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I'm confused about why C++ does not allow you to use a functor on a pointer. For instance, if I have something like this as my class:

class Character{


    public:
        Character();
        ~Character();
        void operator()() {cout << "HELLO WORLD" << endl;}//this is the functor operator

};

When I do something like this, I get an error that says I can't call character as a function...

Character * character = new Character();

    character();

    delete character;

But this works fine:

Character character;
character();

How would I go about accessing this operator in the first scenario? Is it even possible?

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character->operator()() or (*character)(), pointers are not the object they're pointing to. –  chris Sep 24 '12 at 23:31

3 Answers 3

Yes, dereference the pointer:

(*character)();

Or more verbosely:

character->operator()();
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You need to perform indirection via the pointer to use the pointed-to object:

(*character)()
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it's a pointer, that's why:

character->(); or (*character)() are your friends.

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character->() doesn't work. –  chris Sep 24 '12 at 23:34
    
true, thanks for that! –  esskar Sep 24 '12 at 23:38

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