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A Distributed Trajectory-Oriented Approach to Managing Traffic Complexity

机译:面向轨迹的分布式交通复杂度管理方法

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摘要

In order to handle the expected increase in air traffic volume, the next generation air transportation system is moving towards a distributed control architecture, in which ground-based service providers such as controllers and traffic managers and air-based users such as pilots share responsibility for aircraft trajectory generation and management. While its architecture becomes more distributed, the goal of the Air Traffic Management (ATM) system remains to achieve objectives such as maintaining safety and efficiency. It is, therefore, critical to design appropriate control elements to ensure that aircraft and groundbased actions result in achieving these objectives without unduly restricting user-preferred trajectories. This paper presents a trajectory-oriented approach containing two such elements. One is a trajectory flexibility preservation function, by which aircraft plan their trajectories to preserve flexibility to accommodate unforeseen events. And the other is a trajectory constraint minimization function by which ground-based agents, in collaboration with air-based agents, impose just-enough restrictions on trajectories to achieve ATM objectives, such as separation assurance and flow management. The underlying hypothesis is that preserving trajectory flexibility of each individual aircraft naturally achieves the aggregate objective of avoiding excessive traffic complexity, and that trajectory flexibility is increased by minimizing constraints without jeopardizing the intended ATM objectives. The paper presents conceptually how the two functions operate in a distributed control architecture that includes self separation. The paper illustrates the concept through hypothetical scenarios involving conflict resolution and flow management. It presents a functional analysis of the interaction and information flow between the functions. It also presents an analytical framework for defining metrics and developing methods to preserve trajectory flexibility and minimize its constraints. In this framework flexibility is defined in terms of robustness and adaptability to disturbances and the impact of constraints is illustrated through analysis of a trajectory solution space with limited degrees of freedom and in simple constraint situations involving meeting multiple times of arrival and resolving a conflict.
机译:为了应对预期的空中交通量增长,下一代空中交通系统正在朝着分布式控制架构发展,在这种架构中,地面服务提供商(例如管制员和交通管理人员)和空中用户(例如飞行员)共同承担着责任。飞机轨迹的生成和管理。尽管其体系结构变得更加分散,但空中交通管理(ATM)系统的目标仍然是实现诸如维持安全性和效率之类的目标。因此,至关重要的是设计适当的控制元件,以确保飞机和地面行动能够实现这些目标,而又不会过度限制用户偏爱的轨迹。本文提出了一种包含两个这样的要素的面向轨迹的方法。一种是轨迹灵活性保留功能,通过该功能飞机可以计划其轨迹以保留灵活性以适应意外事件。另一个是轨迹约束最小化功能,通过该功能,地面代理人与空中代理人共同对轨迹施加了足够的限制,以实现ATM目标,例如分离保证和流量管理。基本假设是,保留每架飞机的航迹灵活性自然会达到避免过度交通复杂性的总体目标,并且通过在不危害ATM目标的前提下最小化约束来增加航迹灵活性。本文从概念上介绍了这两种功能如何在包含自分离功能的分布式控制体系结构中运行。本文通过涉及冲突解决和流程管理的假设场景说明了这一概念。它提供了功能之间的交互和信息流的功能分析。它还提供了一个用于定义度量和开发方法的分析框架,以保持轨迹的灵活性并最小化其约束。在此框架中,根据鲁棒性和对干扰的适应性来定义灵活性,并通过分析具有有限自由度的轨迹解空间并在涉及多次到达并解决冲突的简单约束情况下,说明约束的影响。

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