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std::chrono::year_month_weekday_last:: operator+=, std::chrono::year_month_weekday_last:: operator-=

From cppreference.net

C++
Date and time library
std::chrono::year_month_weekday_last
constexpr std:: chrono :: year_month_weekday_last &
operator + = ( const std:: chrono :: years & dy ) const noexcept ;
(1) (自 C++20 起)
constexpr std:: chrono :: year_month_weekday_last &
operator + = ( const std:: chrono :: months & dm ) const noexcept ;
(2) (自 C++20 起)
constexpr std:: chrono :: year_month_weekday_last &
operator - = ( const std:: chrono :: years & dy ) const noexcept ;
(3) (自 C++20 起)
constexpr std:: chrono :: year_month_weekday_last &
operator - = ( const std:: chrono :: months & dm ) const noexcept ;
(4) (自 C++20 起)

修改 * this 所表示的时间点,增减时长为 dy dm

1) 等价于 * this = * this + dy ;
2) 等价于 * this = * this + dm ;
3) 等价于 * this = * this - dy ;
4) 等价于 * this = * this - dm ;

对于可同时转换为 std::chrono::years std::chrono::months 的时间段,若调用存在歧义,则优先选择 years 重载 (1,3)

示例

运行此代码 
#include <chrono>
#include <iostream>
using namespace std::chrono;
int main()
{
    auto ymwdl{August/Friday[last]/2022};
    std::cout << year_month_day{ymwdl} << '\n';
    ymwdl += months(2);
    std::cout << year_month_day{ymwdl} << '\n';
    ymwdl -= years(1); 
    std::cout << year_month_day{ymwdl} << '\n';
}

输出: 

2022-08-26
2022-10-28
2021-10-29

参见

(C++20)
year_month_weekday_last 进行年或月的加减运算
(函数)