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I'm learning c99 and after reading about structures I found the following macro in the Linux Kernel code:

#define FIELD_SIZEOF(t, f) (sizeof(((t*)0)->f))

I.. what? Usage:

#include <stdio.h>
#define FIELD_SIZEOF(t, f) (sizeof(((t*)0)->f))

struct book {
    char title[100];
    char author[100];
};

int main(void)
{
    printf("%lu\n", FIELD_SIZEOF(struct book, title)); // prints 100
}

Here's the expansion (gcc -E)

printf("%lu\n", (sizeof(((struct book*)0)->title)));

What really baffles me is the 0. I replaced it with 1, 2, +1, -1, +999 and 'a' and "hello", and it always works.

There's no comment in the source. I know that -> is used to access a struct member through a pointer, but how can ((struct book*)0) be a pointer? How does the macro work?

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1  
It's similar to a common implementation of the standard offsetof macro, though that one is a bit trickier. –  Keith Thompson Oct 17 '13 at 23:19

2 Answers 2

up vote 4 down vote accepted

The key here is that sizeof is calculated by the compiler at compile time. So, the pointer you specify is never actually dereferenced. After all, where an object is located won't change its size. The sizeof operator will evaluate its operand purely in terms of types.

So, the address you use is actually irrelevant, but 0 (NULL) is a common choice.

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More precisely, the operand of sizeof is not evaluated (unless it's of a variable-length array type, which doesn't apply here). –  Keith Thompson Oct 17 '13 at 23:19
sizeof(((t*)0)->f)

works because sizeof is defined to not evaluate its argument (there are some exceptions when VLA are involved).

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