Adaptive decentralized fixed‐time neural control for constrained strong interconnected nonlinear systems with input quantization

Author:

Wei Fansen1ORCID,Zhang Liang1ORCID,Niu Ben2ORCID,Zong Guangdeng3ORCID

Affiliation:

1. College of Control Science and Engineering Bohai University Jinzhou Liaoning China

2. Faculty of Electronic Information and Electrical Engineering Dalian University of Technology Dalian Liaoning China

3. School of Control Science and Engineering Tiangong University Tianjin China

Abstract

AbstractThis article investigates the problem of adaptive decentralized fixed‐time tracking control for strong interconnected nonlinear systems with full‐state constraints and input quantization. During the control design process, the assumption that the strong interconnection terms are bounded is removed via an inherent feature of the Gaussian function in neural networks. Unlike presvious nonlinear state‐dependent function (NSDF) that can only handle a single constraint, a novel form of NSDF is introduced to cope with more types of state constraints in this article. Meanwhile, the introduced NSDF is still available when the system states are unconstrained. Simultaneously, quantized input is directly handled by utilizing the intrinsic characteristics of the hysteresis quantizer. Then, based on the Lyapunov stability theory, all signals in the closed‐loop systems and tracking error are guaranteed to be bounded within fixed‐time. Finally, the feasibility of the proposed control scheme is illustrated by simulation results.

Funder

National Natural Science Foundation of China

Publisher

Wiley

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