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Improving airline schedule reliability using a strategic multi-objective runway slot assignment search heuristic.

机译:使用战略性多目标跑道时隙分配搜索启发式方法来提高航空公司的时间表可靠性。

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摘要

Improving the predictability of airline schedules in the National Airspace System (NAS) has been a constant endeavor, particularly as system delays grow with ever-increasing demand. Airline schedules need to be resistant to perturbations in the system including Ground Delay Programs (GDPs) and inclement weather. The strategic search heuristic proposed in this dissertation significantly improves airline schedule reliability by assigning airport departure and arrival slots to each flight in the schedule across a network of airports. This is performed using a multi-objective optimization approach that is primarily based on historical flight and taxi times but also includes certain airline, airport, and FAA priorities. The intent of this algorithm is to produce a more reliable, robust schedule that operates in today's environment as well as tomorrow's 4-Dimensional Trajectory Controlled system as described the FAA's Next Generation ATM system (NextGen).;This novel airline schedule optimization approach is implemented using a multi-objective evolutionary algorithm which is capable of incorporating limited airport capacities. The core of the fitness function is an extensive database of historic operating times for flight and ground operations collected over a two year period based on ASDI and BTS data. Empirical distributions based on this data reflect the probability that flights encounter various flight and taxi times. The fitness function also adds the ability to define priorities for certain flights based on aircraft size, flight time, and airline usage.;The algorithm is applied to airline schedules for two primary US airports: Chicago O'Hare and Atlanta Hartsfield-Jackson. The effects of this multi-objective schedule optimization are evaluated in a variety of scenarios including periods of high, medium, and low demand.;The schedules generated by the optimization algorithm were evaluated using a simple queuing simulation model implemented in AnyLogic. The scenarios were simulated in AnyLogic using two basic setups: (1) using modes of flight and taxi times that reflect highly predictable 4-Dimensional Trajectory Control operations and (2) using full distributions of flight and taxi times reflecting current day operations.;The simulation analysis showed significant improvements in reliability as measured by the mean square difference (MSD) of filed versus simulated flight arrival and departure times. Arrivals showed the most consistent improvements of up to 80% in on-time performance (OTP). Departures showed reduced overall improvements, particularly when the optimization was performed without the consideration of airport capacity. The 4-Dimensional Trajectory Control environment more than doubled the on-time performance of departures over the current day, more chaotic scenarios.;This research shows that airline schedule reliability can be significantly improved over a network of airports using historical flight and taxi time data. It also provides for a mechanism to prioritize flights based on various airline, airport, and ATC goals. The algorithm is shown to work in today's environment as well as tomorrow's NextGen 4-Dimensional Trajectory Control setup.
机译:不断努力提高国家空域系统(NAS)中航班时刻表的可预测性,尤其是随着系统延迟的增长和需求的不断增长。航空公司的航班时刻表必须能够抵抗系统的干扰,包括地面延误计划(GDP)和恶劣天气。本论文提出的战略搜索启发式方法通过为机场网络中的时间表中的每个航班分配机场起降时间段,从而大大提高了航空公司时间表的可靠性。这是使用多目标优化方法执行的,该方法主要基于历史飞行和滑行时间,但也包括某些航空公司,机场和FAA优先级。该算法的目的是生成一个更可靠,更强大的时间表,该时间表可在当今环境以及明天的4维轨迹控制系统中运行,如FAA的下一代ATM系统(NextGen)所述。使用能够纳入有限机场容量的多目标进化算法。适应性功能的核心是一个庞大的数据库,该数据库基于ASDI和BTS数据,在两年的时间内收集了飞行和地面运行的历史运行时间。基于此数据的经验分布反映了航班遇到各种航班和滑行时间的可能性。适应性功能还增加了根据飞机大小,飞行时间和航空公司使用情况为某些航班定义优先级的功能。该算法适用于美国两个主要机场的航班时刻表:芝加哥奥黑尔机场和亚特兰大哈茨菲尔德-杰克逊机场。在各种情况下(包括高,中和低需求时段)评估这种多目标计划优化的效果。使用由AnyLogic实现的简单排队仿真模型评估由优化算法生成的计划。在AnyLogic中使用两种基本设置对场景进行了模拟:(1)使用反映高度可预测的4维轨迹控制操作的飞行和滑行时间模式,以及(2)使用反映当前操作的飞行和滑行时间的完整分布。仿真分析显示,通过提交的均方差(MSD)与模拟的航班到达和离开时间相比,可靠性显着提高。到达时间显示出最稳定的按时绩效(OTP)提升高达80%。离港航班显示总体改进减少,尤其是在不考虑机场容量的情况下进行优化的情况下。 4维轨迹控制环境使当日出发时间的准时性能提高了一倍以上,出现了更多的混乱情况。该研究表明,使用历史航班和滑行时间数据,可以在机场网络上显着改善航空公司的日程安排可靠性。它还提供了一种基于各种航空公司,机场和ATC目标确定航班优先级的机制。该算法在当今的环境以及明天的NextGen 4维轨迹控制系统中都可以使用。

著录项

  • 作者

    Hafner, Florian B.;

  • 作者单位

    University of Central Florida.;

  • 授予单位 University of Central Florida.;
  • 学科 Engineering Industrial.;Transportation.;Operations Research.
  • 学位 Ph.D.
  • 年度 2008
  • 页码 245 p.
  • 总页数 245
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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