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struct a
{
        struct b
        {
                int i;
                float j;
        }x;
        struct c
        {
                int k;  
                float l;
        }y;
}z;

Can anybody explain me how to find the offset of int k..so that we can find the address of int i ????

share|improve this question
    
It's layed out as so [ sizeof(int), sizeof(float), sizeof(int), sizeof(float) ] –  koodawg Sep 11 '13 at 19:17
1  
You can find the offset of k from the start of y, or from the start of z; you can find the offset of i from the start of x or from the start of z. However, there is essentially no guaranteed way to find the offset of k given the offset of i. You can make non-portable assumptions to come up with an answer, but why would you do that when you can come up with a portable method that doesn't involve assumptions. –  Jonathan Leffler Sep 11 '13 at 19:26

3 Answers 3

use offsetof() to find the offset from the start of z or from the start of x.

offsetof() - offset of a structure member

SYNOPSIS

   #include <stddef.h>

   size_t offsetof(type, member);

offsetof() returns the offset of the field member from the start of the structure type.

EXAMPLE

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

   int
   main(void)
   {
       struct s {
           int i;
           char c;
           double d;
           char a[];
       };

       /* Output is compiler dependent */

       printf("offsets: i=%ld; c=%ld; d=%ld a=%ld\n",
               (long) offsetof(struct s, i),
               (long) offsetof(struct s, c),
               (long) offsetof(struct s, d),
               (long) offsetof(struct s, a));
       printf("sizeof(struct s)=%ld\n", (long) sizeof(struct s));

       exit(EXIT_SUCCESS);
   }

you will get following OUTPUT On a Linux, if you compile with GCC.

       offsets: i=0; c=4; d=8 a=16
       sizeof(struct s)=16
share|improve this answer
struct a foo;
printf("offset of k is %d\n", (char *)&foo.y.k - (char *)&foo);    
printf("offset of i is %d\n", (char *)&foo.x.i - (char *)&foo);

foo.x.i refers to the field i in the struct y in the struct foo. &foo.x.i gives you the address of the field foo.x.i. Similarly, &foo.y.k gives you the address of foo.y.k; &foo gives you the address of the struct foo.

Subtracting the address of foo from the address of foo.x.i gives you the offset from foo to foo.x.i.

As Gangadhar says, you can use the offsetof() macro rather than the pointer arithmetic I gave. But it's good to understand the pointer arithmetic first.

share|improve this answer
    
can you explain how does it works??? –  MSB Sep 11 '13 at 19:17
    
I'll try...hold on. –  Charlie Burns Sep 11 '13 at 19:18
    
Address of struct foo will be same as address of int i(base address)...right??? –  MSB Sep 11 '13 at 19:24
    
Not sure what you mean. –  Charlie Burns Sep 11 '13 at 19:24
    
Try it, see what you get. Probably 0 for i, and 8 for k. See Nick's comment above. –  Charlie Burns Sep 11 '13 at 19:26

As already suggested, you should use the offsetof() macro from <stddef.h>, which yields the offset as a size_t value.

For example:

#include <stddef.h>
#include <stdio.h>
#include "struct_a.h"  /* Header defining the structure in the question */

int main(void)
{
    size_t off_k_y = offsetof(struct c, k);
    size_t off_k_z = offsetof(struct a, y.k);
    size_t off_i_x = offsetof(struct b, i);
    size_t off_i_z = offsetof(struct a, x.i);

    printf("k = %zu %zu; i = %zu %zu\n", off_k_y, off_k_z, off_i_x, off_i_z);
    return 0;
}

Example output:

k = 0 8; i = 0 0
share|improve this answer
    
offsetof() is perfect +1. –  Gangadhar Sep 11 '13 at 19:47

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