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Airline Timetable Development and Fleet Assignment Incorporating Passenger Choice

机译:结合乘客选择的航空公司时间表开发和机队分配

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Flight timetabling can greatly impact an airline's operating profit, yet data-driven or model-based solutions to support it remain limited. Timetabling optimization is significantly complicated by two factors. First, it exhibits strong interdependencies with subsequent fleet assignment decisions of the airlines. Second, flights' departure and arrival times are important determinants of passenger connection opportunities, of the attractiveness of each (nonstop or connecting) itinerary, and, in turn, of passengers' booking decisions. Because of these complicating factors, most existing approaches rely on incremental timetabling. This paper introduces an original integrated optimization approach to comprehensive flight timetabling and fleet assignment under endogenous passenger choice. Passenger choice is captured by a discrete-choice generalized attraction model. The resulting optimization model is formulated as a mixed-integer linear program. This paper also proposes an original multiphase solution approach, which effectively combines several heuristics, to optimize the network-wide timetable of a major airline within a realistic computational budget. Using case study data from Alaska Airlines, computational results suggest that the combination of this paper's model formulation and solution approaches can result in significant profit improvements as compared with the most advanced incremental approaches to flight timetabling. Additional computational experiments based on several extensions also demonstrate the benefits of this modeling and computational framework to support various types of strategic airline decision making in the context of frequency planning, revenue management, and postmerger integration.
机译:航班时间表可能会严重影响航空公司的运营利润,但是支持其的数据驱动或基于模型的解决方案仍然有限。时间表优化受到两个因素的影响,非常复杂。首先,它与航空公司随后的机队分配决策具有很强的相互依赖性。其次,航班的起飞和到达时间是决定乘机机会,决定每个(直飞或中转)行程吸引力,进而决定旅客预订的重要因素。由于这些复杂因素,大多数现有方法都依赖增量时间表。本文介绍了一种针对内生乘客选择的综合航班时刻表和机队分配的原始集成优化方法。乘客选择是由离散选择广义吸引力模型捕获的。最终的优化模型被公式化为混合整数线性程序。本文还提出了一种原始的多阶段解决方案方法,该方法有效地结合了几种启发式方法,可以在现实的计算预算内优化大型航空公司的全网时间表。使用来自阿拉斯加航空公司的案例研究数据,计算结果表明,与最先进的航班时刻表增量方法相比,本文的模型制定和解决方案方法相结合可以显着提高利润。基于几个扩展的其他计算实验也证明了这种建模和计算框架的好处,可以在频率规划,收入管理和合并后整合的背景下支持各种类型的战略航空公司决策。

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