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I do not know whether my question is appropriate or not. If there is a code....

int a[2];

If I want to check &a[0]%8==1 and do the operation a[0]= (a[0] & ~7), is this valid way of doing?

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1  
And what are you trying to do? –  Kiril Kirov May 14 '12 at 7:17
    
to see weather address is mod by 8.....if not make it to start with mod 8 –  user654761 May 14 '12 at 7:19
    
You are checking the address, but adjusting the contents. –  n.m. May 14 '12 at 7:20
    
You can't just make an address start aligned by 8 by assigning to it... –  Imp May 14 '12 at 7:23

1 Answer 1

It is not you who gets to decide the address of an array, it's the compiler+linker to decide at compile+load-time. (And you cannot assign to arrays, only to elements of arrays.)

If you need suitably aligned memory, use the malloc() function from <stdlib.h>. The C language standard guarantees that the pointer returned by malloc is suitably aligned for any type. If the minimum requirements for any type is 8, this will be an 8-byte aligned pointer. So what you should do is:

  #include <stdlib.h>

  int main (void)
  {
      int *a;

      a = malloc (2 * sizeof(*a));
      if (a == NULL) { /* Handle out of memory. */ }
      /* ... */
  }

This is actually a bit of overkill, since an array-of-int declared with int a[2]; will very likely have an alignment supporting fastest operation. Why is it you think forcing 8-byte alignment would be advantageous?

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