std::packaged_task
Defined in header <future> | ||
|---|---|---|
template< class R, class... Args > packaged_task( R(*)(Args...) ) -> packaged_task<R(Args...)>; | (1) | (since C++17) |
template< class F > packaged_task( F ) -> packaged_task</*see below*/>; | (2) | (since C++17) |
template< class F > packaged_task( F ) -> packaged_task</*see below*/>; | (3) | (since C++23) |
template< class F > packaged_task( F ) -> packaged_task</*see below*/>; | (4) | (since C++23) |
&F::operator() is well-formed when treated as an unevaluated operand and decltype(&F::operator()) is of the form R(G::*)(A...) (optionally cv-qualified, optionally noexcept, optionally lvalue reference qualified). The deduced type is std::packaged_task<R(A...)>.&F::operator() is well-formed when treated as an unevaluated operand and F::operator() is an explicit object parameter function whose type is of form R(G, A...) or R(G, A...) noexcept. The deduced type is std::packaged_task<R(A...)>.&F::operator() is well-formed when treated as an unevaluated operand and F::operator() is a static member function whose type is of form R(A...) or R(A...) noexcept. The deduced type is std::packaged_task<R(A...)>.These deduction guides do not allow deduction from a function with ellipsis parameter, and the ... in the types is always treated as a pack expansion.
#include <future>
int func(double) { return 0; }
int main() {
std::packaged_task f{func}; // deduces packaged_task<int(double)>
int i = 5;
std::packaged_task g = [&](double) { return i; }; // deduces packaged_task<int(double)>
}
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