TY - GEN
T1 - Event-Triggered Boundary Control of Mixed-Autonomy Traffic
AU - Zhang, Yihuai
AU - Yu, Huan
N1 - Publisher Copyright:
© 2024 IEEE.
PY - 2025/2/26
Y1 - 2025/2/26
N2 - Control problems of mixed-autonomy traffic systems that consist of both human-driven vehicles (HV) and autonomous vehicles (AV), have gained increasing attention. This paper focuses on suppressing traffic oscillations in the mixed-autonomy traffic system using boundary control design. The mixed traffic dynamics are described by 4 × 4 hyperbolic partial differential equations (PDEs), governing the propagation of four waves of traffic, including the density of HV, the density of AV, the friction between the two vehicle classes from driving interactions and the averaged velocity. We propose an event-triggered boundary control design since control signals of the traffic light on ramp or the varying speed limit cannot be continuously updated. We apply the event-triggered mechanism for a PDE backstepping controller and obtain a dynamic triggering condition. Lyapunov analysis is performed to prove the exponential stability of the closed-loop system with the event-triggered controller. Numerical simulation demonstrates the efficiency of the proposed event-trigger control design. We analyzed how the car-following spacing of AV affects the event-triggering mechanism of the control input in mixed-autonomy traffic. ©2024 IEEE
AB - Control problems of mixed-autonomy traffic systems that consist of both human-driven vehicles (HV) and autonomous vehicles (AV), have gained increasing attention. This paper focuses on suppressing traffic oscillations in the mixed-autonomy traffic system using boundary control design. The mixed traffic dynamics are described by 4 × 4 hyperbolic partial differential equations (PDEs), governing the propagation of four waves of traffic, including the density of HV, the density of AV, the friction between the two vehicle classes from driving interactions and the averaged velocity. We propose an event-triggered boundary control design since control signals of the traffic light on ramp or the varying speed limit cannot be continuously updated. We apply the event-triggered mechanism for a PDE backstepping controller and obtain a dynamic triggering condition. Lyapunov analysis is performed to prove the exponential stability of the closed-loop system with the event-triggered controller. Numerical simulation demonstrates the efficiency of the proposed event-trigger control design. We analyzed how the car-following spacing of AV affects the event-triggering mechanism of the control input in mixed-autonomy traffic. ©2024 IEEE
UR - https://www.scopus.com/pages/publications/86000662203
UR - https://www.scopus.com/record/pubmetrics.uri?eid=2-s2.0-86000662203 &origin=recordpage
U2 - 10.1109/CDC56724.2024.10886427
DO - 10.1109/CDC56724.2024.10886427
M3 - RGC 32 - Refereed conference paper (with host publication)
AN - SCOPUS:86000662203
SN - 979-8-3503-1634-6
T3 - Proceedings of the IEEE Conference on Decision and Control
SP - 6428
EP - 6433
BT - 2024 IEEE 63rd Conference on Decision and Control (CDC)
PB - IEEE
T2 - 63rd IEEE Conference on Decision and Control, CDC 2024
Y2 - 16 December 2024 through 19 December 2024
ER -