TY - JOUR
T1 - Triggering and control codesign in robust self-triggered DMPC for trajectory tracking control of multi-USV system
AU - Yang, Qifan
AU - Li, Huiping
N1 - Publisher Copyright:
© The Author(s), under exclusive licence to South China University of Technology and Academy of Mathematics and Systems Science, Chinese Academy of Sciences 2026.
PY - 2026/5
Y1 - 2026/5
N2 - This paper considers the tracking problem of a fleet of unmanned surface vehicles (USVs) subject to low state feedback frequencies, disturbances, and communication delays. Influenced by the high computational complexity of localization algorithms, the low-frequency state feedback brings challenges in fulfilling the high-frequency control requirement for USVs. Therefore, a novel self-triggered distributed model predictive control (ST-DMPC) approach, with a codesign dual-model control strategy, is proposed. By simultaneously optimizing control inputs and triggering intervals, this approach achieves expected control performance comparable to high-frequency control under low state feedback frequencies. Furthermore, sufficient conditions for ensuring recursive feasibility and closed-loop system stability are derived. Finally, a numerical experiment and comparison study are conducted to demonstrate the efficacy of the proposed approach.
AB - This paper considers the tracking problem of a fleet of unmanned surface vehicles (USVs) subject to low state feedback frequencies, disturbances, and communication delays. Influenced by the high computational complexity of localization algorithms, the low-frequency state feedback brings challenges in fulfilling the high-frequency control requirement for USVs. Therefore, a novel self-triggered distributed model predictive control (ST-DMPC) approach, with a codesign dual-model control strategy, is proposed. By simultaneously optimizing control inputs and triggering intervals, this approach achieves expected control performance comparable to high-frequency control under low state feedback frequencies. Furthermore, sufficient conditions for ensuring recursive feasibility and closed-loop system stability are derived. Finally, a numerical experiment and comparison study are conducted to demonstrate the efficacy of the proposed approach.
KW - Distributed model predictive control
KW - Self-triggered control
KW - Trajectory tracking
KW - USVs
UR - https://www.scopus.com/pages/publications/105027864819
U2 - 10.1007/s11768-025-00310-5
DO - 10.1007/s11768-025-00310-5
M3 - 文章
AN - SCOPUS:105027864819
SN - 2095-6983
VL - 24
SP - 240
EP - 249
JO - Control Theory and Technology
JF - Control Theory and Technology
IS - 2
ER -