WU Ai-Guo1,2, ZHOU Bin3, HOU Mingzhe3, ZHANG Ying4
WU Ai-Guo, ZHOU Bin, HOU Mingzhe, ZHANG Ying. Fully Actuated System Approaches: Theory and Applications[J]. Journal of Systems Science and Complexity, 2022, 35(2): 437-440.
[1] Duan G R, Brockett’s first example: An FAS approach treatment, Journal of Systems Science & Complexity, 2022, 35(2): 441–456. [2] Ning P J, Hua C C, and Meng R, Adaptive control for a class of nonlinear time-delay system based on the fully actuated system approaches, Journal of Systems Science & Complexity, 2022, 35(2): 522–534. [3] Li Z, Zhang Y, and Zhang R, Prescribed error performance control for second-order fully actuated systems, Journal of Systems Science & Complexity, 2022, 35(2): 660–669. [4] Shi W R, Hou M Z, and Duan G R, Adaptive preassigned time stabilisation of uncertain secondorder sub-fully actuated systems, Journal of Systems Science & Complexity, 2022, 35(2): 703–713. [5] Zhou B and Duan G R, On the role of zeros in the pole assignment of scalar high-order fully actuated linear systems, Journal of Systems Science & Complexity, 2022, 35(2): 535–542. [6] Gu D K and Wang S, A high-order fully actuated system approach for a class of nonlinear systems, Journal of Systems Science & Complexity, 2022, 35(2): 714–730. [7] Liu G P, Predictive control of high-order fully actuated nonlinear systems with time-varying delays, Journal of Systems Science & Complexity, 2022, 35(2): 457–470. [8] Wu A G, Zhang J, and Ji Y Z, A fully actuated system approach for stabilization of discretetime multiple-input nonlinear systems with distinct input delays, Journal of Systems Science & Complexity, 2022, 35(2): 670–687. [9] Wang N, Liu X P, Liu C G, et al., Almost disturbance decoupling for HOFA nonlinear systems with strict-feedback form, Journal of Systems Science & Complexity, 2022, 35(2): 481–501. [10] Xiao F Z and Chen L Q, Attitude control of spherical liquid-filled spacecraft based on highorder fully actuated system approaches, Journal of Systems Science & Complexity, 2022, 35(2): 471–480. [11] Zhao Q and Duan G R, Fully actuated system approach for 6DOF spacecraft control based on extended state observer, Journal of Systems Science & Complexity, 2022, 35(2): 604–622. [12] Duan G Q and Liu G P, Attitude and orbit optimal control of combined spacecraft via a fullyactuated system approach, Journal of Systems Science & Complexity, 2022, 35(2): 623–640. [13] Liu G Q, Zhang K, and Li B, Fully-actuated system approach based optimal attitude tracking control of rigid spacecraft with actuator saturation, Journal of Systems Science & Complexity, 2022, 35(2): 688–702. [14] Kong X Y, Xia Y Q, Hu R, et al., Trajectory tracking control for under-actuated hovercraft using differential flatness and reinforcement learning-based active disturbance rejection control, Journal of Systems Science & Complexity, 2022, 35(2): 502–521. [15] Wu S and Liu T F, Safety control of a class of fully actuated systems subject to uncertain actuation dynamics, Journal of Systems Science & Complexity, 2022, 35(2): 543–558. [16] Gao Z Y, Zhang Y, and Gu G, Fixed-time leader-following formation control of fully-actuated underwater vehicles without velocity measurements, Journal of Systems Science & Complexity, 2022, 35(2): 559–585. [17] Zhao Y Z, Ma D, and Ma H W, Adaptive neural network control of thermoacoustic instability in rijke tube: A fully actuated system approach, Journal of Systems Science & Complexity, 2022, 35(2): 586–603. [18] Sun H, Huang L, and He L, Research on the trajectory tracking control of a 6-DOF manipulator based on fully-actuated system models, Journal of Systems Science & Complexity, 2022, 35(2): 641–659. |
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