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首页> 外文期刊>Journal of defense modeling and simulatio >Optimal defense and control of dynamic systems modeled as cyber-physical systems
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Optimal defense and control of dynamic systems modeled as cyber-physical systems

机译:建模为网络物理系统的动态系统的最佳防御和控制

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摘要

With the increasing connectivity among computational cyber-connected elements and physical entities, a unified representation that captures the interrelationship between the cyber and the physical systems becomes increasingly important. In this paper, we propose a novel representation for developing cybersecurity schemes for physical systems wherein the cyber system states affect the physical system and vice versa. Subsequently by using this representation, an optimal strategy via Q-learning is derived for the cyber defense in the presence of an attack. Since the cyber system under attack will affect the physical system stability and performance, an optimal controller by using Q-learning is considered for the physical system with uncertain dynamics. As an example, cyber-attacks that increase the network delay and packet losses are considered and the goal of the proposed cyber defense and optimal controller is to thwart the attack and mitigate the performance degradation of the physical system due to increased delays and packet losses. An illustrative example is given where the proposed theory is evaluated on the yaw-channel control of an unmanned aerial vehicle. Simulation results show that on the cyber side, both the attacker and the defender gains their greatest payoff whereas on the physical system side, the optimal controller is able to maintain the linear system in a stable manner when the cyber state vector meets a certain desired criterion.
机译:随着计算网络连接的元素和物理实体之间的连接性不断增强,捕获网络与物理系统之间的相互关系的统一表示变得越来越重要。在本文中,我们提出了一种新颖的表示形式,用于开发物理系统的网络安全方案,其中网络系统状态会影响物理系统,反之亦然。随后,通过使用此表示,可以在存在攻击的情况下针对网络防御导出通过Q学习的最佳策略。由于受攻击的网络系统将影响物理系统的稳定性和性能,因此对于动态性不确定的物理系统,考虑使用Q学习的最佳控制器。例如,考虑了增加网络延迟和数据包丢失的网络攻击,提出的网络防御和最佳控制器的目标是阻止攻击并减轻由于延迟和数据包丢失增加而导致的物理系统性能下降。给出了一个说明性示例,其中对无人机的偏航通道控制进行了评估。仿真结果表明,在网络端,攻击者和防御者都获得了最大的回报,而在物理系统端,当网络状态向量满足某个期望标准时,最优控制器能够以稳定的方式维持线性系统。 。

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