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Flow-based Flight Routing and Scheduling under Uncertainty

机译:基于流量的飞行路由和不确定性的调度

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To tackle the future air traffic demands and to enhance the safety of the Air Transportation System (ATS), a proper flight routing and scheduling scheme is required. This paper proposes an Air Traffic Flow Management (ATFM) model while considering the inherent uncertainties present in the ATS. The proposed model aims to reduce capacity violations and conflicts with the use of a probabilistic approach of chance constraint while minimizing adverse effects due to demand and capacity uncertainties. Further, the proposed approach uses the concept of flow-based modeling in which a set of flights are considered as a flow, to enlarge the problem space with the added feature of scalability. In the end, a flow decomposition strategy is used to obtain the individual flight information from the flow results. To the best of our knowledge, this is the first attempt to propose an ATFM model with a flow-based structure while considering both demand and capacity uncertainties. The optimization problem is formulated as an Integer Linear Programming (ILP) problem. The NP-hard nature of the overall problem is minimized by transforming the problem into a Maximum Weighted Independent Set (MWIS) finding problem.
机译:为了解决未来的空中交通需求,并提高空运系统的安全性(ATS),需要适当的飞行路线和调度方案。本文提出了一种空中交通流量管理(ATFM)模型,同时考虑到ATS中存在的固有不确定性。拟议的模型旨在减少能力违规和冲突,利用使用概率限制的概率约束,同时最小化由于需求和容量不确定性而导致的不利影响。此外,所提出的方法利用基于流的建模的概念,其中一组飞行被认为是流量的,以扩大缩放性的附加功能的问题空间。最后,使用流分解策略来从流程结果获得各个航班信息。据我们所知,这是第一次尝试以基于流量的结构提出ATFM模型,同时考虑需求和容量的不确定性。优化问题被制定为整数线性编程(ILP)问题。通过将问题转换为最大加权独立集(MWIS)发现问题来最小化整体问题的NP难度。

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