arXiv:2601.10724cs.RO2026-01

针对车辆队列摩擦力随状态变化的问题,提出自适应滑模控制方法。

Adaptive Sliding Mode Control for Vehicle Platoons with State-Dependent Friction Uncertainty

  • 分两阶段设计:先定轨迹速度,再生成运动指令
  • 无需预知摩擦参数,可应对状态相关不确定性
  • 适合需高鲁棒性的车辆编队控制场景

多机器人编队控制在车队、载荷运输和监控等领域有广泛应用。维持车辆编队的稳定需要设计能应对外部干扰和系统参数不确定性的控制策略,同时保持机器人间的预设安全距离。关键挑战在于未知或不确定的轮地摩擦力,其大小随路面状况、轮胎磨损和车速变化而改变。尽管现有自适应控制器可处理先验有界不确定性,但难以准确建模和识别状态依赖的摩擦力,这类摩擦力通常无法事先界定范围。本文提出一种新型自适应滑模控制器,用于基于轮式移动机器人的车辆编队,可在未知摩擦力参数与结构的情况下,有效处理复杂摩擦行为。该控制器通过滑模控制技术调节编队速度并维持预设间距,即使存在外部干扰和系统不确定性。方法采用两阶段流程:首先由运动学控制器计算期望速度,其次动力学模型生成实现期望运动的控制指令。通过分离机器人运动学与动力学,简化了控制问题,提升了控制效率与鲁棒性。

原文摘要 · Abstract (English)

Multi-robot formation control has various applications in domains such as vehicle troops, platoons, payload transportation, and surveillance. Maintaining formation in a vehicle platoon requires designing a suitable control scheme that can tackle external disturbances and uncertain system parameters while maintaining a predefined safe distance between the robots. A crucial challenge in this context is dealing with the unknown/uncertain friction forces between wheels and the ground, which vary with changes in road surface, wear in tires, and speed of the vehicle. Although state-of-the-art adaptive controllers can handle a priori bounded uncertainties, they struggle with accurately modeling and identifying frictional forces, which are often state-dependent and cannot be a priori bounded. This thesis proposes a new adaptive sliding mode controller for wheeled mobile robot-based vehicle platoons that can handle the unknown and complex behavior of frictional forces without prior knowledge of their parameters and structures. The controller uses the adaptive sliding mode control techniques to regulate the platoon's speed and maintain a predefined inter-robot distance, even in the presence of external disturbances and uncertain system parameters. This approach involves a two-stage process: first, the kinematic controller calculates the desired velocities based on the desired trajectory; and second, the dynamics model generates the commands to achieve the desired motion. By separating the kinematics and dynamics of the robot, this approach can simplify the control problem and allow for more efficient and robust control of the wheeled mobile robot.

滑模控制车辆编队自适应控制

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