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Improving cyber-security of smart grid systems via anomaly detection and linguistic domain knowledge

机译:通过异常检测和语言领域知识改进智能电网系统的网络安全

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The planned large scale deployment of smart grid network devices will generate a large amount of information exchanged over various types of communication networks. The implementation of these critical systems will require appropriate cyber-security measures. A network anomaly detection solution is considered in this paper. In common network architectures multiple communications streams are simultaneously present, making it difficult to build an anomaly detection solution for the entire system. In addition, common anomaly detection algorithms require specification of a sensitivity threshold, which inevitably leads to a tradeoff between false positives and false negatives rates. In order to alleviate these issues, this paper proposes a novel anomaly detection architecture. The designed system applies a previously developed network security cyber-sensor method to individual selected communication streams allowing for learning accurate normal network behavior models. In addition, an Interval Type-2 Fuzzy Logic System (IT2 FLS) is used to model human background knowledge about the network system and to dynamically adjust the sensitivity threshold of the anomaly detection algorithms. The IT2 FLS was used to model the linguistic uncertainty in describing the relationship between various network communication attributes and the possibility of a cyber attack. The proposed method was tested on an experimental smart grid system demonstrating enhanced cyber-security.
机译:智能电网网络设备的计划大规模部署将产生在各种类型的通信网络上交换的大量信息。这些关键系统的实施需要适当的网络安全措施。本文考虑了网络异常检测解决方案。在公共网络架构中,同时存在多个通信流,使得难以为整个系统构建异常检测解决方案。此外,常见的异常检测算法需要规范灵敏度阈值,这不可避免地导致错误阳性和假阴性率之间的权衡。为了缓解这些问题,本文提出了一种新的异常检测架构。设计的系统将先前开发的网络安全网络传感器方法应用于各个所选通信流,允许学习准确的正常网络行为模型。此外,间隔类型-2模糊逻辑系统(IT2FLS)用于模拟关于网络系统的人类背景知识,并动态调整异常检测算法的灵敏度阈值。 IT2FLS用于模拟描述各种网络通信属性与网络攻击可能性之间的关系的语言不确定性。在实验智能电网系统上测试了所提出的方法,证明了增强的网络安全。

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