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I know that a function pointer stores the address of a function.

int fun(int x){
 //return something
} 
int (pfun*)(int)=&fun;

int main(){

std::cout << &fun << "\n"; // this print out 1
std::cout << fun << "\n" ; // this print out 1
std::cout << &pfun << "\n"; // this print out 0x0022ff40
std::cout << pfun << "\n" ; // this print out 1

 }

So my questions are :
1) if the fun() doesn't even have an address how can pfun does point to fun().
2) for example in dynamic binding when I use a pointer function at runtime. does the compiler change pfun value to a real pointer like 0X..... so that at runtime will know which function to call since the names doesn't existe after compilation?

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2 Answers 2

up vote 5 down vote accepted

The expressions fun and &fun have the same meaning: &fun which is equivalent to the value stored in pfun, so it is no wonder that the three of them yield the same output. &pfun is the address of the pointer, which is the address of the variable.

Now the question is why 1... well, the answer is that there is no overloaded operator<< that takes an std::ostream and a function pointer, so the compiler tries to find the best match among the existing overloads which happens to be bool (a function pointer is implicitly convertible to bool). The function pointer will be converted to false only if the function pointer is null, which is not the case. The true value is finally printed as 1 (you can check this by doing: std::cout << std::boolalpha << fun which will print true).

If you want to obtain the actual address of the function (in this process) you can force the cast to a void pointer and print the result. This might not be technically correct, but it will give you a number different than 1... Note that the value might differ in different runs and basically has no meaning at all.

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If I remember correctly, Casting of a function pointer to void * is not allowed. The standard explicitly says so, I think...Or was it specifically member function pointers, need to check.. –  Alok Save Apr 6 '12 at 2:46
    
@Als: that is the reason for the not technically correct comment in the answer. The fact is that IIRC it does work in most architectures, the standard does not guarantee it because some platforms in the past have had different pointer sizes for functions and data, which means that casting to void* and back to the original would not yield the original result... Then again, as I mentioned, even in the platforms where it does produce a value, it is useless. –  David Rodríguez - dribeas Apr 6 '12 at 2:53
    
Isn't the explicit mention of casting a function pointer to void * being invalid, only applicable to member function pointers? or even free standing function pointers? –  Alok Save Apr 6 '12 at 2:56
    
@AlexDan: I am sorry, I don't really understand your comment. How does whatever I said conclude to there is no difference between fun and pfun? Also, I don't see no vtable involved that you are talking about. –  Alok Save Apr 6 '12 at 3:00
    
@Als it's just a typo that question was not for you. sorry for that. you can answer this question if you want why does the compiler uses function pointers inside vtable and not just simply use function names ? –  AlexDan Apr 6 '12 at 3:05

operator<< does not have an appropriate overload for printing function pointers. Try this instead.

#include <iostream>

void fun() {}

void (*pFun)() = &fun;

int main ()
{
  std::cout << (void*)pFun << "\n";
}
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