避障
运动学
计算机科学
弹道
控制理论(社会学)
超调(微波通信)
控制器(灌溉)
障碍物
PID控制器
路径(计算)
跟踪误差
MATLAB语言
模拟
人工智能
移动机器人
控制工程
机器人
工程类
控制(管理)
物理
操作系统
温度控制
法学
程序设计语言
天文
生物
电信
经典力学
政治学
农学
作者
Hebing Liu,Jinhong Sun,K.W.E. Cheng
出处
期刊:IEEE Access
[Institute of Electrical and Electronics Engineers]
日期:2023-01-01
卷期号:11: 89228-89239
被引量:19
标识
DOI:10.1109/access.2023.3306239
摘要
A two-layer model predictive control (MPC) algorithm with curvature adaptive is introduced and adopted in path tracking, especially for high-speed autonomous driving. Whether the vehicle can stably reach a safe driving speed in advance is the main consideration of rollover and speed-overshoot avoidance, especially when the trajectory with large curvatures. Thus, the outer layer of the proposed controller, which is built based on the vehicle kinematic model, generates an optimal vehicle velocity. And, the inner layer controller that is established according to the vehicle dynamics provides an optimal front wheel angle obtained combined with the optimal tracking trajectory generated by the path planner. The cross-track error, which is considered an important judging criterion of tracking and obstacle avoidance, is chosen here to validate the control performance. With the MATLAB/Simulink-Carmaker platform for modeling, the two-layer MPC has good performance in a continuous curve, simple obstacle avoidance, and complex obstacle avoidance scenarios. Notably, when the average driving speed reaches $108km {/}h$ , the cross-track error can be controlled within $0.21m$ when employing the proposed MPC method. In contrast, the conventional MPC method yields a cross-track error exceeding $3.4m$ , while an LQR-based strategy results in a maximum error of $0.64m$ . The proposed two-layer MPC algorithm with curvature adaptivity significantly enhances path-tracking performance, particularly for high-speed autonomous driving. By effectively controlling the cross-track error and considering various driving scenarios, it successfully ensures safe and stable driving speeds, thereby mitigating the risks associated with rollover and speed overshoot.
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