40

How does one use concepts in if constexpr?

Given the example below, what would one give to if constexpr to return 1 in case T meets the requirements of integral and else 0?

template<typename T>
concept integral = std::is_integral_v<T>;

struct X{};

template<typename T>
constexpr auto a () {
    if constexpr (/* T is integral */) {
        return 1;
    } 
    else {
        return 0;
    }
}

int main () {
    return a<X>();
}
1
  • This particular function can be simplified to return integral<T>;.
    – L. F.
    Jul 14, 2019 at 11:49

2 Answers 2

31

Concepts are named boolean predicates on template parameters, evaluated at compile time.

In a constexpr if statement, the value of the condition must be a contextually converted constant expression of type bool.

So in this case, usage is simple:

if constexpr ( integral<T> )
1
  • Is this still valid in the latest draft of the Standard? Or do we need requires integral<T> instead? Aug 15, 2019 at 15:44
25

It is sufficient to do:

if constexpr ( integral<T> )

since integral<T> is already testable as bool

1
  • 1
    Is this still valid in the latest draft of the Standard? Or do we need requires integral<T> instead? Aug 15, 2019 at 15:44

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