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I wanted to inspect the address of my variable

volatile int clock;
cout << &clock;

But it always says that x is at address 1. Am i doing something wrong??

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1 need not always represent numerical value -- could be logical as well. – Kris Nov 23 '11 at 8:51

2 Answers 2

iostreams will cast most pointers to void * for display - but no conversion exists for volatile pointers. As such C++ falls back to the implicit cast to bool. Cast to void* explicitly if you want to print the address:

std::cout << (void*)&clock;
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I thought that the conversion works automatical? – ᐅ Johannes Schaub - litb ᐊ Nov 23 '11 at 8:49
Oh! Johannes is human too! – Matthieu M. Nov 23 '11 at 9:26
@bdonlan: You've got it backwards. Any normal pointer can be implicitly converted to void*, it's void* to T* that requires a cast. – GManNickG Nov 23 '11 at 9:42
This answer is incorrect as it stands. The conversion of T* to void* is implicit. – James Kanze Nov 23 '11 at 9:58
@bdonlan Sorry, but C++ does have an implicit conversion of T* to void*. The answer as written is wrong, or at least incomplete; what C++ doesn't support is implicitly casting away volatile. – James Kanze Nov 23 '11 at 10:01

There's an operator<< for const void*, but there's no operator<< for volatile void*, and the implicit conversion will not remove volatile (it won't remove const either).

As GMan says, the cv-qualification of the type pointed to should be irrelevant to the business of printing an address. Perhaps the overload defined in should be operator<<(const volatile void* val);, I can't immediately see any disadvantage. But it isn't.

#include <iostream>

void foo(const void *a) {
    std::cout << "pointer\n";

void foo(bool a) {
    std::cout << "bool\n";

int main() {
    volatile int x;
    std::cout << &x << "\n";
    int y;
    std::cout << &y << "\n";
    void foo(volatile void*);

void foo(volatile void *a) {
    std::cout << "now it's a pointer\n";


now it's a pointer
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Beat me by literally one second, urg :(. To add on: in the solution proposed by bdonlan, the c-style cast as a const_cast. For the purpose of printing, it's not really a concern. – GManNickG Nov 23 '11 at 9:50

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