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int x = 5;
int *xPtr = &x;
void **xPtrPtr = &xPtr;
printf("%d\n", *(int*)*xPtrPtr);

I have a void pointer pointing to an int pointer. What is the syntax for properly casting the void pointer when I want to dereference? The above code quits with:

error: invalid conversion from ‘int**’ to ‘void**’

Thank you!

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1  
can't you cast when assigning? -> void **xPtrPtr = (void)&xPtr; –  BlackBear Feb 19 '11 at 20:36
    
Why are you casting? A bit more context would help in answering the question. Do you need the void** for an external function? –  rubenvb Feb 19 '11 at 20:38

5 Answers 5

up vote 4 down vote accepted

For void pointers, you don't really need to know how many indirections there are.

#include <iostream>
int main(void){
    int x = 5;
    int* pX = &x;
    void* pV = &pX;
    std::cout << "x = " << **(int**)pV << std::endl;
    // better use C++-Style casts from the beginning
    // or you'll be stuck with the lazyness of writing the C-versions:
    std::cout << "x = " << **reinterpret_cast<int**>(pV) << std::endl;
    std::cin.get();
}

Output:

x = 5
x = 5

See this here.

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Thank you very much! –  Christian Feb 19 '11 at 20:54
    
Ah, shows my inexperience with C++. Though I still say that if this is C++, you should use C++ constructs, casting included. **reinterpret_cast<int**>(pV) –  Jeff Mercado Feb 19 '11 at 21:00
    
@Jeff: You are right, it's just the lazy me that always does C-Style casts, since the C++ versions are so verbose. –  Xeo Feb 19 '11 at 21:02

The pointer to int is *((int **)xPtrPtr)

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void **xPtrPtr = (void**)&xPtr;
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    int x = 5;
    int *xPtr = &x;
    void **xPtrPtr = reinterpret_cast<void**>(&xPtr);
    int y = **reinterpret_cast<int**>(xPtrPtr);
    cout << y;

Compile: No Error. No Warning!

Output:

5

Code at ideone : http://www.ideone.com/1nxWW

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Thank you for showing me the concept of "reinterpret_cast". In the question mentioned above, the simplest answer is imho that I don't need to know the level of indirections when it comes to void pointers. –  Christian Feb 19 '11 at 21:00
    
@Christian: I think that is a bad form to say it. What is true that a pointer to any object (including a pointer to a pointer, or a pointer to a pointer to a pointer etc.) can be stored in a void pointer and then can be converted back to the original pointer type. Note also that this is true only for pointer to objects (not for pointer to functions or pointer to members). –  6502 Feb 20 '11 at 7:58

This compiles correctly:

#include <stdio.h>

int main(int argc, char *argv[]) {
   int x = 57; 
   int *xPtr = &x; 
   void **xPtrPtr = (void**)&xPtr; 
   printf("%d\n", *((int*)*xPtrPtr));
}
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