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Recently I came across the following snippet, which is an attempt to ensure all bytes of i (nad no more) are accessible as individual elements of c:

union {
  int i;
  char c[sizeof(int)];
};

Now this seems a good idea, but I wonder if the standard allows for the case where the alignment requirements for char are more restrictive than that for int.

In other words, is it possible to have a four-byte int which is required to be aligned on a four-byte boundary with a one-byte char (it is one byte, by definition, see below) required to be aligned on a sixteen-byte boundary?

And would this stuff up the use of the union above?

Two things to note.

  1. I'm talking specifically about what the standard allows here, not what a sane implementor/architecture would provide.

  2. I'm using the term "byte" in the ISO C sense, where it's the width of a char, not necessarily 8 bits.

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2 Answers 2

up vote 7 down vote accepted

No type can ever have stricter alignment requirements than its size (because of how arrays work), and sizeof(char) is 1.

In case it's not obvious:

  • sizeof(T [N]) is sizeof(T)*N.
  • sizeof is in units of char; all types are represented as a fixed number of bytes (char), that number being their size. See 6.2.6 (Representation of Types) for details.
  • Given T A[2];, (char *)&A[1] - (char *)&A[0] is equal to sizeof A[0].
  • Therefore the alignment requirement for T is no greater than sizeof(T) (in fact it divides sizeof(T))
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You'll need to cite ISO to convince me on that one, R. What particular feature of arrays wouldn't work if you automatically scaled the a[i] and a+i using the alignment rather than the size? –  paxdiablo Dec 21 '10 at 5:30
    
@paxdiablo: Then this wouldn't work. (void *) a + i * sizeof(*a) –  Bill Lynch Dec 21 '10 at 5:39
1  
@sharth - That doesn't work anyway - pointer arithmetic on void * isn't allowed. –  Chris Lutz Dec 21 '10 at 5:41
2  
@paxdiablo: Read 6.2.6 Representation of Types. All types are represented in units of char. The size of an array is the number of elements times the size of the element type. Etc. etc. etc. This is all very basic. –  R.. Dec 21 '10 at 5:50
1  
@pax Arrays can't have padding and must be contiguous per the standard. Therefore what R said is exactly right –  SiegeX Dec 21 '10 at 6:41

Have a look at this thread. There, I questioned the usefulness of C Unions and there are some interesting insights. The important thing is that the Standard does not ensure the alignment of the different fields at all!

EDIT: paxdiablo, just noticed you were one of the guys answering that question, so you should probably be familiar with this limitation.

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