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I am trying to store a vector(or stack) of functions. The idea is that I have a series of functions that add & remove widgets to the main window. I use a timer alarm & whenever the alarm is called I call the function at the top of the stack of functions.

So my functions will always be of type void. My problem/misunderstanding is how to delcare a stl::stack of void functions & how do I execute that function?

class InstructionScreen
{

  std::stack <void*> instructionSteps;  // is this how I declare a stack of functions

  void runTimerEvent()
  {
      if ( !instructionSteps.empty() ) 
      {
          // call the function at the top of the stack
          // how do I call the function?
          (*instructionSteps.top()); // is that how?
          instructionSteps.pop();
      }
  }

  void step1()
  {
     // here I create some widgets & add them to the main window
  }

  void step2()
  {
     // delete widgets from window
     // create some different widgets & add them to the main window
  }

  void buildStack()
  {
     instructionSteps.push( (&step1()) ); // is this correct?
     instructionSteps.push( (&step2()) );  
  }

};
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6 Answers 6

typedef void (*fptr)();
class InstructionScreen
{

  std::stack <fptr> instructionSteps; 
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Declare a typedef and make a vector/stack of it:

typedef void (*funcptr)();
std::stack<funcptr> instructionSteps;

Usage:

instructionSteps.push(&step1);
instructionSteps.push(&step2);  

See demo here. Execution:

instructionSteps.top()();
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A void* pointer is not a legal function pointer. It should be void (*)(), which can be made nicer with a typedef void (*stack_function)().

std::stack<stack_function> instructionSteps;

To push something into it, you don't call the function (like you do with step1()) and you certainly don't take the address of the return (which is void anyways) like you do with &step1(), you just use the function name alone:

instructionSteps.push(step1); // the & can be omitted for free functions
instructionSteps.push(&step2); // equivalent to the above, only a different function

To call stuff from the top of the stack, you actually need to do a call:

(*instructionSteps.top())();
//    you missed that -- ^^

The dereference can be omitted too for reasons that would take too long to explain here, search SO. :)

instructionSteps.top()();
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1  
What do you mean by "free function pointers?" –  Maxpm Jun 29 '11 at 4:46
1  
@Maxpm: Well, to get a pointer to a member function, you need the &: &MyClass::my_func. I can see where you're coming from, though, the wording is a bit ambiguous. Changed that. –  Xeo Jun 29 '11 at 4:47

I would typedef the function pointer to make your life easier:

typedef void(*voidFunctionPointer)(); // Assuming here that the functions take no arguments.

std::stack<voidFunctionPointer> instructionSteps; // This is very different from <void*>.  
                                                  // The latter is merely a stack of void pointers.

One way of calling the top function is this:

voidFunctionPointer functionToCall = instructionSteps.top();
functionToCall();

If you want to do it without an extra declaration, I think this should work. Please correct me if I'm wrong.

instructionSteps.top()();

To build the stack, just use the function name without any trailing parentheses.

instructionSteps.push(step1);
instructionSteps.push(step2);
// ...
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The syntax for a static function pointer is like so:

void (*FuncPtr)();

For a member pointer you have to use this syntax:

void (class::*FuncPtr)();

If your functions does not require the functions to be member functions it is a lot cleaner. Once you figured out what kind of functions you need it's easiest to typedef these functions like so:

typedef void(*FuncPtrType)();
typedef void(Class::*MemberFuncPtrType)();

Now you can simply declare a stack with function pointers like so:

std::stack <FuncPtrType> funcPtrStack;
std::stack <MemberFuncPtrType> memberFuncPtrStack;

To get a pointer to a function you simply use the "&" operator like you would to get an address to any other data type in C++:

FuncPtrType funcPtr = &staticFunc; // Somewhere "void staticFunc()" is defined
MemberFuncPtrType memberFuncPtr = &Class::MemberFunc; // Somewhere void "Class::MemberFunc()" is defined

To actually call the function pointers, you would use the "*" operator to get the data back from the pointer (just like any other data type in C++). The only tricky thing is for member functions they need a pointer to the class which makes it very awkward to use. That's why I recommended using static functions to begin with. In any case, here is the syntax:

(*funcPtr)(); // I just called a function with a pointer!
(this->*memberFuncPtr)(); // I just wrote some ugly code to call a member function

Having shown all that, the following code should now make sense:

std::stack <MemberFuncPtrType> memberFuncPtrStack; // Declaring the stack
memberFuncPtrStack.push( &Class::MemberFunc ); // Pushing a function
(ClassPtr->*memberFuncPtrStack.top())(); // Calling the function with ClassPtr
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2  
Your code for calling a member function is wrong, it has to be (obj.*mem_fun_ptr)();, the .* is one operator. Better even for pointers, just use the ->* operator: (obj_ptr->*mem_fun_ptr)(); –  Xeo Jun 29 '11 at 5:22
    
Good catch, I fixed it up. –  David Yen Jun 30 '11 at 9:08

Tip: Use Boost.Function, it's a lot easier. It will not only store functions with precisely the right type, but also anything else that can be called in the same way.

std::stack<boost::function<void()> instructionSteps;
int foo() { return 42; }
instructionSteps.push(foo); // Close enough - return value will be discarded.
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