| [1] |
CUI L, ZHOU Q, JIN N. Fixed-time backstepping distributed cooperative control for multiple unmanned aerial vehicles[J]. Asian Journal of Control, 2023, 25(3): 1981-1990.
|
| [2] |
LI Y B, TONG J C. 3D multi-UAV coupled formation control based on backstepping control method[C]∥ 2024 IEEE 6th Advanced Information Management, Communicates, Electronic and Automation Control Conference. Piscataway: IEEE Press, 2024: 1517-1521.
|
| [3] |
ÖZÇELIK Ö K, ERGEZER H. Formation control of fixed-wing UAVs using MPC: Effect of vehicle speed[C]∥ 2024 10th International Conference on Control, Decision and Information Technologies. Piscataway: IEEE Press, 2024: 1-6.
|
| [4] |
YAN D H, ZHANG W G, CHEN H. Design of a multi-constraint formation controller based on improved MPC and consensus for quadrotors[J]. Aerospace, 2022, 9(2): 94.
|
| [5] |
SARKAR N, DEB A K. Neuroadaptive distributed sliding mode formation control of UAVs: A more simple approach[J]. International Journal of Control, Automation and Systems, 2023, 21(10): 3470-3483.
|
| [6] |
YAO F Y, REN H W. Distributed event-triggered sliding-mode control of second-order multi-UAV system with a dynamic leader[J]. Neurocomputing, 2025, 638: 130189.
|
| [7] |
VAN DER SCHAFT A, JELTSEMA D. Port-Hamiltonian systems theory: An introductory overview [M]. Hanover: Now Publishers Inc., 2014: 228.
|
| [8] |
STACEY G, MAHONY R. A port-Hamiltonian approach to formation control using bearing measurements and range observers[C]∥ 52nd IEEE Conference on Decision and Control. Piscataway: IEEE Press, 2014: 7641-7646.
|
| [9] |
DUONG T, ALTAWAITAN A, STANLEY J, et al. Port-Hamiltonian neural ODE networks on Lie groups for robot dynamics learning and control[J]. IEEE Transactions on Robotics, 2024, 40: 3695-3715.
|
| [10] |
JIA Z H, QIAO L, ZHANG W D. Adaptive tracking control of unmanned underwater vehicles with compensation for external perturbations and uncertainties using port-Hamiltonian theory[J]. Ocean Engineering, 2020, 209: 107402.
|
| [11] |
FAHMI J M, WOOLSEY C A. Port-Hamiltonian flight control of a fixed-wing aircraft[J]. IEEE Transactions on Control Systems Technology, 2022, 30(1): 408-415.
|
| [12] |
JAVANMARDI N, YAGHMAEI A, YAZDANPANAH M J. Spacecraft formation flying in the port-Hamiltonian framework[J]. Nonlinear Dynamics, 2020, 99(4): 2765-2783.
|
| [13] |
WANG J M, ZHENG W, ZHOU Q R, et al. PID passive-based control of spacecraft formation flying in the port-Hamiltonian framework[C]∥ 2023 42nd Chinese Control Conference. Piscataway: IEEE Press, 2023: 820-825.
|
| [14] |
郝文康, 包素艳, 陈琪锋. 基于端口哈密顿系统的无人机编队分布式控制[J]. 航空学报, 2023, 44(S2): 729868.
|
|
HAO W K, BAO S Y, CHEN Q F. Distributed control of UAVs formation based on port-Hamiltonian system[J]. Acta Aeronautica et Astronautica Sinica, 2023, 44(S2): 729868 (in Chinese).
|
| [15] |
REN W. Multi-vehicle consensus with a time-varying reference state[J]. Systems & Control Letters, 2007, 56(7/8): 474-483
|
| [16] |
FORBES J R. L2-gain and passivity techniques in nonlinear control[J]. IEEE Control Systems Magazine, 2017, 37(6): 75-76.
|
| [17] |
ORTEGA R, VAN DER SCHAFT A, MASCHKE B, et al. Interconnection and damping assignment passivity-based control of port-controlled Hamiltonian systems[J]. Automatica, 2002, 38(4): 585-596.
|
| [18] |
ORTEGA R, GARCÍA-CANSECO E. Interconnection and damping assignment passivity-based control: A survey[J]. European Journal of Control, 2004, 10(5): 432-450.
|
| [19] |
FUJIMOTO K, SAKATA N, MARUTA I, et al. A passivity based sliding mode controller for simple port-Hamiltonian systems[J]. IEEE Control Systems Letters, 2021, 5(3): 839-844.
|
| [20] |
SAKATA N, FUJIMOTO K, MARUTA I. Passivity-based sliding mode control for mechanical port-Hamiltonian systems[J]. IEEE Transactions on Automatic Control, 2024, 69(8): 5605-5612.
|
| [21] |
范庆东. 改进滑模控制器的无人机编队建模与协同控制[D]. 北京: 北京化工大学, 2022.
|
|
FAN Q D. Modeling and cooperative control of UAV formation based on improved sliding mode controller[D]. Beijing: Beijing University of Chemical Technology, 2022 (in Chinese).
|
| [22] |
LIU S S, GE M F, LIU Z W. Multi-UAV formation control based on distributed model predictive control[C]∥ 2022 IEEE International Conference on Cyborg and Bionic Systems. Piscataway: IEEE Press, 2023: 292-297.
|
| [23] |
赵超轮, 戴邵武, 赵国荣, 等. 基于分布式模型预测控制的无人机编队控制[J]. 控制与决策, 2022, 37(7): 1763-1771.
|
|
ZHAO C L, DAI S W, ZHAO G R, et al. Formation control of multi-UAV based on distributed model predictive control algorithm[J]. Control and Decision, 2022, 37(7): 1763-1771 (in Chinese).
|