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I expected this code to print 'Same 1' and 'Same2', but it prints only 'Same1':

#include <iostream>
#include <typeinfo>
using namespace std;

struct C{virtual ~C(){}};
struct D : C{};
int main(){
   D d;
   C c, &cr1 = d;
   if(typeid(cr1) == typeid(D)) cout << "Same1";
   if(typeid(&cr1) == typeid(D*)) cout << "Same2";
}

Both §5.2.8/2 and §5.3.1/3 seem to suggest to me that 'Same2' should be printed.

What and where is the catch?

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Did you mean C c, *cr1 = &d ? –  Karel Petranek Nov 17 '10 at 9:10
    
@dark_charlie: That's basically just moving the address-of operator two lines up. You'd get the same result, even if you wrote typeid((C*) &d). –  MSalters Nov 17 '10 at 10:19
    
@MSalters: Ah, nvm me, I just can't read. –  Karel Petranek Nov 17 '10 at 11:25

1 Answer 1

up vote 16 down vote accepted

Pointers aren't polymorphic types. They don't have virtual members. In fact, they have no members whatsoever. They also cannot derive from other types, nor be used as base classes. Hence, the static and dynamic type of a T* is always T*.

In your "Same2" line, you're comparing the typeid of a pointer, not the pointed-to object. The compiler therefore only looks at the static types C* and D*. They're obviously not the same, and must have distinct type_info objects.

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