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An Adaptive Control Architecture for Mitigating Sensor and Actuator Attacks in Cyber-Physical Systems

机译:缓解网络物理系统中传感器和执行器攻击的自适应控制体系结构

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Recent technological advances in communications and computation have spurred a broad interest in control law architectures involving the monitoring, coordination, integration, and operation of sensing, computing, and communication components that tightly interact with the physical processes that they control. These systems are known as cyber-physical systems and due to their use of open computation and communication platform architectures, controlled cyber-physical systems are vulnerable to adversarial attacks. In this technical note, we propose a novel adaptive control architecture for addressing security and safety in cyber-physical systems. Specifically, we develop an adaptive controller that guarantees uniform ultimate boundedness of the closed-loop dynamical system in the face of adversarial sensor and actuator attacks that are time-varying and partial asymptotic stability when the sensor and actuator attacks are time-invariant. Finally, we provide a numerical example to illustrate the efficacy of the proposed adaptive control architecture.
机译:通信和计算领域的最新技术进步引起了人们对控制律体系结构的广泛兴趣,其中涉及与它们控制的物理过程紧密交互的传感,计算和通信组件的监视,协调,集成和操作。这些系统被称为网络物理系统,由于使用开放的计算和通信平台架构,受控的网络物理系统容易受到对抗性攻击。在本技术说明中,我们提出了一种新颖的自适应控制体系结构,用于解决网络物理系统中的安全性问题。具体来说,我们开发了一种自适应控制器,当面对传感器和执行器的攻击是时变的时,对抗性传感器和执行器的攻击是时变的且具有部分渐近稳定性,从而确保闭环动力系统具有统一的最终有界性。最后,我们提供一个数值示例来说明所提出的自适应控制体系结构的功效。

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