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I’d like to write operator<< for std::variant. The assumption will be that the operator<< for a particular variant will only be valid if operator<< is valid for all the types that the variant can contain.

1 Answer 1

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//g++ (GCC) 7.2.0
//g++ -std=c++1z -O2 -Wall -pedantic -pthread main.cpp
#include <iostream>
#include <string>
#include <variant>
#include <complex>

template<typename T, typename... Ts>
std::ostream& operator<<(std::ostream& os, const std::variant<T, Ts...>& v)
{
    std::visit([&os](auto&& arg) {
        os << arg;
    }, v);
    return os;
}

int main()
{
    using namespace std::complex_literals;
    std::variant<int, std::string, double, std::complex<double>> v = 4;
    std::cout << v << '\n';
    v = "hello";
    std::cout << v << '\n';
    v = 3.14;
    std::cout << v << '\n';
    v = 2. + 3i;
    std::cout << v << '\n';
}

Demo

This relies on passing a generic lambda to std::visit.

See this question for a problem with the previous version of this answer. This answer has been updated to avoid that problem.

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  • 4
    Can't you just use template <typename... Ts> std::ostream& operator<<(std::ostream& os, const std::variant<Ts...>& v)?
    – Caleth
    Oct 23, 2017 at 15:35
  • @Caleth, actually no. He can't, because of stackoverflow.com/q/52845621/225186 . The sfinae version was correct.
    – alfC
    Oct 17, 2018 at 2:11
  • @alfC just adding a typename in front of the pack will suffice template<typename T, typename... Ts>
    – Caleth
    Oct 17, 2018 at 8:21
  • So, the possible fixes are: (1) Restore the SFINAE. (2) Change variant<Ts...> to variant<T, Ts...>. (3) Add typename. (4) Call it a compiler bug and change nothing. I'm tempted to go with 3, but I'm kind of feeling like it should first be added as an answer to the new question and discussed with the other solutions there. Oct 17, 2018 at 12:55
  • @RobertFisher, what is (3)? (4) It is not a compiler bug.
    – alfC
    Oct 17, 2018 at 15:17

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