问题
I'm getting a compile error (MS VS 2008) that I just don't understand. After messing with it for many hours, it's all blurry and I feel like there's something very obvious (and very stupid) that I'm missing. Here's the essential code:
typedef int (C::*PFN)(int);
struct MAP_ENTRY
{
int id;
PFN pfn;
};
class C
{
...
int Dispatch(int, int);
MAP_ENTRY *pMap;
...
};
int C::Dispatch(int id, int val)
{
for (MAP_ENTRY *p = pMap; p->id != 0; ++p)
{
if (p->id == id)
return p->pfn(val); // <--- error here
}
return 0;
}
The compiler claims at the arrow that the "term does not evaluate to a function taking 1 argument". Why not? PFN is prototyped as a function taking one argument, and MAP_ENTRY.pfn is a PFN. What am I missing here?
回答1:
p->pfn is a pointer of pointer-to-member-function type. In order to call a function through such a pointer you need to use either operator ->* or operator .* and supply an object of type C as the left operand. You didn't.
I don't know which object of type C is supposed to be used here - only you know that - but in your example it could be *this. In that case the call might look as follows
(this->*p->pfn)(val)
In order to make it look a bit less convoluted, you can introduce an intermediate variable
PFN pfn = p->pfn;
(this->*pfn)(val);
回答2:
Try
return (this->*p->pfn)(val);
回答3:
Just to chime in with my own experience, I've come across an error in g++ caused by this statement:
(this -> *stateHandler)() ;
Where stateHandler is a pointer to a void member function of the class referenced by *this. The problem was caused by the spaces between the arrow operator. The following snippet compiles fine:
(this->*stateHandler)() ;
I'm using g++ (GCC) 4.4.2 20090825 (prerelease). FWIW.
回答4:
p->pfn is a function pointer. You need to use * to make it function. Change to
(*(p->pfn))(val)
来源:https://stackoverflow.com/questions/1928431/how-do-i-call-a-pointer-to-member-function