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A Malicious Attack Correlation Analysis Method Integrating Interaction Process of Source-Grid-Load System

机译:一种集成源极电压系统交互过程的恶意攻击相关分析方法

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The key to deal with cyber security threats of gird is making full use of cyber and electrical information, and improving the ability of self-adaptation and automation for malicious attack event identification. In this Paper, the malicious attack correlation analysis method integrating the interaction process of Source-Grid-Load System (SGLS) is proposed. Firstly, the electrical events and information events in the source network are uniformly preprocessed. Secondly, based on the neural network model, the fused events are trained and classified according to the attack scenarios. Thirdly, combined with electrical abnormal events, the genetic algorithm's initialization scheme, the selection operator and cross genetic probability are improved. The association rules for different attack scenarios are automatically generated based on the classification results. Finally, the proposed method is verified to be effective in the Source-Grid-Load simulation experiment system. The method utilizes the abnormal events of the cyber layer and the electrical layer comprehensively, and improves the identification accuracy of cyber attacks, realizes automatic event classification and correlation rule generation, showing great potential in engineering application.
机译:处理网络安全威胁的关键是充分利用网络和电气信息,并提高了自适应和自动化对恶意攻击事件识别的能力。本文提出了集成源极集合(SGLS)的相互作用过程的恶意攻击相关分析方法。首先,源网络中的电气事件和信息事件均匀预处理。其次,基于神经网络模型,根据攻击方案培训和分类融合事件。第三,与电异常事件相结合,遗传算法的初始化方案,选择操作员和跨遗传概率得到改善。基于分类结果自动生成不同攻击场景的关联规则。最后,验证了所提出的方法在源极载荷仿真实验系统中有效。该方法综合地利用网络层和电层的异常事件,提高了网络攻击的识别准确性,实现了自动事件分类和相关规律生成,在工程应用中显示出很大的潜力。

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