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I'm fairly sure the answer to this is 'no, don't be stupid', but as they say, there are no stupid questions (only stupid people asking them).

I want to calculate the offset of an array. I have a void * handle to it and the sizeof(element). I don't have an x* pointer (where x is the type of the element).

Is there any way I can cast the void * pointer to one of a given size so I can do pointer arithmetic based on that size? At the moment I'm casting to a char * (assuming a char is 1 byte*) and then multiplying the sizeof value by the offset. If I could somehow cast the pointer, then I could just use the array syntax, which would be cleaner.

As I say, I'm 99% sure this isn't possible and I'm basically asking for language-level type representation which C doesn't have. But worth an ask.

*And I'd rather not because it's not always true.

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4  
sizeof(char) is always 1, that is guaranteed. –  sth Jul 23 '10 at 14:14
    
I read somewhere that it wasn't. –  Joe Jul 23 '10 at 14:16
    
@Joe: it is guaranteed by the standard that it is. –  Michael Foukarakis Jul 23 '10 at 14:19
4  
@Joe: sizeof(char) is guaranteed to be one. What is not guaranteed is how many bits that is - it could be 16, or 7, or 9 rather than the 8 you might typically expect. –  Vicky Jul 23 '10 at 14:19
1  
@Joe what's not guaranteed is that 1 stands for 1 byte. What is guaranteed is that sizeof(char) is 1. Always. –  wilhelmtell Jul 23 '10 at 14:19

3 Answers 3

up vote 3 down vote accepted

As several people have said in comments, sizeof(char) is guaranteed to be 1. The relevant part of the C99 standard is in section 6.5.3.4, describing the sizeof operator:

When applied to an operand that has type char, unsigned char, or signed char, (or a qualified version thereof) the result [of the sizeof operator] is 1.

This means that casting the void * to char * and adding N * sizeof(element) is correct and idiomatic.

(C is statically typed, so you can't cast to a type determined at runtime).

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You can't do introspection in C, but that doesn't prevent you from casting anything to anything.

void *v = whatever;
char *c = (char*)v;
c[0] = stuff;
element *e = (element*)v;
e[42].foo = bar;

If you want arbitrary size at runtime, then I don't believe there is a standardized way of doing it. Some compilers support:

char c[x];

where x is a variable, but I wouldn't trust it on all architectures.

You can definitely write a couple simple accessors for your pointers to at least separate out the pointer-math:

void* pointerAtPos( void*p, int offset, int width )
{
  return (void*)&( ((char*)p)[ offset * width ] );
}

Be careful of address alignment.

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Thanks. That last snippet is what I'm doing currently. Looks like it's the only way. –  Joe Jul 23 '10 at 14:58
    
+1 That last actually answers his question. –  egrunin Jul 24 '10 at 7:14

In C, casting is a compile time-only operation. As such, it isn't possible to determine the actual type of array element at run time.

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