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Estimation of maximum-likelihood discrete-choice models of the runway configuration selection process

机译:跑道配置选择过程的最大似然离散选择模型的估计

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摘要

The runway configuration is the subset of the runways at an airport that are used for arrivals and departures at any time. Many factors, including weather (wind and visibility), expected arrival and departure demand, environmental considerations such as noise abatement procedures, and coordination of flows with neighboring airports, govern the choice of runway configuration. This paper develops a statistical model to characterize this process using empirical observations. In particular, we demonstrate how a maximum-likelihood discrete-choice model of the runway configuration process can be estimated using aggregate traffic count and other archived data at an airport, that are available over 15 minute intervals. We show that the estimated discrete-choice model not only identifies the influence of various factors in decision-making, but also provides significantly better predictions of runway configuration changes than a baseline model based on the frequency of occurrence of different configurations. The approach is illustrated using data from Newark (EWR) and LaGuardia (LGA) airports.
机译:跑道配置是机场跑道的子集,可随时用于进场和离场。许多因素决定着跑道配置的选择,这些因素包括天气(风和能见度),预期的进场和离场需求,诸如降噪程序之类的环境因素以及与相邻机场的流量协调。本文开发了一个统计模型,使用经验观察来表征这一过程。特别是,我们演示了如何使用机场的总交通流量和其他存档数据(在15分钟间隔内可用)估算跑道配置过程的最大似然离散选择模型。我们表明,估计的离散选择模型不仅可以识别各种因素在决策中的影响,而且可以根据不同配置的出现频率,比基线模型提供更好的跑道配置预测。使用来自纽瓦克(EWR)和拉瓜迪亚(LGA)机场的数据说明了该方法。

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