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Hey i'm trying to figure out Function pointers and how to pass them around/ declare them, but i'm having a little trouble passing a pointer in my Button class constructor and setting it's member function pointer too the passed pointer.

  • when i write Button(Func1) Button1 it says expected a ';'
  • when i write Button(Func1); it says no default constructor for Button
  • when i write Button(&Func1); it says Func1 requires an initializer
  • when i write Button(&Func1()) Button1; it says expression must be lvalue or function designator

What am i doing wrong?

void Func1(){std::cout << "This is a function\n";};
void Func2(){std::cout << "This is another function\n";};

class Button
{
private:
    void (*Func)(void);

public:
    void Activate(){ Func() ;};

    Button( void (*Function)(void)){
        this->Func = Function;};
};

Button(&Func1) Button1;
Button(&Func2) Button2;

Button1.Activate();
Button2.Activate();
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2 Answers 2

up vote 4 down vote accepted

This code has wrong syntax:

Button(&Func1) Button1;
Button(&Func2) Button2;

It should be:

Button Button1(&Func1);
Button Button2(&Func2);

And function pointer declaration:

void (*Func)(void);

Leave without void in parameters:

void (*Func)();

Edit: Working example at ideone.

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Button Button1(Func1); should also be legal, since the name of a function without () is actually the starting address of that function. –  Giorgio Jul 25 '11 at 20:59
    
Yes, it's legal too. But & doesn't cause anything. –  Miro Jul 25 '11 at 21:03
    
*facepalm* I need to get more sleep.... Thanks though! –  Griffin Jul 25 '11 at 21:07
    
I'm glad it help you. And looking at your all questions i'm surprised about that mistake ;) –  Miro Jul 25 '11 at 21:09
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Think of it like:

return_type (*ptr_name)(arguments);

It's often easiest to use typedefs to keep it as close to that as possible, too. For example:

void *(*f)(int);

can be rewritten as:

typedef void *ret_type;

ret_type (*f)(int);

this becomes particularly relevant when/if things get complex -- for example, any time you do some pseudo-functional programming, with one function returning a pointer to another function, you almost certainly want to use a typedef to keep the two straight.

Edit: You should also be aware that you seem to be trying to re-invent the Command pattern. You might want to look at (for one example) the implementation of the command pattern in Modern C++ Design.

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void *ret_type; - wrong, it's declaration of variable not typedef!! –  Miro Jul 25 '11 at 21:06
    
@Miro: Hmmm...you mean a typedef should actually say typedef? What a strange idea! :-) seriously, thanks -- corrected. –  Jerry Coffin Jul 25 '11 at 21:10
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