提出横向队列稳定性框架,解决自动驾驶车队路径偏移传播问题
Lateral String Stability for Vehicle Platoons: Formulation, Definition, and Analysis

- 用弧长视角分析路径跟踪误差传播机制
- 证明仅靠车载感知无法抑制误差,需车车通信才能稳定
- 适合研究自动驾驶车队安全与通信控制的学者
联网自动驾驶车辆队列在能效、通行能力及安全性方面具有显著优势。这些安全效益依赖于队列稳定性,即扰动沿车辆链的传播特性。尽管纵向队列稳定性已得到充分研究,但控制路径跟踪误差传播的横向队列稳定性仍缺乏深入探索。随着自动驾驶车辆越来越多地依赖车载传感器和无地图导航,传感器遮挡与紧密队形放大了安全风险,该问题愈发重要。本文提出一个面向安全关键的路径相对跟踪误差的横向队列稳定性框架,支持对同一路径上不同车辆的统一评估。核心是采用弧长(欧拉)视角,突破传统分析范式,明确描述路径上某点的跟踪误差如何从一辆车传递到下一辆。在此基础上,提出L2横向队列稳定性定义,并设计两种控制策略:仅依赖车载感知的反馈-前馈策略,以及利用车车通信的新型‘向先行者学习’策略。针对跟踪误差矢量和横向(横跨路径)误差两种度量,分析了两种策略的横向队列稳定性。结果表明,仅依靠车载感知无法保证路径跟踪误差的衰减,存在根本性安全限制;而车车通信可实现真正的误差衰减。分析进一步揭示控制器结构要求,证明对特定测量值的非零反馈是保障稳定性的必要条件。
原文摘要 · Abstract (English)
Platooning of connected and automated vehicles provides significant benefits in terms of energy efficiency, traffic throughput, and, most critically, safety. These safety benefits depend on string stability, which dictates how disturbances propagate along a vehicle string. Although longitudinal string stability has been extensively examined, lateral string stability, which governs the propagation of path-tracking errors that can lead to unsafe deviations from the desired path, remains underexplored. Its importance is growing as autonomous vehicles increasingly depend on onboard sensing and map-free navigation, where sensor occlusions and tight formations amplify safety risks. This paper presents a framework for lateral string stability that focuses directly on safety-critical, path-relative tracking errors and enables consistent comparison across vehicles that follow the same planned path. The key element of the framework is an arc-length (Eulerian) viewpoint, a departure from traditional analyses, that clarifies how tracking errors at a given point on the path propagate from one vehicle to the next. Building on this foundation, we propose the definition of L2 lateral string stability along with two control strategies: a feedback-feedforward strategy that relies solely on onboard sensing, and a novel learn-from-predecessor strategy that makes use of vehicle-to-vehicle communication. Both strategies are analyzed for lateral string stability with respect to two error measures: tracking error vector and lateral (cross-track) error. Our results show that onboard sensing alone cannot guarantee attenuation of path-tracking errors, imposing a fundamental safety limitation, while V2V communication enables true error attenuation. The analysis further identifies structural controller requirements, showing that nonzero feedback on specific measurements is essential for guaranteeing stability.
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