Air traffic inefficiencies and predictability evaluation using route mapping—the Tokyo International Airport case

Adriana Andreeva-Mori
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Abstract

Air traffic inefficiencies lead to excess fuel burn, emissions and air traffic controller (ATCo) workload. Various stakeholders have developed metrics to assess the operation performance. Most metrics compare the actual trajectories to some benchmark ones to calculate excess time or distance. This research is inspired by cellular automata (CA) and develops a combined time-distance lateral inefficiency and predictability metric using discrete space and time mapping on published flight routes. The analysis is focused on Tokyo International Airport, but uses only track data and published routes, which makes it easily applicable to any other hub airport worldwide. The mapping and velocity analyses are used to investigate when and where ATCos are most likely to intervene to provide save separation. A metric which can be adjusted to evaluate both traffic flow predictability and efficiency is proposed. This metric can be applied to better understand current traffic and enable future improvements towards seamless air traffic flow management.
利用航线图评估空中交通低效率和可预测性--东京国际机场案例
空中交通效率低下导致燃料消耗、排放和空中交通管制员(ATC)工作量超标。各利益相关方制定了评估运行性能的指标。大多数指标将实际轨迹与某些基准轨迹进行比较,以计算超时或超距。本研究受到蜂窝自动机(CA)的启发,利用离散空间和时间映射,在已公布的飞行路线上开发了一种时间-距离横向低效和可预测性组合指标。分析以东京国际机场为重点,但只使用轨道数据和已发布的航线,因此很容易适用于全球任何其他枢纽机场。映射和速度分析用于研究空管员何时何地最有可能进行干预,以节省间隔时间。提出了一个可调整的指标,用于评估交通流的可预测性和效率。该指标可用于更好地了解当前的交通情况,并在未来改进无缝空中交通流量管理。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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