A Large Neighbourhood Search Approach to Airline Schedule Disruption Recovery Problem

K. Ng, K. L. Keung, C. K. M. Lee, Y. T. Chow
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引用次数: 4

Abstract

The occurrence of unplanned aircraft shortages and disruption of flight schedules during the day-to-day operations of airlines is inevitable. When equipment failure causes unsafe flight, the aircraft will be grounded or temporarily delayed when the weather shuts down the airport or the required flight crew is unavailable. Real-time decisions must be made to reduce revenue loss, passenger inconvenience and operating costs by reallocating available aircraft and cancelling or delaying flights. A large neighbourhood search algorithm is used in this research to construct a feasible and efficient solution to the airline schedule disruption recovery problem. We aim to reduce the aircraft turn-around times, including total delay time, the number of flight adjustments and the number of flights delayed for more than one hour, as an objective function. Ten real-life cases are solved, and the proposed approach yields an approximate 50% improvement in solution quality.
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航空公司时刻表中断恢复问题的大邻域搜索方法
在航空公司的日常运营中,出现计划外的飞机短缺和航班时刻表中断是不可避免的。当设备故障导致飞行不安全时,当天气关闭机场或所需的机组人员不可用时,飞机将停飞或暂时延误。必须做出实时决策,通过重新分配可用飞机、取消或延迟航班来减少收入损失、乘客不便和运营成本。本文采用大邻域搜索算法,构建了一个可行且高效的航空公司航班时刻表中断恢复问题的解决方案。我们的目标是减少飞机的周转时间,包括总延误时间、航班调整次数和延误超过一小时的航班数量作为目标函数。解决了十个实际案例,所提出的方法在解决方案质量方面产生了大约50%的改进。
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