2

std::underlying_type invokes undefined behavior when used with a non enum type. But where does the undefined behavior appears?

In this code :

template<typename E>
constexpr std::enable_if_t<std::is_enum<E>::value, std::underlying_type_t<E>> IntEnum(E e)
{
    return static_cast<std::underlying_type_t<E>>(e);
}

I tried to use std::enable_if to prevent the user from calling IntEnum with non-enum types. But as enable_if is evaluated before deciding if the function can be called, its template arguments get evaluated too, including std::underlying_type_t<E>. So is this UB if called with a non-enum type? How can i change it?

4
  • BTW, it is not UB, but a compiling error.
    – Jarod42
    Mar 2, 2016 at 11:48
  • en.cppreference.com/w/cpp/types/underlying_type seems to say otherwise, is that an error? Mar 2, 2016 at 11:57
  • @AlexandreS. I believe that that is an error. It would only be undefined behaviour if the Condition specification for std::underlying_type was written as a Requires clause, which it isn't. Having undefined behaviour for instantiating a template seems weird. Mar 2, 2016 at 12:02
  • @TartanLlama I'm fairly sure it's meant to be a Requires, but regardless it would be UB by omission (because the standard doesn't specify any behavior if T is not an enum).
    – T.C.
    Apr 12, 2016 at 20:54

2 Answers 2

2

typename std::underlying_type<E>::type is evaluated even for non-enum type (and is not SFINAE friendly).

You may use one indirection to delay the evaluation and be SFINAE friendly:

template<typename E>
constexpr
typename std::enable_if_t<std::is_enum<E>::value, std::underlying_type<E>>::type
IntEnum(E e)
{
    return static_cast<std::underlying_type_t<E>>(e);
}

Demo

0

You can prevent compilation with static_assert

template<typename E>
constexpr auto IntEnum(E e)
{
    static_assert(std::is_enum<E>::value, "E must be an enum");
    return static_cast<std::underlying_type_t<E>>(e);
}

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