服务拒绝攻击
地平线
拒绝
李雅普诺夫函数
模型预测控制
控制理论(社会学)
计算机科学
无人机
深水地平线
控制(管理)
工程类
海洋工程
数学
人工智能
心理学
非线性系统
互联网
物理
几何学
量子力学
环境工程
万维网
精神分析
石油泄漏
作者
Yuxing Zhou,Li‐Ying Hao,Runzhi Wang,Chao Shen
摘要
ABSTRACT The resilience and robustness of model predictive control are typically contingent upon an adequately extended prediction horizon, yet it is constrained in real‐time applications by limited computational resources. To tackle this issue, this paper introduces a finite‐time Lyapunov‐based model predictive control (FTLMPC) approach, independent of the prediction horizon, for unmanned surface vehicles (USVs) subject to external disturbances and denial‐of‐service (DoS) attacks. Firstly, a finite‐time auxiliary control system is integrated within the FTLMPC framework. This system incorporates a finite‐time extended state observer (FTESO) for precise disturbance estimation and a finite‐time backstepping control law to guarantee zero tracking errors. Consequently, FTLMPC ensures finite‐time stability during each DoS attack interval, effectively preventing error accumulation despite the presence of disturbances and DoS attacks. Secondly, a novel compensation scheme is introduced to mitigate the information loss induced by DoS attacks, wherein the compensation signal is solely derived from the control signal at the moment of the last successful transmission, thus minimizing reliance on the prediction horizon. It enables flexible adaptation of the prediction horizon and control performance according to the available computational resources. Finally, the simulation results validate the superior control performance of the proposed strategy.
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