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#include <iostream>

using namespace std;

class base
{
public:
  virtual void taunt() = 0;
  virtual void hide() = 0;
};

template <int nx, int ny>
class derivedA : public base
{
  void hide();
public:
  void taunt() { cout << "derivedA" << endl; }

  char c[nx][ny];
};

template <int nx, int ny, int nz>
class derivedB : public base
{
  void taunt();
public:

  void hide() { cout << "hide B" << end; }
  char c[nx][ny][nz];
};

int main()
{
  derived * dp = new derivedA();

  dp->taunt();

  delete dp;

  DerivedB b;

  dp = &b;

  dp->hide();

  return 0;
}

A and B are both derived from the pure virtual class base, and both have one method unimplemented. Is it legal to leave one method unimplemented? Is it acceptable or good practice to leave one method unimplemented? Are there better ways?

Edit: I just noticed that the classes are not derived from base. I've changed the code so that it does.

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7  
"A and B are both derived from the pure virtual class base" -- No, they're not. They're both baseless. –  Benjamin Lindley May 1 '12 at 17:12
1  
You can not instantiate a class with even a single method unimiplemented. Just try it on random compiler and you will see the compilation error. –  Boris Strandjev May 1 '12 at 17:13
    
derived * dp = new derivedA(); : derived is not a type and derivedA() is illegal: derivedA<4, 5>(). –  hmjd May 1 '12 at 17:14
    
Saying or wishing your classes are derived from some base class doesn't make it so. You need to specify the base class(es) as class derivedA : public base { ... }; Do that and try compiling your code on any compiler, you'll answer your questions yourself. –  Praetorian May 1 '12 at 17:16
2  
@BorisStrandjev: Not true. You can instantiate a class with unimplemented methods as long as you don't try to call those methods. This is often done with copy constructors to make classes non-copyable. What you can't instantiate is classes with pure virtual functions. –  Benjamin Lindley May 1 '12 at 17:18

3 Answers 3

up vote 4 down vote accepted

If you derive from a class that has a pure virtual method and you don't override that method in the derived class, that derived class will be an abstract class as well. If this is OK for you (e.g. you will derive it further), than you can do that. If you do want to instantiate that derived class, than you will have to override all pure abstract methods

Note that in your example you do not derive from the abstract base class: both derivedA and derivedB are standalone classes. You need:

class derivedA : public base {
  //...
};
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You are not allowed to instantiate any class that has pure virtual member functions. You can of course have such a class, but any instances of it must be of subclasses in which all the pure virtuals have been given definitions.

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No, it is not legal, you would get an error telling you that some virtual functions are "pure", or that you are trying to instantiate an abstract class. (depending on your compiler).

In your code example you are not inheriting from the abstract base class. Try compiling this:

struct Base {
  virtual void foo()=0;
  virtual void bar()=0;
};

struct Derived : Base {
  virtual void foo() {}
};

int main() {
  Derived d;
}

On GCC the error is quite self-explanatoyr:

baseclass.cpp:14:11: error: cannot declare variable 'd' to be of abstract type 'Derived'

baseclass.cpp:7:8: note: because the following virtual functions are pure within 'Derived':

baseclass.cpp:4:16: note: virtual void Base::bar()

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