24

I am writing and reading registers from a memory map, like this:

//READ
return *((volatile uint32_t *) ( map + offset ));

//WRITE
*((volatile uint32_t *) ( map + offset )) = value;

However the compiler gives me warnings like this:

warning: pointer of type ‘void *’ used in arithmetic [-Wpointer-arith]

How can I change my code to remove the warnings? I am using C++ and Linux.

4
  • 5
    cast to char* - assuming you want byte offset. do you? Nov 5, 2014 at 11:06
  • Yes that is right map is void*, thanks. Nov 5, 2014 at 11:09
  • You need to cast map to a pointer to a type of size 1. The only type guaranteed by the standard to be of size 1 is char, hence you need to cast it to char*. Nov 5, 2014 at 11:17
  • 1
    @barakmanos: char and variants (signed char, unsigned char), so that's a whooping 3 types of size 1! Nov 5, 2014 at 11:30

3 Answers 3

28

Since void* is a pointer to an unknown type you can't do pointer arithmetic on it, as the compiler wouldn't know how big the thing pointed to is.

Your best bet is to cast map to a type that is a byte wide and then do the arithmetic. You can use uint8_t for this:

//READ
return *((volatile uint32_t *) ( ((uint8_t*)map) + offset ));

//WRITE
*((volatile uint32_t *) ( ((uint8_t*)map)+ offset )) = value;
5
  • but void * is a well known type, it's an address type, it can point to any address type... I guess the solution is to static cast it to uintptr_t *, then
    – Dmitry
    Nov 9, 2016 at 1:25
  • 3
    It would be more idiomatic to cast to char, as sizeof(char) is defined to be 1.
    – Artyer
    Jul 9, 2017 at 19:59
  • @Artyer uint8_t is much more preferred and guaranteed to have a size of 1 byte. May 22, 2019 at 13:43
  • @VictorPolevoy Only uint_least8_t is guaranteed to have a size of 1 byte, as uint8_t is not guaranteed to exist (I know this will never happen in practice, but still). Also, uint8_t means "8 bit number", and char means "byte", and offset is a byte offset.
    – Artyer
    May 22, 2019 at 17:41
  • @Artyer uh, I have never known about uint_least8_t, thank you. But I have always been thinking of char as a "character" and of uint8_t as a "byte", was I wrong all the time? :) Also, coming back to C++ from Rust that sounds really weird, that uint8_t is not guaranteed to exist :) May 23, 2019 at 6:55
8

Type void is incomplete type. Its size is unknown. So the pointer arithmetic with pointers to void has no sense. You have to cast the pointer to type void to a pointer of some other type for example to pointer to char. Also take into account that you may not assign an object declared with qualifier volatile.

3

If the use of arithmetic on void pointers is really what you want as it is made possible by GCC (see Arithmetic on void- and Function-Pointers) you can use -Wno-pointer-arith to suppress the warning.

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