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I have some base class in which I store a pointer to a function from derived class. I need to call a function by its pointer from two places: from BaseClass and from derived class.

template < class T >
class BaseClass {
private:
    typedef void ( T::*FunctionPtr ) ();
    FunctionPtr funcPtr;
public:
    void setFunc( FunctionPtr funcPtr ) {
        this->funcPtr = funcPtr;
        ( this->*funcPtr )(); // I need to call it here also but it doesn't work
    }
};

class DerivedClass: public BaseClass < DerivedClass > {
public:
    void callMe() {
        printf( "Ok!\n" );
    }
    void mainFunc() {
        setFunc( &DerivedClass::callMe );
        ( this->*funcPtr )(); // works fine here
    }   
};

Error: left hand operand to -> * must be a pointer to class compatible with the right hand operand, but is 'BaseClass *'

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  • 3
    you can't use this as the left side of ->* because this has type BaseClass<T>, it does not inherit from T – Ryan Haining Dec 15 '14 at 2:31
  • @RyanHaining thanks for the explanation. Can you show me a piece of code how to avoid it? – JavaRunner Dec 15 '14 at 2:33
4
( this->*funcPtr )();

is the wrong syntax to use to call funcPtr since the type of funcPtr is void T::*().

You need to use:

( (static_cast<T*>(this))->*funcPtr )();
1
  • 3
    In the base class you may want to add static_assert(std::is_base_of<BaseClass, T>::value, "T does not derive BaseClass") to make sure the static_cast is safe an that no one is misusing your pattern – Ryan Haining Dec 15 '14 at 3:27

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