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Denial of service attacks and mitigation for stability in cyber-enabled power grid

机译:拒绝服务攻击和缓解网络的电网稳定性

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Monitoring and actuation represent critical tasks for electric power utilities to maintain system stability and reliability. As such, the utility is highly dependent on a low latency communication infrastructure for receiving and transmitting measurement and control data to make accurate decisions. This dependency, however, can be exploited by an adversary to disrupt the integrity of the grid. We demonstrate that Denial of Service (DoS) attacks, even if perpetrated on a subset of cyber communication nodes, has the potential to succeed in disrupting the overall grid. One countermeasure to DoS attacks is enabling cyber elements to distributively reconfigure the system's routing topology so that malicious nodes are isolated. We propose a collaborative reputation-based topology configuration scheme and through game theoretic principles we prove that a low-latency Nash Equilibrium routing topology always exists for the system. Numerical results indicate that during an attack on a subset of cyber nodes, the proposed algorithm effectively enables the remaining nodes to converge quickly to an equilibrium topology and maintain dynamical stability in the specific instance of an islanded microgrid system.
机译:监控和致动代表了电力实用程序以维护系统稳定性和可靠性的关键任务。因此,该实用程序高度依赖于用于接收和发送测量和控制数据以进行准确决策的低延迟通信基础设施。然而,这种依赖性可以通过对手来利用来破坏网格的完整性。我们展示了拒绝服务(DOS)攻击,即使在网络通信节点的子集上犯下,也有可能成功地破坏整体网格。 DOS攻击的一个对策是使网络元素能够分布地重新配置系统的路由拓扑,以便孤立恶意节点。我们提出了一种基于合作的信誉的拓扑配置方案,并通过游戏理论原则,我们证明了系统始终存在低延迟的纳什均衡路由拓扑。数值结果表明,在对网络节点子集的攻击期间,所提出的算法有效地使得剩余节点能够快速收敛到平衡拓扑,并在岛状微电网的特定实例中保持动态稳定性。

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