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An Evolutionary Computation Approach for Smart Grid Cascading Failure Vulnerability Analysis

机译:智能电网连锁故障脆弱性分析的进化计算方法

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The cyber-physical security of smart grid is of great importance since it directly concerns the normal operating of a system. Recently, researchers found that organized sequential attacks can incur large-scale cascading failure to the smart grid. In this paper, we focus on the line-switching sequential attack, where the attacker aims to trip transmission lines in a designed order to cause significant system failures. Our objective is to identify the critical line-switching attack sequence, which can be instructional for the protection of smart grid. For this purpose, we develop an evolutionary computation based vulnerability analysis framework, which employs particle swarm optimization to search the critical attack sequence. Simulation studies on two benchmark systems, i.e., IEEE 24 bus reliability test system and Washington 30 bus dynamic test system, are implemented to evaluate the performance of our proposed method. Simulation results show that our method can yield a better performance comparing with the reinforcement learning based approach proposed in other prior work.
机译:智能电网的网络物理安全非常重要,因为它直接关系到系统的正常运行。最近,研究人员发现,有组织的顺序攻击会导致智能电网大规模连锁故障。在本文中,我们专注于线路交换顺序攻击,攻击者旨在按设计顺序使传输线路跳闸,从而导致严重的系统故障。我们的目标是确定关键的线路切换攻击序列,这对于保护智能电网具有指导意义。为此,我们开发了一个基于演化计算的漏洞分析框架,该框架使用粒子群优化来搜索关键攻击序列。对两个基准系统(即IEEE 24总线可靠性测试系统和Washington 30总线动态测试系统)进行了仿真研究,以评估我们提出的方法的性能。仿真结果表明,与其他现有工作中提出的基于强化学习的方法相比,我们的方法可以产生更好的性能。

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