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I encountered the following macro definition when reading the globals.h in the Google v8 project.

// The expression ARRAY_SIZE(a) is a compile-time constant of type
// size_t which represents the number of elements of the given
// array. You should only use ARRAY_SIZE on statically allocated
// arrays.

#define ARRAY_SIZE(a)                               \
  ((sizeof(a) / sizeof(*(a))) /                     \
  static_cast<size_t>(!(sizeof(a) % sizeof(*(a)))))

My question is the latter part: static_cast<size_t>(!(sizeof(a) % sizeof(*(a))))). One thing in my mind is the following: Since the latter part will always evaluates to 1, which is of type size_t, so the whole expression will be promoted to size_t. If this assumption is correct, then there comes another question: since the return type of sizeof operator is size_t, why such promotion is necessary? What's the benefit of defining a macro in this way?

Thank you very much for reading.

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Thank you all for your answers! –  Lei Mou Nov 5 '11 at 7:56
    
BTW the comment is bogus. It should say something to not to use it on heap allocated objects, namely to never pass a bare pointer to it. "Real" arrays that are allocated on the stack would perfectly work with it. –  Jens Gustedt Nov 5 '11 at 8:35
    
I don't think I need to mention that such a macro is outdated? template<class T, size_t N> size_t array_size(T (&)[N]){ return N; } –  Xeo Nov 5 '11 at 9:02
    
@Xeo, though the template function is the good choice. There will always be a dependency on compiler optimization. After all, array_size() is a method which will be executed at runtime. May be in C++11, that method can be made constexpr; I haven't tested that. –  iammilind Nov 5 '11 at 9:32
    
@iammilind: I would expect it can be made constexpr, however you can use another solution if you need to ensure compile-time evaluation: a templated struct holding the result in an enum. –  Matthieu M. Nov 5 '11 at 14:59
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5 Answers

up vote 9 down vote accepted

latter part will always evaluates to 1, which is of type size_t,

Ideally the later part will evaluate to bool (i.e. true/false) and using static_cast<>, it's converted to size_t.

why such promotion is necessary? What's the benefit of defining a macro in this way?

I don't know if this is ideal way to define a macro. However, one inspiration I find is in the comments: //You should only use ARRAY_SIZE on statically allocated arrays.

Suppose, if someone passes a pointer then it would fail for the struct (if it's greater than pointer size) data types.

struct S { int i,j,k,l };
S *p = new S[10];
ARRAY_SIZE(p); // compile time failure !

[Note: This technique may not show any error for int*, char* as said.]

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1  
It would fail at compile time. –  avakar Nov 5 '11 at 7:53
    
@avakar, corrected ! –  iammilind Nov 5 '11 at 7:54
2  
A slightly different explanation can be found here: stackoverflow.com/questions/1598773/… –  rve Nov 5 '11 at 8:00
    
@rve, nice link –  iammilind Nov 5 '11 at 8:06
1  
+1 for the notice at the bottom because I was thinking "wouldn't int* p = new int[...]; ARRAY_SIZE(p); pass the test?" –  Marlon Nov 5 '11 at 8:58
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As explained, this is a feeble (*) attempt to secure the macro against use with pointers (rather than true arrays) where it would not correctly assess the size of the array. This of course stems from the fact that macros are pure text-based manipulations and have no notion of AST.

Since the question is also tagged C++, I would like to point out that C++ offer a type-safe alternative: templates.

#ifdef __cplusplus
   template <size_t N> struct ArraySizeHelper { char _[N]; };

   template <typename T, size_t N>
   ArraySizeHelper<N> makeArraySizeHelper(T(&)[N]);

#  define ARRAY_SIZE(a)  sizeof(makeArraySizeHelper(a))
#else
#  // C definition as shown in Google's code
#endif

Alternatively, will soon be able to use constexpr:

template <typename T, size_t N>
constexpr size_t size(T (&)[N]) { return N; }

However my favorite compiler (Clang) still does not implement them :x

In both cases, because the function does not accept pointer parameters, you get a compile-time error if the type is not right.

(*) feeble in that it does not work for small objects where the size of the objects is a dividor of the size of a pointer.


EDIT: Just a demonstration that it is a compile-time value

template <size_t N> void print() { std::cout << N << "\n"; }

int main() {
  int a[5];
  print<ARRAY_SIZE(a)>();
}

See it in action on IDEONE.

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I wish I can give more than +1 to this answer. Was looking for such alternative for a while in C++03. Will steal it from you. :) –  iammilind Nov 6 '11 at 12:52
1  
@iammilind: I am glad it's of use :) –  Matthieu M. Nov 6 '11 at 13:06
    
@MatthieuM. Thank you! This alternative is more interesting than the one asked in quesion. :-) –  Lei Mou Nov 7 '11 at 5:26
    
@LeiMou: Keep in mind that the one in the question is still the best I have seen when it comes to C. Google is known to have extensive code bases in both C and C++ (and probably Java, Python and Go as well). –  Matthieu M. Nov 7 '11 at 7:20
    
On GCC 4.5.1 the contexpr template version does not compile. I get a "not of literal type" error. This is a shame as it would be much better than using a macro imo. Is this a bug in GCC or a valid restriction? –  Ricky65 Nov 27 '11 at 1:37
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If sizeof(a) / sizeof(*a) has some remainder (i.e. a is not an integral number of *a) then the expression would evaluate to 0 and the compiler would give you a division by zero error at compile time.

I can only assume the author of the macro was burned in the past by something that didn't pass that test.

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This occurs in context where a is already a pointer, instead of an array (typically, when used on heap-allocated arrays). –  Matthieu M. Nov 5 '11 at 15:01
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The second part wants to ensure that the sizeof( a ) is divisible of by sizeof( *a ).

Thus the (sizeof(a) % sizeof(*(a))) part. If it's divisible, the expression will be evaluated to 0. Here comes the ! part - !(0) will give true. That's why the cast is needed. Actually, this does not affect the calculation of the size, just adds compile time check.

As it's compile time, in case that (sizeof(a) % sizeof(*(a))) is not 0, you'll have a compile-time error for 0 division.

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In the Linux kernel, the macro is defined as (GCC specific):

#define ARRAY_SIZE(arr) (sizeof(arr) / sizeof((arr)[0]) + __must_be_array(arr))

where __must_be_array() is

/* &a[0] degrades to a pointer: a different type from an array */
#define __must_be_array(a) BUILD_BUG_ON_ZERO(__same_type((a), &(a)[0]))

and __same_type() is

#define __same_type(a, b) __builtin_types_compatible_p(typeof(a), typeof(b))
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the last part (__must_be_array()) is interesting to compare. –  Omair Dec 4 '13 at 4:52
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