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A detection model for anomalies in smart grid with sensor network

机译:具有传感器网络的智能电网异常的检测模型

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In this paper, we present a model to monitor the smart grid for any anomalous/malicious activity or attack. The model uses machine learning techniques to detect and classify anomalies from the sensory observations. It is helpful for ensuring the security and stability of the smart grid. The model relies on the real time data collected using wireless sensor networks as an overlay network on the power distribution grid. The overlay network of wireless sensors /devices uses a cluster topology at each tower to collect local information about the tower that is augmented by the linear chain topology to connect to the base station (usually at the substation). Preliminary results show that our classification mechanism is promising and is able to detect anomalous events that may cause a threat to the smart grid.
机译:在本文中,我们展示了一种模型来监控智能电网以用于任何异常/恶意活动或攻击。该模型使用机器学习技术来检测和分类来自感官观察的异常。它有助于确保智能电网的安全性和稳定性。该模型依赖于使用无线传感器网络作为配电网格上的覆盖网络收集的实时数据。无线传感器/设备的覆盖网络在每个塔架上使用群集拓扑,以收集有关由线性链拓扑结构增强的塔的本地信息以连接到基站(通常在变电站处)。初步结果表明,我们的分类机制是有前途的,能够检测可能对智能电网造成威胁的异常事件。

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