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i hope this makes sense for you, i get confused. let me know if there is a simpler way:

double A::a(double(b::*bb)())
{
  b.init();
  return (b->*bb)();
}

void A::run();
{
  cout<< a(b.b1);
  cout<< a(b.b2);
}

class A
{
  B b;
  void run();
  double a(double(b::*bb)());
};

class B
{
  void init();
  double b1();
  double b2();
};
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4  
What exactly is your question? – EboMike Nov 28 '10 at 1:59
2  
this does not make sense.. what is bb? Are you getting error messages? Can you post them? – Default Nov 28 '10 at 2:03
    
What are you actually trying to achieve by doing this? – In silico Nov 28 '10 at 2:10
    
BTW, B::init should be B::B; C++ has real constructors. – MSalters Nov 29 '10 at 8:58
up vote 1 down vote accepted

It doesn't make sense. This makes sense though:

class B // <- class B definition comes first
{
  void init();
  double b1();
  double b2();
};

class A
{
  B b;
  void run();
  double a(double(B::*bb)()); // <- B instead of b
};

double A::a(double(B::*bb)()) // <- B instead of b
{
  b.init();
  return (b->*bb)();
}

void A::run() // <- you can't put semicolon here
{
  cout<< a(&B::b1); // <- you want to pass the address of a member.
  cout<< a(&B::b2); // <- you want to pass the address of a member.
}

Now it makes more sense to me.

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This:

double a(double(b::*bb)());

Should be:

double a(double(B::*bb)());

That is, bb is to be declared as a pointer to member function in the class B, not in the object b (which is an instance, not a type itself, therefore cannot be part of a type).

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