TY - JOUR
T1 - Saturation-Tolerant Prescribed Control for Nonlinear Time-Delay Systems
AU - Ji, Ruihang
AU - Li, Dongyu
AU - Ge, Shuzhi Sam
N1 - Publisher Copyright:
© 1993-2012 IEEE.
PY - 2023/8/1
Y1 - 2023/8/1
N2 - This article studies the problem of saturation-tolerant prescribed control (SPC) for a class of nonlinear time-delay systems with unknown control directions. We propose a unified finite-time tunnel prescribed performance (FTPP), which not only provides more tight allowable set leading to smaller overshoot, but also drives the tracking error into the prescribed set within a known time. To remove the implicit assumption that both input and performance constraints need to be satisfied simultaneously, an auxiliary system is developed to establish a balance between these two constraints instead of ignoring their interconnection and conflict. With aid of its generated nonnegative signals, the developed saturation-tolerant prescribed performance (SPP) possesses flexible performance. Namely, SPP can temporarily enlarge the performance boundaries to guarantee both constraints when input saturation occurs, and fast recover back to the prescribed boundaries when input saturation disappears. Consequently, a low-complexity SPC for uncertain nonlinear systems is developed, which can always guarantee both input and performance constraints even under unknown time delay and unknown control directions. Finally, comparative simulation is provided to illustrate the merits of the presented control strategy.
AB - This article studies the problem of saturation-tolerant prescribed control (SPC) for a class of nonlinear time-delay systems with unknown control directions. We propose a unified finite-time tunnel prescribed performance (FTPP), which not only provides more tight allowable set leading to smaller overshoot, but also drives the tracking error into the prescribed set within a known time. To remove the implicit assumption that both input and performance constraints need to be satisfied simultaneously, an auxiliary system is developed to establish a balance between these two constraints instead of ignoring their interconnection and conflict. With aid of its generated nonnegative signals, the developed saturation-tolerant prescribed performance (SPP) possesses flexible performance. Namely, SPP can temporarily enlarge the performance boundaries to guarantee both constraints when input saturation occurs, and fast recover back to the prescribed boundaries when input saturation disappears. Consequently, a low-complexity SPC for uncertain nonlinear systems is developed, which can always guarantee both input and performance constraints even under unknown time delay and unknown control directions. Finally, comparative simulation is provided to illustrate the merits of the presented control strategy.
KW - Auxiliary system
KW - input saturation
KW - prescribed performance control (PPC)
KW - time-delay systems
KW - unknown control directions
UR - https://www.scopus.com/pages/publications/85144793057
U2 - 10.1109/TFUZZ.2022.3227984
DO - 10.1109/TFUZZ.2022.3227984
M3 - 文章
AN - SCOPUS:85144793057
SN - 1063-6706
VL - 31
SP - 2495
EP - 2508
JO - IEEE Transactions on Fuzzy Systems
JF - IEEE Transactions on Fuzzy Systems
IS - 8
ER -