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On-line decision support for take-off runway scheduling with uncertain taxi times at London Heathrow airport

机译:伦敦希思罗机场的滑行时间不确定的起飞跑道调度的在线决策支持

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This paper addresses the challenge of building an automated decision support methodology to tackle the complex problem faced every day by runway controllers at London Heathrow Airport. Aircraft taxi from stands to holding areas at the end of the take-off runway where they wait in queues for permission to take off. A runway controller attempts to find the best order for aircraft to take off. Sequence-dependent separation rules that depend upon aircraft size, departure route and speed group ensure that this is not a simple problem to solve. Take-off time slots on some aircraft and the need to avoid excessive delay for any aircraft make this an even more complicated problem. Making this decision at the holding area helps to avoid the problems of unpredictable push-back and taxi times, but introduces a number of complex spatial constraints that would not otherwise exist. The holding area allows some flexibility for interchange of aircraft between queues, but this is limited by its physical layout. These physical constraints are not usually included in academic models of the departure problem. However, any decision support system to support the take-off runway controller must include them. We show,rnin this paper, that a decision support system could help the controllers to significantly improve the departure sequence at busy times of the day, by considering the taxiing aircraft in addition to those already at the holding area. However, undertaking this re-introduces the issue of taxi time uncertainty, the effect of which we explicitly measure in these experiments. Empirical results are presented for experiments using real data from different times of the day, showing how the performance of the system varies depending upon the volume of traffic and the accuracy of the provided taxi time estimations. We conclude that the development of a good taxi time prediction system is key to maximising the benefits, although benefits can be observed even without this.
机译:本文解决了构建自动决策支持方法的挑战,以解决伦敦希思罗机场跑道管制员每天面临的复杂问题。飞机滑行从停机坪到达起飞跑道尽头的等候区,在那里他们排队等候起飞许可。跑道管制员试图找到飞机起飞的最佳顺序。取决于飞机大小,出发路线和速度组的依赖序列的分离规则确保了这不是一个简单的解决问题。一些飞机上的起飞时隙,以及避免对任何飞机过度延误的需求,使这一问题变得更加复杂。在等候区做出此决定有助于避免出现不可预测的后推和滑行时间的问题,但是会引入许多其他情况下不存在的复杂空间约束。保持区域为在队列之间交换飞机提供了一定的灵活性,但这受到其物理布局的限制。这些物理约束通常不包含在出发问题的学术模型中。但是,任何支持起飞跑道控制器的决策支持系统都必须包括它们。在本文中,我们表明,决策支持系统可以通过考虑除已在等候区的滑行飞机以外,帮助管制员显着改善一天中繁忙时间的出发顺序。但是,进行此操作会重新引入滑行时间不确定性的问题,我们在这些实验中明确衡量了其影响。给出了使用一天中不同时间的真实数据进行实验的经验结果,显示了系统的性能如何根据交通量和所提供的滑行时间估计的准确性而变化。我们得出的结论是,开发一个好的滑行时间预测系统是最大程度地提高收益的关键,尽管即使没有这一点也可以观察到收益。

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