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Data Analysis of Delays in Airline Networks

机译:航空公司网络延误的数据分析

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Cost-optimized airline resource schedules often imply a lack of delay tolerance in case of unforeseen disruptions, e.g. late check-ins, technical defects or airport and airspace congestion. Therefore, the consideration of timeliness and robustness has become an important topic in robust resource scheduling and a wide range of sophisticated scheduling approaches has been developed in recent years. However, these approaches depend on assumptions made concerning delay occurrences. A better understanding of delay mechanisms may lead to a better trade-off between cost-efficiency and robustness and is therefore the purpose of this paper. We provide a data-driven detection of decision rules for daytime delay trends, depending on spatio-temporal attributes. The focus is on interpretable rules whose prediction accuracy is compared to random forests as a non-parametric, automated modeling approach. The obtained results give an insight into both the nature of primary delay occurrence and the methodical potential of delay prediction in the context of robust resource scheduling.
机译:成本优化的航空公司资源计划通常意味着在无法预料的情况下(例如航班延误)缺乏延误承受能力。延迟办理登机手续,技术缺陷或机场和领空拥挤。因此,对及时性和鲁棒性的考虑已成为鲁棒资源调度中的重要主题,并且近年来已经开发了多种复杂的调度方法。但是,这些方法取决于有关延迟发生的假设。更好地了解延迟机制可能会导致成本效益和健壮性之间的更好权衡,因此是本文的目的。我们根据时空属性为白天延迟趋势提供决策规则的数据驱动检测。重点是可解释的规则,作为非参数自动建模方法,其可将预测精度与随机森林进行比较。获得的结果可以洞悉主要延迟发生的性质以及在强大的资源调度情况下延迟预测的方法学潜力。

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