TY - JOUR
T1 - Prescribed-time control for nonholonomic systems
T2 - a fully actuated systems method
AU - Zhang, Jiaming
AU - Liu, Yang
AU - Zheng, Zewei
AU - Niu, Ben
N1 - Publisher Copyright:
© 2026 Informa UK Limited, trading as Taylor & Francis Group.
PY - 2026
Y1 - 2026
N2 - This paper addresses the prescribed-time control problem for a class of nonholonomic systems subject to time-varying unknown control coefficients. Firstly, a state transformation is introduced to convert the original system into a fully actuated and decoupled form, which significantly simplifies the subsequent controller design process. In contrast to existing prescribed-time stability theorems, a more generalised stability criterion is proposed in this work, offering greater flexibility and reduced conservatism in the analysis and synthesis of controllers. Subsequently, a time-varying fully actuated controller is developed by integrating a prescribed-time adjustment function with a Nussbaum-type function, effectively handling the unknown control coefficients. Supported by a parameterised Lyapunov function framework, the proposed control scheme guarantees that all system states converge to zero exactly within a user-defined prescribed time. Finally, simulation results performed on a hopping robot model validate the effectiveness and superiority of the proposed control strategy.
AB - This paper addresses the prescribed-time control problem for a class of nonholonomic systems subject to time-varying unknown control coefficients. Firstly, a state transformation is introduced to convert the original system into a fully actuated and decoupled form, which significantly simplifies the subsequent controller design process. In contrast to existing prescribed-time stability theorems, a more generalised stability criterion is proposed in this work, offering greater flexibility and reduced conservatism in the analysis and synthesis of controllers. Subsequently, a time-varying fully actuated controller is developed by integrating a prescribed-time adjustment function with a Nussbaum-type function, effectively handling the unknown control coefficients. Supported by a parameterised Lyapunov function framework, the proposed control scheme guarantees that all system states converge to zero exactly within a user-defined prescribed time. Finally, simulation results performed on a hopping robot model validate the effectiveness and superiority of the proposed control strategy.
KW - fully actuated systems method
KW - Nonholonomic systems
KW - nussbaum function
KW - prescribed-time control
UR - https://www.scopus.com/pages/publications/105029426741
U2 - 10.1080/00207721.2026.2623144
DO - 10.1080/00207721.2026.2623144
M3 - 文章
AN - SCOPUS:105029426741
SN - 0020-7721
JO - International Journal of Systems Science
JF - International Journal of Systems Science
ER -