53

I try to call a function which passed as function pointer with no argument, but I can't make it work.

void *disconnectFunc;

void D::setDisconnectFunc(void (*func)){
    disconnectFunc = func;
}

void D::disconnected(){
    *disconnectFunc;
    connected = false;
}
78

The correct way to do this is:

typedef void (*callback_function)(void); // type for conciseness

callback_function disconnectFunc; // variable to store function pointer type

void D::setDisconnectFunc(callback_function pFunc)
{
    disconnectFunc = pFunc; // store
}

void D::disconnected()
{
    disconnectFunc(); // call
    connected = false;
}
  • +1 for using my preferred syntax of de-referencing a function pointer (prefer disconnectFunc() to (*disconnectFunc)(), even though they're both fine) – Dan Apr 6 '10 at 3:52
  • Is this portable way or it's not recommended to use for portability? – JavaRunner Jul 20 '13 at 19:53
  • 1
    @JavaRunner: It's perfectly portable. – GManNickG Jul 21 '13 at 17:46
  • Fine. Thanks! Do you happen to know what I need to fix in that code if I need to pass function to setDisconnectFunc() with some parameters? – JavaRunner Jul 22 '13 at 4:35
  • @JavaRunner: You should ask a new question if you need help extending it, the comment section is too constrained. There are many ways to do it, whatever your requirements are. – GManNickG Jul 22 '13 at 6:21
10

Replace void *disconnectFunc; with void (*disconnectFunc)(); to declare function pointer type variable. Or even better use a typedef:

typedef void (*func_t)(); // pointer to function with no args and void return
...
func_t fptr; // variable of pointer to function
...
void D::setDisconnectFunc( func_t func )
{
    fptr = func;
}

void D::disconnected()
{
    fptr();
    connected = false;
}
7

You need to declare disconnectFunc as a function pointer, not a void pointer. You also need to call it as a function (with parentheses), and no "*" is needed.

  • Thank you. Final code: void (*disconnectFunc)(); void D::setDisconnectFunc(void (*func)()){ disconnectFunc = func; } void D::disconnected(){ (*disconnectFunc)(); connected = false; } – Roland Soós Apr 6 '10 at 1:43

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