欺骗攻击下基于鲁棒重建的工业网络物理系统弹性MPC

Ning He;Dangtong He;Yuxiang Li
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引用次数: 0

摘要

在本文中,我们提出了一种新的鲁棒的基于重建的弹性模型预测控制(RR-MPC)策略来保护工业网络物理系统(icps)免受欺骗攻击。为了实现这一目标,首先设计了一种鲁棒重建策略,该策略不仅可以预测icps的附加干扰以获得较小的保守状态误差,而且可以确定特定的密钥保护输入样本,以便在欺骗攻击篡改最优输入样本时计算出可行的输入样本。在鲁棒重建策略的基础上,设计了一种新的弹性MPC算法,在欺骗攻击下保持系统的稳定性,同时减少了控制器的计算和安全资源消耗。此外,还证明了改进的MPC算法的递归可行性以及该算法驱动的icps的闭环稳定性。最后,通过仿真算例和基于机器人的实验验证了所提弹性MPC算法的有效性。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Robust Reconstruction-Based Resilient MPC for Industrial Cyber-Physical Systems Under Deception Attacks
In the article, we propose a novel robust reconstruction-based resilient model predictive control (RR-MPC) strategy to protect industrial cyber-physical systems (ICPSs) against deception attacks. To reach this goal, a robust reconstruction strategy is first designed, which could not only predict the additional disturbance of the ICPSs to achieve a less conservative state error but also determine the specific key protected input samples to calculate the feasible ones if deception attacks tamper with the optimal one. Based on the robust reconstruction strategy, a novel resilient MPC algorithm is designed to maintain the system operation stability under deception attacks while also reducing the controller’s computing and security resources consumption. Moreover, the recursive feasibility of the modified MPC algorithm and the closed-loop stability of the ICPSs driven by the considered algorithm are all demonstrated. Finally, the effectiveness of the proposed resilient MPC algorithm is verified via a simulation example and a robot-based experimental verification.
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