TY - GEN
T1 - H∞ Performance Analysis of Time-Varying Time-Delay Nonlinear Systems
AU - Kong, Feng
AU - Lu, Hongqian
AU - Li, Qijia
N1 - Publisher Copyright:
© 2024 Asian Control Association.
PY - 2024
Y1 - 2024
N2 - H∞ control for nonlinear systems with uncertain, time-varying delays stands as a vital control methodology for managing the complexities inherent in such systems. This approach is frequently employed to address challenges associated with uncertain systems experiencing time delays. In practical applications, the implementation of H∞ control often leads to enhancements in system stability and robustness. Rooted in the H∞ norm, this control design method aims to optimize the stability margin of the system. Typically, the steps involved in this process encompass system modeling, performance index selection, controller design, and subsequent performance analysis. Given the inherent complexity of such systems, it is essential to employ appropriate mathematical tools and control strategies to ensure that the controller maintains optimal performance across varying operational conditions. H∞ control emerges as a potent solution capable of addressing a wide array of complex systems, including nonlinear systems plagued by uncertain time-varying delays. Through prudent controller design, significant improvements in system performance and stability can be achieved, thereby enabling the system to operate seamlessly despite the presence of uncertainty and time delay.
AB - H∞ control for nonlinear systems with uncertain, time-varying delays stands as a vital control methodology for managing the complexities inherent in such systems. This approach is frequently employed to address challenges associated with uncertain systems experiencing time delays. In practical applications, the implementation of H∞ control often leads to enhancements in system stability and robustness. Rooted in the H∞ norm, this control design method aims to optimize the stability margin of the system. Typically, the steps involved in this process encompass system modeling, performance index selection, controller design, and subsequent performance analysis. Given the inherent complexity of such systems, it is essential to employ appropriate mathematical tools and control strategies to ensure that the controller maintains optimal performance across varying operational conditions. H∞ control emerges as a potent solution capable of addressing a wide array of complex systems, including nonlinear systems plagued by uncertain time-varying delays. Through prudent controller design, significant improvements in system performance and stability can be achieved, thereby enabling the system to operate seamlessly despite the presence of uncertainty and time delay.
KW - Control
KW - Nonlinear Systems
KW - Time-varying Delays
KW - Uncertainty
UR - https://www.scopus.com/pages/publications/85205686540
M3 - 会议稿件
AN - SCOPUS:85205686540
T3 - 14th Asian Control Conference, ASCC 2024
SP - 2202
EP - 2206
BT - 14th Asian Control Conference, ASCC 2024
PB - Institute of Electrical and Electronics Engineers Inc.
T2 - 14th Asian Control Conference, ASCC 2024
Y2 - 5 July 2024 through 8 July 2024
ER -