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It's been a while since I looked at C code, but I'm trying to make sure I understand what's going on here. Someone has declared this (has more members in their code):

int trysizes[] = { 64, 64, 128, 64, };

Then later they use this as part of a for loop:

sizeof(trysizes)/sizeof*(trysizes)

I'm thinking the first part is the number of bytes in the array and the second part must be the size of each array member giving us the number of items in the array. Is this a standard way to calculate array length and what is the second sizeof actually doing?

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Whenever I need this "trick" I usually do a #define for it, since it often comes handy. –  Matteo Italia Jul 27 '12 at 21:35

3 Answers 3

up vote 14 down vote accepted

Yes, after fixing the confusing syntax so this becomes

sizeof(trysizes)/sizeof(*trysizes)

or even better

sizeof(trysizes)/sizeof(trysizes[0])

this is the preferred way of computing the number of elements of an array. The second sizeof indeed computes the size of element 0 of the array.

Note that this only works when trysizes is actually an array, not a pointer to one.

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@corsiKa: yes. Corrected that, thanks. –  larsmans Jul 27 '12 at 21:23
2  
Yes, I find the 'sizeof (arr[0])' is much easier to brain-parse. –  Skizz Jul 27 '12 at 21:23
    
Ok yeah, sizeof(arr[0]) is easier for me too, particularly not having written this stuff in a while! Thanks. –  Ben Flynn Jul 27 '12 at 21:24
    
sizeof *array is more elegant, I'd say. And the superfluous braces make it look worse. Should be sizeof array / sizeof *array. –  AndreyT Jul 27 '12 at 21:24
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@AndreyT: that's a matter of opinion. To me, [0] is much more suggestive of an array than *. –  larsmans Jul 27 '12 at 21:25

You got it. The second sizeof in the denominator de-references the first element of the array, yielding the size of element 0. sizeof knows the total buffer size of an array variable - the numerator - and so this idiom will yield the number of elements in the array.

In my experience this is an uncommon expression of this particular idiom, usually I've seen, and I use:

sizeof(var)/sizeof(var[0]);

This more clearly identifies the variable as an array and not a pointer.

This is a pretty common trick, but be aware that it only works if the variable is declared as an array, e.g. this won't work on an array that's been converted to a pointer as a function parameter.

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"this is an uncommon expression of this particular idiom" -- nonsense. As a C programmer for 3 1/2 decades, I've seen the * version far more often ... usually hidden away in a macro in a header file, as experienced and competent programmers do rather than repeating this expression with greater risk of a typo and misallocation. –  Jim Balter Jul 28 '12 at 0:51
    
@JimBalter I defer, my decades are fewer. But in them I've almost always seen array subscripts used. –  pb2q Jul 28 '12 at 1:03

The keypiont is that,when using sizeof, although we mostly use int a; sizeof(a); , we can also omit the parentheses, like this: int a; sizeof a;
So in this case, sizeof*(trysizes) == sizeof *trysizes == sizeof(*trysizes)

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