TY - GEN
T1 - Specified-Time Distributed Nash Equilibrium Seeking for Multicoalition Cyber-Physical Systems
AU - Tao, Qianle
AU - Xian, Chengxin
AU - Zhao, Yu
N1 - Publisher Copyright:
© 2026 IEEE.
PY - 2026
Y1 - 2026
N2 - This paper studies distributed Nash equilibrium seeking (DNES) for multicoalition cyber-physical systems over weight-unbalanced directed communication networks. Within each coalition, all nodes cooperate to optimize the coalition's objective under a consensus constraint, while different coalitions compete with one another. First, by integrating multistep planning with optimal control techniques, a specifiedtime DNES framework is developed for such multicoalition cyber-physical systems, guaranteeing convergence to the Nash equilibrium (NE) within a specified settling time. Furthermore, to eliminate biases in both the average gradient estimation and the system state that arise from the unbalanced directed communication topology inside each coalition, a specified-time balance compensator is designed for each coalition based on in-neighbor sampling information. Then, by utilizing properties of iteration matrices and constructing discrete Lyapunov functions, the specified-time convergence of the compensator and the overall system is rigorously established. Finally, a simulation result involving the power generation game is presented to demonstrate the effectiveness of the proposed algorithm.
AB - This paper studies distributed Nash equilibrium seeking (DNES) for multicoalition cyber-physical systems over weight-unbalanced directed communication networks. Within each coalition, all nodes cooperate to optimize the coalition's objective under a consensus constraint, while different coalitions compete with one another. First, by integrating multistep planning with optimal control techniques, a specifiedtime DNES framework is developed for such multicoalition cyber-physical systems, guaranteeing convergence to the Nash equilibrium (NE) within a specified settling time. Furthermore, to eliminate biases in both the average gradient estimation and the system state that arise from the unbalanced directed communication topology inside each coalition, a specified-time balance compensator is designed for each coalition based on in-neighbor sampling information. Then, by utilizing properties of iteration matrices and constructing discrete Lyapunov functions, the specified-time convergence of the compensator and the overall system is rigorously established. Finally, a simulation result involving the power generation game is presented to demonstrate the effectiveness of the proposed algorithm.
KW - Directed networks
KW - Multicoalition cyber-physical systems
KW - Nash equilibrium seeking
KW - Specified-time control
UR - https://www.scopus.com/pages/publications/105047320726
U2 - 10.1109/ICCA69928.2026.11618271
DO - 10.1109/ICCA69928.2026.11618271
M3 - 会议稿件
AN - SCOPUS:105047320726
T3 - IEEE International Conference on Control and Automation, ICCA
SP - 1358
EP - 1363
BT - 2026 IEEE 20th International Conference on Control and Automation, ICCA 2026
PB - IEEE Computer Society
T2 - 20th IEEE International Conference on Control and Automation, ICCA 2026
Y2 - 16 June 2026 through 19 June 2026
ER -