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std::array takes two template parameters:

typename T // the element type
size_t N // the size of the array

I want to define a function that takes a std::array as a parameter but only for a specific T, in this case char, but for any size array:

The below is malformed:

void f(array<char, size_t N> x) // ???
{
    cout << N;
}

int main()
{
    array<char, 42> A;

    f(A); // should print 42

    array<int, 42> B;

    f(B); // should not compile
}

What is the correct way to write this?

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2 Answers 2

up vote 6 down vote accepted

Use a template function:

template<size_t N> void f(array<char, N> x) {
}
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will this deduce the N correctly f(A)? or will it need to be specified f<42>(A)? –  Andrew Tomazos Nov 25 '12 at 0:58
    
@AndrewTomazos-Fathomling Yes, it will deduce it. –  jogojapan Nov 25 '12 at 0:58
    
Nice trick. Thanks! –  cpp initiator Nov 27 '12 at 9:49

The N needs to be a static value. You can, e.g., make a template argument:

template <std::size_t N>
void f(std::array<char, N> x) {
    ...
}

In your example, I would still pass the argument by reference, though:

template <std::size_t N>
void f(std::array<char, N> const& x) {
    ...
}
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