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A Statistical Framework for Detecting Electricity Theft Activities in Smart Grid Distribution Networks

机译:用于检测智能电网分配网络中电力盗窃活动的统计框架

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Electricity distribution networks have undergone rapid change with the introduction of smart meter technology, that have advanced sensing and communications capabilities, resulting in improved measurement and control functions. However, the same capabilities have enabled various cyber-attacks. A particular attack focuses on electricity theft, where the attacker alters (increases) the electricity consumption measurements recorded by the smart meter of other users, while reducing her own measurement. Thus, such attacks, since they maintain the total amount of power consumed at the distribution transformer are hard to detect by techniques that monitor mean levels of consumption patterns. To address this data integrity problem, we develop statistical techniques that utilize information on higher order statistics of electricity consumption and thus are capable of detecting such attacks and also identify the users (attacker and victims) involved. The models work both for independent and correlated electricity consumption streams. The results are illustrated on synthetic data, as well as emulated attacks leveraging real consumption data.
机译:随着智能电表技术的引入,电力分配网络经历了快速的变化,具有先进的感应和通信能力,导致测量和控制功能改善。但是,相同的功能使能够各种网络攻击。特定攻击侧重于电力盗窃,攻击者改变(增加)其他用户的智能仪表记录的电力消耗测量,同时减少了自己的测量。因此,这种攻击,因为它们维持在分配变压器处所消耗的总功率量很难通过监测消费模式的平均水平的技术来检测。为了解决这一数据完整性问题,我们开发利用电力消耗高阶统计信息的统计技术,因此能够检测此类攻击,并识别所涉及的用户(攻击者和受害者)。模型适用于独立和相关的电力消耗流。结果在合成数据上示出,以及利用实际消费数据的模拟攻击。

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