
    
I read it without the = 0; and assumed it was just a non-standard way of doing exactly the same. –  Flexo Sep 20 '11 at 14:47

You can also consider contract classes implemented with the NVI (Non Virtual Interface Pattern). For instance:

struct Contract1 : boost::noncopyable
{
    virtual ~Contract1();
    void f(Parameters p) {
        assert(checkFPreconditions(p)&&"Contract1::f, pre-condition failure");
        // + class invariants.
        do_f(p);
        // Check post-conditions + class invariants.
    }
private:
    virtual void do_f(Parameters p) = 0;
};
...
class Concrete : public Contract1, public Contract2
{
private:
    virtual void do_f(Parameters p); // From contract 1.
    virtual void do_g(Parameters p); // From contract 2.
};
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For other readers, this Dr Dobbs article "Conversations: Virtually Yours" by Jim Hyslop and Herb Sutter elaborates a bit more on why one might want to use the NVI. –  user2067021 Nov 1 '11 at 0:39
    
And also this article "Virtuality" by Herb Sutter. –  user2067021 Nov 1 '11 at 1:15

A little addition to what's written up there:

First, make sure your destructor is also pure virtual

Second, you may want to inherit virtually (rather than normally) when you do implement, just for good measures.

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Why inherit virtually? –  Tim Nov 25 '08 at 18:51
    
I like virtual inheritance because conceptually it means that there is only one instance of the inherited class. Admittedly, the class here does not have any space requirement so it may be superfluous. I haven't done MI in C++ for a while, but wouldn't nonvirtual inheritance complicate upcasting? –  Uri Nov 25 '08 at 19:09
    
Why, oh why, would anyone want to make the dtor in this case pure virtual? What would be the gain of that? You'd just force something onto the derived classes that they likely have no need to include - a dtor. –  Johann Gerell Nov 26 '08 at 7:55
1  
If there is a situation that an object would be destroyed through a pointer to the interface, you should make sure that the destructor is virtual... –  Uri Nov 26 '08 at 9:14
    
There is nothing wrong with a pure virtual destructor. It's not necessary, but there's nothing wrong with it. Implementing a destructor in a derived class is hardly a huge burden on the implementor of that class. See my answer below for why you'd do this. –  Rodyland Dec 5 '08 at 3:24

In C++11 you can easily avoid inheritance altogether:

struct Interface {
  explicit Interface(SomeType& other)
  : foo([=](){ return other.my_foo(); }), 
    bar([=](){ return other.my_bar(); }), /*...*/ {}
  explicit Interface(SomeOtherType& other)
  : foo([=](){ return other.some_foo(); }), 
    bar([=](){ return other.some_bar(); }), /*...*/ {}
  // you can add more types here...

  // or use a generic constructor:
  template<class T>
  explicit Interface(T& other)
  : foo([=](){ return other.foo(); }), 
    bar([=](){ return other.bar(); }), /*...*/ {}

  const std::function<void(std::string)> foo;
  const std::function<void(std::string)> bar;
  // ...
};

In this case, an Interface has reference semantics, i.e. you have to make sure that the object outlives the interface (it is also possible to make interfaces with value semantics).

These type of interfaces have their pros and cons:

  • They require more memory than inheritance based polymorphism.
  • They are in general faster than inheritance based polymorphism.
  • In those cases in which you know the final type, they are much faster! (some compilers like gcc and clang perform more optimizations in types that do not have/inherit from types with virtual functions).

Finally, inheritance is the root of all evil in complex software design. In Sean Parent's Value Semantics and Concepts-based Polymorphism (highly recommended, better versions of this technique are explained there) the following case is studied:

Say I have an application in which I deal with my shapes polymorphically using the MyShape interface:

struct MyShape { virtual void my_draw() = 0; };
struct Circle : MyShape { void my_draw() { /* ... */ } };
// more shapes: e.g. triangle

In your application, you do the same with different shapes using the YourShape interface:

struct YourShape { virtual void your_draw() = 0; };
struct Square : YourShape { void your_draw() { /* ... */ } };
/// some more shapes here...

Now say you want to use some of the shapes that I've developed in your application. Conceptually, our shapes have the same interface, but to make my shapes work in your application you would need to extend my shapes as follows:

struct Circle : MyShape, YourShape { 
  void my_draw() { /*stays the same*/ };
  void your_draw() { my_draw(); }
};

First, modifying my shapes might not be possible at all. Furthermore, multiple inheritance leads the road to spaghetti code (imagine a third project comes in that is using the TheirShape interface... what happens if they also call their draw function my_draw ?).

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class Shape 
{
public:
   // pure virtual function providing interface framework.
   virtual int getArea() = 0;
   void setWidth(int w)
   {
      width = w;
   }
   void setHeight(int h)
   {
      height = h;
   }
protected:
    int width;
    int height;
};

class Rectangle: public Shape
{
public:
    int getArea()
    { 
        return (width * height); 
    }
};
class Triangle: public Shape
{
public:
    int getArea()
    { 
        return (width * height)/2; 
    }
};

int main(void)
{
     Rectangle Rect;
     Triangle  Tri;

     Rect.setWidth(5);
     Rect.setHeight(7);

     cout << "Rectangle area: " << Rect.getArea() << endl;

     Tri.setWidth(5);
     Tri.setHeight(7);

     cout << "Triangle area: " << Tri.getArea() << endl; 

     return 0;
}

Result: Rectangle area: 35 Triangle area: 17

We have seen how an abstract class defined an interface in terms of getArea() and two other classes implemented same function but with different algorithm to calculate the area specific to the shape.

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1  
This is not what is considered an interface! That's just an abstract base class with one method that needs to be overridden! Interfaces are typically objects that contain only method definitions - a "contract" other classes have to fulfill when they implement the interface. –  guitarflow Mar 26 at 10:55

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