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Extended Distributed State Estimation: A Detection Method against Tolerable False Data Injection Attacks in Smart Grids

机译:扩展的分布式状态估计:一种针对智能电网中可容忍的虚假数据注入攻击的检测方法

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False data injection (FDI) is considered to be one of the most dangerous cyber-attacks in smart grids, as it may lead to energy theft from end users, false dispatch in the distribution process, and device breakdown during power generation. In this paper, a novel kind of FDI attack, named tolerable false data injection (TFDI), is constructed. Such attacks exploit the traditional detector's tolerance of observation errors to bypass the traditional bad data detection. Then, a method based on extended distributed state estimation (EDSE) is proposed to detect TFDI in smart grids. The smart grid is decomposed into several subsystems, exploiting graph partition algorithms. Each subsystem is extended outward to include the adjacent buses and tie lines, and generate the extended subsystem. The Chi-squares test is applied to detect the false data in each extended subsystem. Through decomposition, the false data stands out distinctively from normal observation errors and the detection sensitivity is increased. Extensive TFDI attack cases are simulated in the Institute of Electrical and Electronics Engineers (IEEE) 14-, 39-, 118- and 300-bus systems. Simulation results show that the detection precision of the EDSE-based method is much higher than that of the traditional method, while the proposed method significantly reduces the associated computational costs.
机译:错误数据注入(FDI)被认为是智能电网中最危险的网络攻击之一,因为它可能导致最终用户盗窃能源,在分配过程中错误分配以及在发电过程中设备故障。本文构建了一种新型的FDI攻击,称为可容忍的虚假数据注入(TFDI)。这种攻击利用了传统检测器对观察错误的容忍度,从而绕过了传统的不良数据检测。然后,提出了一种基于扩展分布状态估计(EDSE)的方法来检测智能电网中的TFDI。智能电网利用图分区算法分解为几个子系统。每个子系统向外扩展以包括相邻的总线和联络线,并生成扩展的子系统。卡方检验用于检测每个扩展子系统中的错误数据。通过分解,错误数据与正常的观察错误明显不同,并且提高了检测灵敏度。在电气和电子工程师协会(IEEE)的14、39、118和300总线系统中,模拟了广泛的TFDI攻击案例。仿真结果表明,基于EDSE的方法的检测精度大大高于传统方法,而所提出的方法则大大降低了相关的计算成本。

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