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I was wondering, do most implementations of calloc treat the size as an alignment too, and round it up to the next supported granularity?

If so, then do they round up to the next power of 2, or do they round to the next multiple of 8 or 16?

If calloc keeps the parameter the same, then how does that even work? Wouldn't your data then be unaligned?

Thank you!

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up vote 5 down vote accepted

sizeof is defined to yield the size of an object within an array -- in other words, it already accounts for any padding that's needed for proper alignment. So if sizeof(foo) is 23 for some object foo, then your processor must be byte-aligned. (On the other hand, if you're passing 23 because you just think it's a good value to pass in, then good luck to you; you're on your own.)

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Haha yeah, I feel lucky. :) So that means it's the programmer's responsibility to pass in an aligned value as the second parameter, correct? There's no formal specification for the behavior of the runtime if it's an odd number but the processsor requires 4-byte alignment? –  Mehrdad Jan 4 '11 at 2:06
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If you're playing with bytes like this, without using sizeof appropriately, then I'm worried about what else you might be doing -- trying to second-guess how the compiler computes offsets into a struct, for example? But that aside: if 23 is too large, then the only problem you have is that you're wasting space. If it's too small, you're not just on your own; you're doomed to failure. –  Dan Breslau Jan 4 '11 at 2:10
    
@Dan: I'm reading section 6.5.3.4 The sizeof operator of the C standard now, but do not see mention of alignment consideration in the calculation of sizeof. Where is it mentioned that sizeof accounts for alignment? –  Daniel Trebbien Jan 4 '11 at 2:14
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@Daniel: See arrays under "representation of types". –  R.. Jan 4 '11 at 2:27
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@Lambert: I don't believe so - the standard states that "If the space cannot be allocated, a null pointer is returned". There is no requirement on the user that nmemb * size be <= SIZE_MAX, and therefore no get-of-jail card for the implementation. –  caf Jan 4 '11 at 4:32
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As far as alignment is concerned, calloc(1000, 23) is precisely equivalent to malloc(1000 * 23). If the implementation decides to "align" the size in some way, it will snap the total size of 23000 to some greater implementation-defined value. There's no special treatment applied to the second parameter of calloc (or to the first, for that matter).

Snapping 23 to 24 in calloc(1000, 23) would really mean snapping 23000 to 24000 (in terms of total size). There's no reasonable practical implementation that would require adding the entire 1000 for alignment purposes.

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It's not precisely equivalent because calloc also initialises the memory. –  dreamlax Jan 4 '11 at 3:10
    
@dreamlax: Which is why I began it with "As far as alignment is concerned..." to make it clear that I'm talking about alignment-specific behavior only. –  AndreyT Jan 4 '11 at 3:12
    
I need to work on my skim-reading! –  dreamlax Jan 4 '11 at 3:14
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