6

I want to add const to a reference type by typedef const A B;.

Somehow it doesn't work. Is this not possible in c++?

Test:

#include <type_traits>
typedef int& A;
typedef const A B;  // <-- Add const
// typedef std::add_const<A>::type B;  // also doesn't work.
static_assert(std::is_const<typename std::remove_reference<
        B>::type>::value, "is const");
int main() {
    return 0;
}

Compilation Error:

add2.cpp:5:1: error: static assertion failed: is const
 static_assert(std::is_const<typename std::remove_reference<
 ^~~~~~~~~~~~~
13

Somehow it doesn't work. Is this not possible in c++?

Not with the way you are doing it. typedef does not work like pre-processor macros.

typedef int& A;
typedef const A B;

does not translate to

typedef int& A;
typedef const int& B;

The const in

typedef const A B;

applies to A, not the int part of A. Since references are immutable in C++, const A is the same as A from a type point view.


You can use:

typedef int const& B;

If you want to derive it from A, you an use:

using B = typename std::remove_reference<A>::type const&;

If you are able to use C++14 or a later version, you can simplify that to:

using B = std::remove_reference_t<A> const&;
  • 3
    West const loses again. – Yakk - Adam Nevraumont May 1 '18 at 22:48
  • @Yakk, this is the first time I am hearing of that expression. Thanks for that. – R Sahu May 2 '18 at 3:48

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