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given the following code:

const myStr codesArr[] =  {"AA","BB", "CC"};     

myStr is a class the wraps char*. I need to loop over all the items in the array but i don't know the number of items. I don't want to define a const value that will represent the size (in this case 3)

Is it safe to use something like:

const int size = sizeof(codesArr) / sizeof(myStr);

what to do?

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2  
Is this question c or c++? For c++ I would really recommend using std::array (or std::tr1::array if your compiler isn't c++11) instead of builtin arrays. And likely using std::string instead of whatever myStr does –  Grizzly Nov 14 '12 at 9:03
    
Optionally you could also do sizeof(codesArr) / sizeof(codesArr[0]);, with the restriction mentioned by Luchian Grigore. –  Joachim Pileborg Nov 14 '12 at 9:03

3 Answers 3

up vote 8 down vote accepted

You can use int size = sizeof(codesArr) / sizeof(myStr); as long as you don't pass it as parameter to a function, because then the array will decay into a pointer and lose size information.

You can also use a template trick:

template<typename T, int sz>
int size(T(&)[sz])
{
    return sz;
}
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sizeof returns a size_t, but we all use it with int. Does it work because of the implicit cast? –  Maroun Maroun Nov 14 '12 at 9:05
1  
@Maroun85 Yes, there's an implicit conversion (not a cast per se). This conversion will not cause any problem as long as the size can be represented as an int. –  nos Nov 14 '12 at 9:08
    
Your size() function should be constexpr in C++11, or use macro technique in C++03, so that it can be used as constant expression. –  Nawaz Nov 14 '12 at 9:15
    
@Nawaz not possible; constexpr functions can only have literal-type parameters, even if they aren't used. –  ecatmur Nov 14 '12 at 9:16
    
@ecatmur: Oh I didn't know that. Anyway, in that case, macro technique is the way. –  Nawaz Nov 14 '12 at 9:19

The safe and clear way to do this is to use std::extent (since C++11):

const size_t size = std::extent<decltype(codesArr)>::value;
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1  
+1, did not know that one! (I would save it as size_t though) –  Matthieu M. Nov 14 '12 at 9:50

The best way(pre c++11) to get size of an array is given at this link. It is a convoluted template trick, but has many advantages over other approaches as is discussed in the above link. The method is to use the following macro+function:

template <typename T, size_t N>
char ( &_ArraySizeHelper( T (&array)[N] ))[N];

#define countof( array ) (sizeof( _ArraySizeHelper( array ) ))

Its advantages, among others, are that it is purely a compile time operation, which is better than doing it in run time, and , before c++11's constexpr, is the only method that allows you to use the result of the operation as the size of another array ( since its a compile time constant

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What's so convoluted about it? It is a straightforward use of template argument deduction. (If you want convoluted template tricks, look at some of the Boost sources.) –  James Kanze Nov 14 '12 at 9:35
3  
(Of course, there is the fact that your exact code has undefined behavior, since it contains a symbol which starts with an underscore followed by a capital letter.) –  James Kanze Nov 14 '12 at 9:36

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