TY - JOUR
T1 - Fast Finite-Time Dynamic Surface Synchronization Control for Telerobotics System with Prescribed Performance
AU - Li, Hang
AU - Chou, Wusheng
N1 - Publisher Copyright:
© 2024 Wiley-VCH GmbH.
PY - 2024/8
Y1 - 2024/8
N2 - This study focuses on the fast finite-time synchronization control problem for nonlinear telerobotics system with asymmetric time-vary delays and uncertainties. A finite-time prescribed performance function is incorporated into the backstepping control framework such that the synchronization error will remain within a predefined funnel boundary. To increase the rate of convergence, the selected error transformation function is a arctangent function. The utilization of dynamic surface control method aims to decrease computational complexity by mitigating the need for repetitive differentiation of virtual signals in the conventional backstepping algorithm. In the meantime, the non-power approximate signals of fuzzy neural network algorithms are utilized to replace the system uncertainties, effectively addressing the passivity issue associated with time-delayed channels. Both theoretical analysis and experimental results are present to verify that the synchronization error can converge to a small neighborhood around zero in the fast finite time and the closed-loop system remains stable.
AB - This study focuses on the fast finite-time synchronization control problem for nonlinear telerobotics system with asymmetric time-vary delays and uncertainties. A finite-time prescribed performance function is incorporated into the backstepping control framework such that the synchronization error will remain within a predefined funnel boundary. To increase the rate of convergence, the selected error transformation function is a arctangent function. The utilization of dynamic surface control method aims to decrease computational complexity by mitigating the need for repetitive differentiation of virtual signals in the conventional backstepping algorithm. In the meantime, the non-power approximate signals of fuzzy neural network algorithms are utilized to replace the system uncertainties, effectively addressing the passivity issue associated with time-delayed channels. Both theoretical analysis and experimental results are present to verify that the synchronization error can converge to a small neighborhood around zero in the fast finite time and the closed-loop system remains stable.
KW - dynamic surface control
KW - fast finite-time theory
KW - fuzzy-neural approximation
KW - prescribed performance
KW - telerobotics
UR - https://www.scopus.com/pages/publications/85190528174
U2 - 10.1002/adts.202301140
DO - 10.1002/adts.202301140
M3 - 文章
AN - SCOPUS:85190528174
SN - 2513-0390
VL - 7
JO - Advanced Theory and Simulations
JF - Advanced Theory and Simulations
IS - 8
M1 - 2301140
ER -