Have a personal or library account? Click to login
Composite Anti-Disturbance Switched ℋ2 Control Design for Switched Systems Cover

Composite Anti-Disturbance Switched ℋ2 Control Design for Switched Systems

By: Emre Kemer and  Hasan Başak  
Open Access
|Mar 2025

References

  1. Wei X, Guo L. Composite disturbance-observer-based control and H control for complex continuous models. International Journal of Robust and Nonlinear Control: IFAC-Affiliated Journal. 2010; 20(1): 106–118.
  2. Yao X, Guo L. Composite anti-disturbance control for Markovian jump nonlinear systems via disturbance observer. Automatica. 2013; 49(8): 2538–2545.
  3. Sun H, Hou L, Zong G, et al. Composite anti-disturbance attitude and vibration control for flexible spacecraft. IET Control Theory & Applications. 2017; 11(14): 2383–2390.
  4. Li Y, Chen M, Ge SS, et al. Anti-disturbance control for attitude and altitude systems of the helicopter under random disturbances. Aerospace Science and Technology. 2020; 96: 105561.
  5. Li T, Yang H, Tian J, et al. Improved disturbance rejection control based on H synthesis and equivalent-input-disturbance for aircraft longitudinal autopilot design. Proceedings of the Institution of Mechanical Engineers, Part G: Journal of Aerospace Engineering. 2018; 233(9): 3323–3335.
  6. Gao F, Wu M, She J, et al. Disturbance rejection in nonlinear systems based on equivalent-input-disturbance approach. Applied Mathematics and Computation. 2016; 282: 244–253.
  7. Li T, Zhang S, Yang H, et al. Robust missile longitudinal autopilot design based on equivalent-input-disturbance and generalized extended state observer approach. Proceedings of the Institution of Mechanical Engineers, Part G: Journal of Aerospace Engineering. 2016; 229(6): 1025–1042.
  8. Aboudonia A, Rashad R, El-Badawy A. Composite hierarchical anti-disturbance control of a quadrotor UAV in the presence of matched and mismatched disturbances. Journal of Intelligent & Robotic Systems. 2018; 90(1): 201–216.
  9. Zengbo L, Yukai Z, Jianzhongn Q. Composite anti-disturbance position and attitude control for spacecraft with parametric uncertainty and flexible vibration. Chinese Journal of Aeronautics. 2022; 35(12): 242–252.
  10. Liu L, Chen M, Li T, et al. Composite Anti-Disturbance Reference Model L2L Control for Helicopter Slung Load System. Journal of Intelligent & Robotic Systems. 2021; 102(1): 1–21.
  11. Cao S, Guo L, Ding Z. Event-triggered anti-disturbance attitude control for rigid spacecrafts with multiple disturbances. International Journal of Robust and Nonlinear Control. 2021; 31(2): 344–357.
  12. Yao X, Wen X. Composite hierarchical hybrid anti-disturbance control for Markovian jump systems with event-triggered disturbance. Systems & Control Letters. 2024;185:105734.
  13. Sakthivel R, Elayabharath VT, Satheesh T, et al. Design of anti-disturbance reliable control for fuzzy networked control systems with multiple disturbances. International Journal of Fuzzy Systems. 2024; 26(1): 105–120.
  14. Sun H, Liu Y, Jiao T, et al. Distributed extended state observer design and dual-side dynamic event-triggered output feedback anti-disturbance control for nonlinear interconnected systems with quantization. Journal of the Franklin Institute. 2024; 106847.
  15. Lin H, Antsaklis PJ. Stability and stabilizability of switched linear systems: a survey of recent results. IEEE Transactions on Automatic control. 2009; 54(2): 308–322.
  16. Liberzon D, Morse AS. Basic problems in stability and design of switched systems. IEEE control systems magazine. 1999; 19(5): 59–70.
  17. Geromel JC, Colaneri P. Stability and stabilization of continuous-time switched linear systems. SIAM Journal on Control and Optimization. 2006; 45(5): 1915–1930.
  18. Allerhand LI, Shaked U. Robust control of linear systems via switching. IEEE Transactions on Automatic Control. 2012; 58(2): 506–512.
  19. Liu F, Chen M, Li T. Resilient H control for uncertain turbofan linear switched systems with hybrid switching mechanism and disturbance observer. Applied Mathematics and Computation. 2022; 413: 126597.
  20. Deaecto GS, Souza M, Geromel JC. Chattering free control of continuous-time switched linear systems. IET Control Theory & Applications. 2014; 8(5): 348–354.
  21. Gershon E, Shaked U. Robust State-Dependent Switching of Linear Systems with Dwell Time. In Advances in H Control Theory. Springer Cham. 2019; 27–41.
  22. Wang J, Huang Z, Wu Z, et al. Extended dissipative control for singularly perturbed PDT switched systems and its application. IEEE Transactions on Circuits and Systems I: Regular Papers. 2020; 67(12): 5281–5289.
  23. Xiang W. Stabilization for continuous-time switched linear systems: A mixed switching scheme. Nonlinear Analysis: Hybrid Systems. 2020; 36:100872.
  24. Zhang S, Zhao J. Dwell-Time-Dependent H Bumpless Transfer Control for Discrete-Time Switched Interval Type-2 Fuzzy Systems. IEEE Transactions on Fuzzy Systems. 2021; 30(70: 2426–2437.
  25. Zhang S, Zhao J. Membership-function-dependent H bumpless transfer control for switched interval type-2 fuzzy systems with time-delay. Nonlinear Analysis: Hybrid Systems. 2024; 52: 101457.
  26. Priyanka S, Sakthivel R, Mohanapriya S, et al. Composite fault-tolerant and anti-disturbance control for switched fuzzy stochastic systems. ISA transactions. 2022;125: 99–109.
  27. Scherer C, Weiland S. Linear matrix inequalities in control. Lecture Notes in Dutch Institute for Systems and Control. Delft. The Netherlands. 2000; 3.
  28. Kemer E, Başak H, Prempain E. Switched H2-state-feedback control with application to a fighter aircraft. Proceedings of the Institution of Mechanical Engineers, Part G: Journal of Aerospace Engineering. 2019; 233(14): 5428–5437.
  29. Richter H. Advanced control of turbofan engines. Springer Science & Business Media; 2011.
  30. Jaw L, Mattingly J. Aircraft engine controls: Design, System Analysis and Health Monitoring. Reston VA. USA: American Institute of Aeronautics and Astronautics; 2009.
DOI: https://doi.org/10.2478/ama-2025-0015 | Journal eISSN: 2300-5319 | Journal ISSN: 1898-4088
Language: English
Page range: 126 - 135
Submitted on: Jul 4, 2024
Accepted on: Oct 10, 2024
Published on: Mar 31, 2025
Published by: Bialystok University of Technology
In partnership with: Paradigm Publishing Services
Publication frequency: 4 issues per year

© 2025 Emre Kemer, Hasan Başak, published by Bialystok University of Technology
This work is licensed under the Creative Commons Attribution-NonCommercial-NoDerivatives 4.0 License.