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Real-Time Detection of False Data Injection in Smart Grid Networks: An Adaptive CUSUM Method and Analysis

机译:智能电网中虚假数据注入的实时检测:一种自适应CUSUM方法与分析

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摘要

A smart grid is delay sensitive and requires the techniques that can identify and react on the abnormal changes (i.e., system fault, attacker, shortcut, etc.) in a timely manner. In this paper, we propose a real-time detection scheme against false data injection attack in smart grid networks. Unlike the classical detection test, the proposed algorithm is able to tackle the unknown parameters with low complexity and process multiple measurements at once, leading to a shorter decision time and a better detection accuracy. The objective is to detect the adversary as quickly as possible while satisfying certain detection error constraints. A Markov-chain-based analytical model is constructed to systematically analyze the proposed scheme. With the analytical model, we are able to configure the system parameters for guaranteed performance in terms of false alarm rate, average detection delay, and missed detection ratio under a detection delay constraint. The simulations are conducted with MATPOWER 4.0 package for different IEEE test systems.
机译:智能电网对时延敏感,需要能够及时识别异常变化并对异常变化做出反应的技术(即系统故障,攻击者,捷径等)。在本文中,我们提出了一种针对智能电网中的虚假数据注入攻击的实时检测方案。与经典的检测测试不同,该算法能够以较低的复杂度处理未知参数并立即处理多次测量,从而缩短了决策时间并提高了检测精度。目的是在满足某些检测错误约束的同时,尽快检测对手。建立了基于马尔可夫链的分析模型,以系统地分析所提出的方案。通过分析模型,我们能够在误报率,平均检测延迟和在检测延迟约束下错过检测率的方面配置系统参数以保证性能。使用MATPOWER 4.0软件包针对不同的IEEE测试系统进行了仿真。

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