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Strategic de-confliction in the presence of a large number of 4D trajectories using a causal modeling approach

机译:使用因果建模方法在存在大量4D轨迹的情况下进行战略去冲突

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This paper presents a strategic de-confliction algorithm based on causal modeling developed under the STREAM project and launched under the umbrella of the Single European Sky ATM Research (SESAR) Program. The basic underlying concept makes use of the enriched information included in the Shared Business Trajectories (SBTs) of the flights prior to takeoff (or in the Reference Business Trajectories (RBTs) if the flight is airborne) to allocate conflict-free trajectories in a traffic planning phase that should lead to an actual conflict-free scenario in the flight execution phase in the absence of flight and/or network uncertainties. The proposed approach could decrease the workload of the air traffic controllers, thus improving the Air Traffic Management (ATM) capacity while meeting the maximum possible expectations of the Airspace Users' requirements in terms of horizontal flight efficiency. The main modules of the implemented system are also presented in this paper; these modules are designed to enable the processing of thousands of trajectories within a few seconds or minutes and encompass a global network scope with a planning horizon of approximately 2-3 h. The causal model applied for network conflict resolution and flight routing allocation is analyzed to demonstrate how the emergent dynamics (i.e., domino effects) of local trajectory amendments can be efficiently explored to identify conflict-free Pareto-efficient network scenarios. Various performance indicators can be taken into account in the multi-criteria optimization process, thus offering to the network manager a flexible tool for fostering a collaborative planning process.
机译:本文提出了一种基于因果模型的战略去冲突算法,该算法是在STREAM项目下开发的,并在“单一欧洲Sky ATM研究(SESAR)计划”的框架下启动。基本的基本概念利用了起飞前航班的共享业务轨迹(SBT)中包含的丰富信息(如果是空中飞行,则包含在参考业务轨迹(RBT)中)来分配交通中的无冲突轨迹在没有飞行和/或网络不确定性的情况下,在飞行执行阶段应导致实际无冲突场景的计划阶段。所提出的方法可以减少空中交通管制员的工作量,从而提高空中交通管理(ATM)的能力,同时在水平飞行效率方面满足空域用户需求的最大可能期望。本文还介绍了已实现系统的主要模块。这些模块旨在在几秒钟或几分钟内处理成千上万条轨迹,并涵盖规划约2-3小时的全球网络范围。分析了用于网络冲突解决和飞行路线分配的因果模型,以证明如何有效地探索局部轨迹修正的紧急动态(即多米诺骨牌效应)以识别无冲突的帕累托高效网络场景。在多准则优化过程中可以考虑各种性能指标,从而为网络管理员提供了一种促进协作计划过程的灵活工具。

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