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I have a void pointer called ptr. I want to increment this value by a number of bytes. Is there a way to do this?

Please note that I want to do this in-place without creating any more variables.

Could I do something like ptr = (void *)(++((char *) ptr)); ?

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3 Answers 3

up vote 28 down vote accepted

You cannot perform arithmetic on a void pointer because pointer arithmetic is defined in terms of the size of the pointed-to object.

You can, however, cast the pointer to a char*, do arithmetic on that pointer, and then convert it back to a void*:

void* p = /* get a pointer somehow */;

// In C++:
p = static_cast<char*>(p) + 1;

// In C:
p = (char*)p + 1;
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shouldn't that be reinterpret_cast? –  Balk Dec 12 '12 at 21:18
    
@Balk: static_cast is sufficient. –  James McNellis Dec 12 '12 at 22:42

No arithmeatic operations can be done on void pointer.

The compiler doesn't know the size of the item(s) the void pointer is pointing to. You can cast the pointer to (char *) to do so.

In gcc there is an extension which treats the size of a void as 1. so one can use arithematic on a void* to add an offset in bytes, but using it would yield non-portable code.

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In GCC it's possible because sizeof(void) yields 1. –  Blagovest Buyukliev Jun 23 '11 at 6:09
    
@Blagovest Buyukliev: It is extension in GCC which treats the size of a void as 1, Using it would yield non-portable code. –  Alok Save Jun 23 '11 at 6:11
    
@Blag: As always, please compile with -pedantic. :) –  Xeo Jun 23 '11 at 6:13

Just incrementing the void* does happen to work in gcc:

#include <stdlib.h>
#include <stdio.h>

int main() {
    int i[] = { 23, 42 };
    void* a = &i;
    void* b = a + 4;
    printf("%i\n", *((int*)b));
    return 0;
}

It's conceptually (and officially) wrong though, so you want to make it explicit: cast it to char* and then back.

void* a = get_me_a_pointer();
void* b = (void*)((char*)a + some_number);

This makes it obvious that you're increasing by a number of bytes.

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As always, please compile with -pedantic. :) It's a non-conforming extension by GCC. –  Xeo Jun 23 '11 at 6:13
    
Guess I'm spoiled :) - edited the answer for correctness –  tdammers Jun 23 '11 at 6:17

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