2

As an old c++ programmer, I'm learning c++11 recently. When reading Effective Mordern C++, I found the interesting type:

char (&) [13]

When passing an array to a function template requiring T&:

template<typename T>
void funcTemplate1(T& param)
{
    std::cout << boost::typeindex::type_id_with_cvr<T>().pretty_name() << std::endl;
}
void main()
{
    char szHello[] = "Hello, World";
    funcTemplate1(szHello);
}

It output :

char (&) [13]

Never have seen that. What does is mean?

8
  • 4
    It's a reference to an array of thirteen char. – Peter Sep 30 '17 at 8:21
  • I figured out it may mean a reference to a char [13] array, but why the parentheses? – Liu Yan Sep 30 '17 at 8:28
  • Thanks @Peter, It seems that I can't use it directly as char (&)[13] = szHello; There will be compile errors; – Liu Yan Sep 30 '17 at 8:30
  • Parentheses are because of C++ syntax weirdness that requires to put variable name in the middle char ( & sz_text )[13] = szHello; and read it with spiral rule. Actually with C++11 it is possible to write it in more readable manner, like ref<array<13, char>> sz_text = szHello; or (with automatic type deduction) const auto & sz_text = szHello;. – user7860670 Sep 30 '17 at 8:31
  • For the same reason that char *x[13] is an array of 13 pointers, and char (*x)[13] is a pointer to an array of 13 char. Except it is not possible to have an array of references so char &x[13] won't compile. – Peter Sep 30 '17 at 8:32
9

If we insert the lost function parameter name, it becomes:

char (&param) [13]

You're undoubtedly familiar with this:

char param[13]

Which of course is an array of 13 characters. Adding the & means it is a reference to the same. The parentheses are needed because it is a reference to an array, not an array of references.

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