网络物理电力系统中的网络攻击检测:一种基于机器学习的方法

A. Vedant, A. Yadav, S. Sharma, O. Thite, A. Sheikh
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引用次数: 0

摘要

由于数字化和智能设备的加入,传统的电力系统已经转变为信息和能量流紧密相连的网络物理电力系统。CPPS采用普适传感技术、精密测量技术和鲁棒信息处理技术,实现电网的可见性和可控性。然而,由于大量的智能设备访问和频繁的信息交换,CPPS比以往任何单一结构的系统都更容易受到攻击。在网络子系统的帮助下,恶意软件和黑客可以瞄准CPPS,这对提供能源的物理系统来说是致命的。鉴于此,本文重点研究了针对CPPS的网络攻击的检测与识别。本文提出了一种基于决策树的入侵检测系统(IDS),用于对CPPS发起的不同类型的网络攻击进行分类。针对不同类型的网络攻击,计算了准确率、精密度、召回率和F1分数等评价指标,以显示所提出的入侵检测系统的有效性。最后,从结果可以看出,所提出的IDS能够成功识别不同测试场景下针对CPPS的各种网络攻击。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Detecting Cyber Attacks in a Cyber-physical Power System: A Machine Learning Based Approach
As a result of digitalization and the addition of intelligent devices, the conventional power system has been reformed into a cyberphysical power system (CPPS) with a close interlink between information and energy flow. The CPPS uses pervasive sensing technology, sophisticated measurement technology, and robust information processing technology to achieve the observability and controllability of the electric grid. However, CPPS is more prone to attack than any prior single-structured system due to the high volume of smart device accesses and frequent exchange of information. With the help of the cyber subsystem, malware and hackers can target the CPPS, which can then be fatal to the physical system that supplies energy. In view of this, the paper focuses on detecting and identifying the cyber attacks on the CPPS. The paper proposes an intrusion detection system (IDS) employing a decision tree for classifying different types of cyber attacks launched on the CPPS. The evaluation metrics such as accuracy, precision, recall, and F1 score are computed for different types of cyber attacks to show the effectiveness of the proposed IDS. Finally, from the results, it can be claimed that the proposed IDS is successful in identifying the various cyber attacks on CPPS in different test scenarios.
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