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Generalized Attack Model for Networked Control Systems, Evaluation of Control Methods

机译:网络控制系统的广义攻击模型,控制方法评估

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Networked Control Systems (NCSs) have been implemented in several different industries. The integration with advanced communication networks and computing techniques allows for the enhancement of efficiency of industrial control systems. Despite all the advantages that NCSs bring to industry, they remain at risk to a spectrum of physical and cyber-attacks. In this paper, we elaborate on security vulnerabilities of NCSs, and examine how these vulnerabilities may be exploited when attacks occur. A general model of NCS designed with three different controllers, i.e., proportional-integral-derivative (PID) controllers, Model Predictive control (MPC) and Emotional Learning Controller (ELC) are studied. Then three different types of attacks are applied to evaluate the system performance. For the case study, a networked pacemaker system using the Zeeman nonlinear heart model (ZHM) as the plant combined with the above-mentioned controllers to test the system performance when under attacks. The results show that with Emotional Learning Controller (ELC), the pacemaker is able to track the ECG signal with high fidelity even under different attack scenarios.
机译:网络控制系统(NCSS)已在几个不同的行业中实现。与高级通信网络和计算技术的集成允许增强工业控制系统的效率。尽管NCSS为行业带来了所有优势,但它们仍然有风险冒着一系列物理和网络攻击。在本文中,我们详细阐述了NCSS的安全漏洞,并在攻击发生时审查这些漏洞的利用方式。研究了具有三种不同控制器的NCS的一般模型,等。,比例 - 积分衍生物(PID)控制器,模型预测控制(MPC)和情绪学习控制器(ELC)。然后应用三种不同类型的攻击来评估系统性能。对于案例研究,一种使用塞曼非线性心脏模型(ZhM)的网络起搏器系统,作为植物与上述控制器相结合,以在攻击时测试系统性能。结果表明,对于情绪学习控制器(ELC),即使在不同的攻击场景下,起搏器也能够跟踪高保真度的ECG信号。

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