问题
I have a situation where a function must return a value taken from a table. A cell in this table (let's assume the table just works...) may contain a value, or it might not. This value can also be one of several types: int, double, string, date (but no other type).
What would such a function return? Is it a good idea to return std::optional<std::variant<std::string, int, double, std::chrono::time_point>>?
Would that be a good use of optional and variant?
回答1:
I would consider this to be a useful use of std::monostate. Specifically, variant<std::monostate, int, double, std::string, std::chrono::time_point>. monostate is useful for cases where a variant may not contain a value.
The nice thing about using an actual type rather than optional<variant> is that visitation works normally on it. You can write a functor that can take a monostate parameter, thus allowing you to use visit for even "empty" variants.
回答2:
Just want to add that before C++17 and the standardization of variant and monostate, there is already boost::blank to solve the exact same issue for boost::variant.
By convention, if boost::blank is used, it should always be the first template argument, so that a default-constructed variant is empty and checking for emptyness is done with .which() == 0.
来源:https://stackoverflow.com/questions/44052934/return-type-stdoptionalstdvariant