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ADDP: Anomaly Detection for DTU Based on Power Consumption Side-Channel

机译:ADDP:基于功耗侧通道的DTU异常检测

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With the rapid development of information technology and the Internet of Things, the common information technologies are being applied to the power grid. It brings about the tremendous improvement in productivity, yet breaks down the safety barrier, which makes the power grid a popular target for attacks. The Distribution Terminal Unit (DTU) is a critical part of the power grid because of the acts as access points in the substation and controls the grid equipment. However, DTUs are vulnerable to different types of attacks, which can cause significant property loss or even casualties To monitor the operation of DTU, we proposed a real-time monitoring system by analyzing the side-channel information of power consumption. To validate this idea, we design 3 types of attacks and collect the power information separately, then we choose representational power features and machine learning algorithm for detecting those attacks. We validate that it is feasible to detect attacks and achieves a detection accuracy above 99%.
机译:随着信息技术和物联网的飞速发展,常见的信息技术正在应用于电网。它带来了生产率的巨大提高,但打破了安全屏障,使电网成为攻击的流行目标。配电终端单元(DTU)是电网的关键部分,因为它充当变电站中的接入点并控制电网设备。但是,DTU容易受到不同类型的攻击,可能会造成重大财产损失甚至人员伤亡。为了监控DTU的运行情况,我们通过分析功耗的边信道信息提出了一种实时监控系统。为了验证该想法,我们设计了3种攻击类型并分别收集电源信息,然后选择具有代表性的电源功能和机器学习算法来检测这些攻击。我们验证了检测攻击是可行的,并且检测精度达到了99%以上。

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