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Impact of Sensors on Collision Risk Prediction for Non-Cooperative Traffic in Terminal Airspace

机译:传感器对终端空域非合作交通碰撞风险预测的影响

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The availability of off the shelf, easy to control, unmanned aerial systems (UAS) on the market has led to an increase in report of UAS incursion into terminal airspace. Such incursions often lead to airport shutdowns due to safety concern and could cause a cascading disruption to airline operations throughout the region. A better assessment tool for the collision risk between the existing air traffic and the intruder could help reduce unnecessary disruption to air traffic operations. Work has been done on the assessment of such risk using probabilistic UAS positions prediction based on Monte-Carlo simulations, under the assumption of a non-cooperative intruder with worst-case intention aiming at the flight corridor. Alert areas around the runway and the aircraft flight path could be constructed using the collision prediction method, albeit only valid under specific conditions. The accuracy of the predictions could be further improved with the incorporation of ground-based tracking equipment. This paper looks into how the availability of UAS tracking information could be used to complement the collision prediction algorithm, and how its inclusion affects the collision risk assessment.
机译:在市场上易于控制,易于控制的空中系统(UAS)的可用性导致UAS入侵的报告增加到终端空域。由于安全问题,此类违约通常导致机场停机,并且可能导致整个地区的航空业务中断。现有空中交通和入侵者之间的碰撞风险更好的评估工具可以帮助减少对空中交通运营的不必要的破坏。通过基于Monte-Carlo仿真的概率UAS定位预测,在非合作入侵者的假设下,在非合作案件中的旨在瞄准飞行走廊的最坏情况的意图的情况下,已经开始工作。跑道周围的警报区域和飞机飞行路径可以使用碰撞预测方法构建,尽管仅在特定条件下有效。利用基于地面的跟踪设备的加入,可以进一步改善预测的准确性。本文探讨了如何使用UAS跟踪信息的可用性来补充碰撞预测算法,以及其包涵式如何影响碰撞风险评估。

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