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Toward an Applied Cyber Security Solution in IoT-Based Smart Grids: An Intrusion Detection System Approach

机译:迈向基于IoT的智能电网中的应用网络安全解决方案:入侵检测系统方法

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We present an innovative approach for a Cybersecurity Solution based on the Intrusion Detection System to detect malicious activity targeting the Distributed Network Protocol (DNP3) layers in the Supervisory Control and Data Acquisition (SCADA) systems. As Information and Communication Technology is connected to the grid, it is subjected to both physical and cyber-attacks because of the interaction between industrial control systems and the outside Internet environment using IoT technology. Often, cyber-attacks lead to multiple risks that affect infrastructure and business continuity; furthermore, in some cases, human beings are also affected. Because of the traditional peculiarities of process systems, such as insecure real-time protocols, end-to-end general-purpose ICT security mechanisms are not able to fully secure communication in SCADA systems. In this paper, we present a novel method based on the DNP3 vulnerability assessment and attack model in different layers, with feature selection using Machine Learning from parsed DNP3 protocol with additional data including malware samples. Moreover, we developed a cyber-attack algorithm that included a classification and visualization process. Finally, the results of the experimental implementation show that our proposed Cybersecurity Solution based on IDS was able to detect attacks in real time in an IoT-based Smart Grid communication environment.
机译:我们提出了一种基于入侵检测系统的网络安全解决方案的创新方法,以检测针对监控和数据采集(SCADA)系统中的分布式网络协议(DNP3)层的恶意活动。当信息和通信技术连接到网格时,由于工业控制系统和使用IoT技术的外部Internet环境之间的交互,因此它受到物理和网络攻击。通常,网络攻击会导致多种风险,从而影响基础架构和业务连续性。此外,在某些情况下,人类也会受到影响。由于过程系统的传统特性,例如不安全的实时协议,端到端通用ICT安全机制无法完全保护SCADA系统中的通信。在本文中,我们提出了一种基于DNP3漏洞评估和不同层攻击模型的新颖方法,其中使用了从解析的DNP3协议中使用机器学习的功能选择以及包括恶意软件样本在内的其他数据。此外,我们开发了一种包含分类和可视化过程的网络攻击算法。最后,实验实施的结果表明,我们提出的基于IDS的网络安全解决方案能够在基于IoT的智能电网通信环境中实时检测攻击。

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