I have a char array that holds a memory address for example char add[8]="000AAC88"; I want to put a character into the memory address specified by the add array , in other words I want to have a character for example 'a' in the memory address of 000AAC88 This will be done in C

  • Try *(char *) 0x000AAC88 = 'a'; If you still have your add [as described], you'd need to use unsigned long val = strtol(add,NULL,16); on it to get the decoded value and do *(char *) val = 'a'; – Craig Estey Dec 7 at 3:21
  • Thanks for your answer, the address is not necessarily 0x000AAc88. it can be a different address that is in the array – link Dec 7 at 3:24
up vote 1 down vote accepted

You can use strtoull() with a base of 16 or sscanf() to convert from a hexadecimal number in ASCII to a wide-enough integer, and then convert that to a pointer. Here, I use strtoull() for simplicity.

If your library implements it in a way that works for you, you might also use the %p format specifier to convert directly between pointers and their string representation.

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

#define HEX_DIGITS_IN_PTR (sizeof(unsigned long long int)*2U)

int main(void)
{
  static const char msg[] = "hello, world!\n";
  char hex_address[HEX_DIGITS_IN_PTR] = {'\0'};

  snprintf( hex_address,
            sizeof(hex_address),
            "%llX",
            (unsigned long long int)(uintptr_t)(void*)&msg );

  const char* const converted_ptr =
    (void*)(uintptr_t)strtoull( hex_address, NULL, 16 );

  fputs( converted_ptr, stdout );

  return EXIT_SUCCESS;
}

Once you’ve converted to a char*, you can do pointer arithmetic on it.

Your assumption that 8 hex digits are enough to hold a pointer will break in 64-bit code. In this example, for brevity, I assume that an unsigned long long int is wide enough to store any pointer. However, if you want to be as portable and future-proof as possible, you can use the constants in <inttypes.h> with sscanf(). Alternatively, POSIX (and Linux) also provide width-restricted environments that guarantee that an unsigned long is wide enough to hold a pointer.

You can use sscanf to load the address to pointer.

char *p;
sscanf(add, "%08X", &p);
*p = 'a';

Check the usage of sscanf here

  • Do you mean sscanf()? Also, the assumption that 8 hex digits are enough breaks in 64-bit code. – Davislor Dec 7 at 4:02
  • This also will break if an unsigned int and a char* are different sizes. – Davislor Dec 7 at 4:05
  • @Davislor Good point, 64bit big endian environment will have such problems, should do more conversion. – Wiki Wang Dec 7 at 4:13
  • Or if the high bits are initialized to garbage, since you don’t initialize the pointer to all-bits-zero. – Davislor Dec 7 at 4:15

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