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具有非线性故障的多智能体系统的事件触发自适应预分配有限时间一致性控制

Event-Triggered Adaptive Preassigned Finite-Time Consensus Control for Multiagent Systems With Nonlinear Faults.

作者信息

Salmanpour Yasaman, Arefi Mohammad Mehdi, Cao Jinde

出版信息

IEEE Trans Cybern. 2024 Dec;54(12):7392-7403. doi: 10.1109/TCYB.2024.3443352. Epub 2024 Nov 27.

Abstract

This article investigates a novel neuro-adaptive barrier Lyapunov function (BLF)-based event-triggered preassigned finite-time consensus control with asymptotic tracking for the nonlinear multiagent systems. The proposed approach is designed to broaden the scope of application by considering the high-order nonstrict-feedback dynamics of each agent with dynamic uncertainties subject to external disturbances and nonaffine nonlinear faults. A neural network (NN) is employed to approximate the unknown nonlinear terms. By fusing the NNs and Butterworth low-pass filter technique, the issues arising from the nonaffine nonlinear fault are addressed. To save the communication resources, a novel dynamic event-triggered mechanism based on an enhanced switching threshold is suggested. Additionally, a novel concept called the preassigned finite-time performance function (PFTPF) is defined to improve the transient and steady-state performances as well as providing faster response. The key feature of the proposed adaptive BLF-based control based on the bound estimation method is the introduction of a smooth function with decreasing variable which not only ensures that all the signals remain bounded and the synchronization errors are restricted within the PFTPF but also guarantees that the tracking errors asymptotically converge to zero. Finally, an illustrative example is provided to verify the feasibility of the proposed control approach.

摘要

本文研究了一种基于新型神经自适应障碍李雅普诺夫函数(BLF)的事件触发预分配有限时间一致性控制方法,用于具有渐近跟踪能力的非线性多智能体系统。所提出的方法旨在通过考虑每个智能体具有动态不确定性、受外部干扰和非仿射非线性故障影响的高阶非严格反馈动力学,来拓宽应用范围。采用神经网络(NN)来逼近未知非线性项。通过融合神经网络和巴特沃斯低通滤波器技术,解决了非仿射非线性故障引起的问题。为了节省通信资源,提出了一种基于增强切换阈值的新型动态事件触发机制。此外,定义了一种名为预分配有限时间性能函数(PFTPF)的新概念,以改善瞬态和稳态性能,并提供更快的响应。基于边界估计方法的所提出的自适应BLF控制的关键特性是引入了一个变量递减的光滑函数,该函数不仅确保所有信号保持有界,同步误差被限制在预分配有限时间性能函数内,而且保证跟踪误差渐近收敛到零。最后,给出了一个示例以验证所提出控制方法的可行性。

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