具有位置约束和偏航角时变局部约束的usv基于性能的最优编队控制

IF 9.1 1区 工程技术 Q1 ENGINEERING, CIVIL IEEE Transactions on Intelligent Transportation Systems Pub Date : 2024-12-31 DOI:10.1109/TITS.2024.3520328
Liang Cao;Yan Qin;Yingnan Pan;Hongjing Liang
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引用次数: 0

摘要

研究了具有位置约束和偏航角时变局部约束的地面无人驾驶车辆在避免碰撞和保持连通性的前提下,基于性能的最优编队控制问题。更具体地说,对每辆车与其领先者之间的位置跟踪误差施加了规定时间的性能约束。然后,制定了基于性能的最优队列控制策略,保证各车辆在保持连通性的同时实现无碰撞的队列控制,并在位置跟踪误差下实现规定的暂态和稳态性能。受规定性能控制的启发,提出了一种改进的具有规定性能的非对称屏障函数,以保证偏航角误差满足规定的性能约束。最后,理论分析表明,最优编队控制方案能够产生在规定的时间间隔内收敛到规定的任意小区域的位置跟踪误差,以及符合时变部分约束的偏航角,在有限通信距离和避碰约束下达到最优代价。仿真结果和综合比较表明了该方法的有效性和优越性。
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Prescribed Performance-Based Optimal Formation Control for USVs With Position Constraints and Yaw Angle Time-Varying Partial Constraints
This paper considers the prescribed performance-based optimal formation control problem for unmanned surface vehicles with position constraints and yaw angle time-varying partial constraints while avoiding collisions and maintaining connectivity. To be more specific, prescribed-time performance constraints are imposed on the position tracking errors between each vehicle and its leader. Then, the prescribed performance-based optimal formation control strategy is developed to guarantee that each vehicle achieves collision-free formation control while maintaining connectivity, as well as the prescribed transient and steady performance on the position tracking errors. Inspired by the prescribed performance control, an improved asymmetric barrier function with prescribed performance is provided to ensure that the yaw angle errors satisfy the prescribed performance constraints. Eventually, theoretical analysis demonstrates that the optimal formation control scheme can produce position tracking errors that converge to a prescribed arbitrarily small region within a prescribed time interval, along with the yaw angle that adheres to the time-varying partial constraints, subject to optimal cost with limited communication ranges and collision avoidance constraints. Simulation results and comprehensive comparisons show extraordinary effectiveness and superiority.
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来源期刊
IEEE Transactions on Intelligent Transportation Systems
IEEE Transactions on Intelligent Transportation Systems 工程技术-工程:电子与电气
CiteScore
14.80
自引率
12.90%
发文量
1872
审稿时长
7.5 months
期刊介绍: The theoretical, experimental and operational aspects of electrical and electronics engineering and information technologies as applied to Intelligent Transportation Systems (ITS). Intelligent Transportation Systems are defined as those systems utilizing synergistic technologies and systems engineering concepts to develop and improve transportation systems of all kinds. The scope of this interdisciplinary activity includes the promotion, consolidation and coordination of ITS technical activities among IEEE entities, and providing a focus for cooperative activities, both internally and externally.
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