首页> 外文期刊>IET Cyber-Physical Systems: Theory & Applications >Relaxation-based anomaly detection in cyber-physical systems using ensemble kalman filter
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Relaxation-based anomaly detection in cyber-physical systems using ensemble kalman filter

机译:使用集合卡尔曼滤波器的网络 - 物理系统中基于弛豫的异常检测

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摘要

As power systems mature into smart grid entities, they face new challenges toward online monitoring and control of the system's behaviour. Burgeoning classes of cyber-attacks are observed which may cause instability of the power grid and system blackouts if not identified. In this study, the authors propose an ensemble Kalman filter based anomaly detector using a relaxation-based solution. Performance of the proposed method is tested with Chi-Square detector and Largest Normalised Residual test. Results of simulations based on real-world data, up to 5000 bus system, demonstrate the effectiveness of the proposed framework over traditional bad data detection in presence of false data injection attack.
机译:随着电力系统成熟到智能电网实体中,它们对在线监测和控制系统行为的新挑战。观察到蓬勃发展的网络攻击类,如果未识别,则可能导致电网和系统停电的不稳定性。在这项研究中,作者使用基于弛豫的解决方案提出了基于组合的Kalman滤光片的异常检测器。用Chi-Square探测器和最大的标准化残余测试测试所提出的方法的性能。基于现实世界数据的仿真结果,高达5000个总线系统,展示了在存在虚假数据注入攻击的情况下在传统的不良数据检测方面提出框架的有效性。

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