4

This code is from the K & R book - Chapter 8 Section 7: Example - Storage Allocator. This code, at least for me, doesn't make sense. "Header" is a union of a struct and a "most restrictive alignment type", which is a long type. Malloc will then find a big enough free space with size of a multiple of the header size.

static Header base;            /* empty list to get started */
static Header *freep = NULL;   /* start of free list */

/* malloc: general-purpose storage allocator */
void *malloc(unsigned nbytes)
{
  Header *p, *prevp;
  Header *morecore(unsigned);
  unsigned nunits;
  nunits = (nbytes+sizeof(Header)-1)/sizeof(Header) + 1;
  if ((prevp = freep) == NULL) {     /* no free list yet */
    base.s.ptr = freeptr = prevptr = &base;
    base.s.size = 0;
  }
  for (p = prevp->s.ptr; ; prevp = p, p = p->s.ptr) {
    if (p->s.size >= nunits) { /* big enough */
      if (p->s.size == nunits) /* exactly */
        prevp->s.ptr = p->s.ptr;
      else {     /* allocate tail end */
        p->s.size -= nunits;
        p += p->s.size;
        p->s.size = nunits;
      }
      freep = prevp;
      return (void *)(p+1);
    }
    if (p == freep) /* wrapped around free list */
      if ((p = morecore(nunits)) == NULL)
        return NULL; /* none left */

  }
}

The odd part of this code is the statement nunits = (nbytes+sizeof(Header)-1)/sizeof(Header) + 1; which is then used in the comparison if (p->s.size >= nunits) to find a big enough space with units in terms of the size of Header. Shouldn't the former be nunits = (nbytes+sizeof(Header)) / sizeof(Header) only? The original code would evaluate to a value less than it ought to be. What is with the +-1s? Why allocate space less than the desired.

8
  • 1
    Keep operator precedence in mind, and analyze that again...
    – K-ballo
    May 26 '12 at 23:39
  • 6
    @duffymo: Instead of telling me that, can't you just tell me how the code works? By the way, have you read that book? Noticed the lots of typos? But no one said anything about those.
    – 1der
    May 26 '12 at 23:39
  • Assume this is the first call to malloc and you have requested 1 byte i.e. malloc(1) and see what nunits returns with both your suggested fix and the code in the book.
    – dirkgently
    May 26 '12 at 23:41
  • @K-ballo: Of couse, how stupid of me. But there is another confusion. That code would evaluate to a larger size for big allocations. Why not just do the arithmetic without the 1s?
    – 1der
    May 26 '12 at 23:43
  • 1
    Yeah, I've read the book. You're the one reading it for the first time, not me. Spend some time thinking about the idiom.
    – duffymo
    May 26 '12 at 23:43
10

The -1 and +1 are to account for values that aren't multiplies of the block size.

For example, suppose the block size is 10. If you try to use the formula n / 10 to get the number of required blocks then you would get 1 block for n = 15. This is wrong, you need 2.

If you change the formula to be n / 10 + 1 then it will also be wrong. When n = 20 you only need 2 blocks, but that formula will return 3.

The correct formula is (n - 1) / 10 + 1. That's how you round up with integer division. The only difference with this and the formula you asked about is the extra sizeof(Header), which is just the extra space needed for the header itself.

4
  • Thanks this really helps. Actually the confusion resulted from the fact that I considered the expression after the division sign '/' as a whole unit.
    – 1der
    May 26 '12 at 23:52
  • Wouldn't it be simpler to use (n + 9) / 10? May 27 '12 at 15:30
  • @JoshuaGreen: Yep, that's what I usually use. May 27 '12 at 19:48
  • They probably ported it from assembler :-) Dec 28 '12 at 9:00
3

(nbytes+sizeof(Header)-1)/sizeof(Header) + 1 is a pretty standard idiom in code to get the number of units of something with the correct rounding up. It you try it with some values you will see that it works correctly.

The actual idiom is better expressed as (nbytes - 1)/unitSizeInBytes + 1.

To clarify, based on the last paragraph of the accepted answer the use of sizeof(Header) is different on both sides of the division. It's use in the dividend is because it needs to allocate bytes for the Header and nbytes. It's use in the divisor is because that's the size of the blocks being allocated. It happens in this case that they are the same value, sizeof(Header).

9
  • Yes, and as K-ballo says, consider operator precedence. May 26 '12 at 23:40
  • Does this imply that I should read others' codes a lot in order to get familiar with these standard idioms?
    – 1der
    May 26 '12 at 23:56
  • Yes it does, and asking questions like this is also a good idea, but study carefully before you do. Read good open source code. Then work on it. Make the world better. :) May 26 '12 at 23:57
  • @1der: You'll also happen upon these kinds of things just by writing lots of code. At some point, you'll need to solve the same problem, and you'll probably come up with the same solution, and learn to recognise it. May 27 '12 at 0:00
  • 1
    Ah, we need enough space for nbytes (in units of sizeof(Header)) along with enough space to store a Header. Thanks for clarifying. May 27 '12 at 18:12

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