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I have this code:

char* hello = "Hello World";
std::cout << "Pointer value = " << hello << std::endl;
std::cout << "Pointer address = " << &hello << std::endl;

And here is the result:

Pointer value = Hello World
Pointer address = 0012FF74

When I debug to my program using OllyDbg, I see that the value of 0x0012FF74 is e.g. 0x00412374.

Is there any way I can print the actual address that hello points to?

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3 Answers

up vote 11 down vote accepted

If you use &hello it prints the address of the pointer, not the address of the string. Cast the pointer to a void* to use the correct overload of operator<<.

std::cout << "Pointer address = " << static_cast<void*>(hello) << std::endl;
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+1 for using C++ cast –  Bojan Komazec Feb 21 '12 at 12:29
    
thanks a lot, exactly what I wanted –  Greko2009 Feb 21 '12 at 13:00
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I don't have a compiler but probably the following works:

std::cout << "Pointer address = " << (void*) hello << std::endl;

Reason: using only hello would treat is as a string (char array), by casting it to a void pointer it will be shown as hex address.

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or so:

std::cout << "Pointer address = " << &hello[0] << std::endl;
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