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C language ensures that a pointer to any struct may be converted to void * and vice versa. Also, the language permits to define pointers to a struct also if it's undefined. I would assume that, since the compiler doesn't know anything about these structures, their pointers should have the same physical representation. Let's consider these lines into two separate modules:

/* FILE1.c */
void *mem = ...; //Points to a suitable memory block
struct s1 *p1; //No implementation given for struct s1
void *mem2;

p1 = (struct s1 *)mem;
mem2 = &p1;


/* FILE2.c */
extern void *mem2;
struct s2 { /*...fields...*/ };
struct s2 *p2;

p2 = *(struct s2 **)mem2;

Is this code able to work on all the platforms, provided that the memory block is large enough to contain struct s2 (e.g. allocated by malloc(sizeof(struct s2)))?

In other words, is it correct (i.e. portable) to reinterpret a memory cell containing a pointer to struct s1 structure as if it were a pointer to struct s2?

(Disclaimer: I am perfectly aware that this is a very weird way to play with pointers, my question is theoretical)

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4 Answers 4

up vote 2 down vote accepted

In C, pointers are not required to have the same size or representation.

It means sizeof (int *) can be different to sizeof (double *) for example.

The only requirements are:

  • void * , char *, signed char * and unsigned char * have the same representation.

  • Pointers to structures have the same representation.

  • Pointers to unions have the same representation.

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Can you give an example when sizeof (int*) differs from sizeof (double*)? –  mikithskegg Feb 9 '12 at 12:09
    
Historically, some (very very old) lisp machines had words of 36 bits and "tagged" addresses: 32 bit for plain address and 4 bits for a data type tag. So a pointer contained information about the type of the pointer, and a cast operation wasn't in general just a copy of bits. I don't know if today there are CPUs with similar architecture. –  Giuseppe Guerrini Feb 9 '12 at 13:34
    
@mikithskegg for int * and double * I don't know but for example Cray PVP systems have 64-bit representation for char * and 32-bit representation for double *. –  ouah Feb 9 '12 at 13:39

Yes, you are right. All pointers have the same size and structure. They differ only in "the mind" of compiler.

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This is not true, pointer types are not required to have the same representation. –  ouah Feb 9 '12 at 11:01

Yes, that is possible.

A pointer is, in its representation, just an integer holding a memory location address of any data type.

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This can be useful when abstracting some data. You can have :

struct s1
{
  char header[4];
  int  type;
  char data_max[200];
};

struct s1_type1
{
  char header[4];
  int  type;
  char data_of_some_implementation[80];
  char data_of_other_implementation[120];
};

And then use it like this

struct s1 data;
int nb = read(fd, &data, sizeof(data));
if (nb == sizeof(data))
{
  if (data.type == 1)
  {
    do_something_special((struct s1_type1*)&data);
  }
}
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