Big Data against Security Threats: The SPEAR Intrusion Detection System

Dimitrios Pliatsios, P. Sarigiannidis, Konstantinos E. Psannis, S. Goudos, V. Vitsas, I. Moscholios
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引用次数: 3

Abstract

The environmental concerns, the limited availability of conventional energy sources, the integration of alternative energy sources and the increasing number of power-demanding appliances change the way electricity is generated and distributed. Smart Grid (SG) is an appealing concept, which was developed in response to the emerging issues of electricity generation and distribution. By leveraging the latest advancements of Information and Communication Technologies (ICT), it offers significant benefits to energy providers, retailers and consumers. Nevertheless, SG is vulnerable to cyber attacks, that could cause critical economic and ecological consequences. Traditional Intrusion Detection Systems (IDSs) are becoming less efficient in detecting and mitigating cyberattacks, due to their limited capabilities of analyzing the exponentially increasing volume of network traffic. In this paper, we present the Secure and PrivatE smArt gRid (SPEAR) platform, which features a Big Data enabled IDS that timely detects and identifies cyber attacks against SG components. In order to validate the efficiency of the SPEAR platform regarding the protection of critical infrastructure, we installed the platform in a small wind power plant.
面对安全威胁的大数据:SPEAR入侵检测系统
环境问题、传统能源的有限供应、替代能源的综合利用以及越来越多的用电器具改变了电力的产生和分配方式。智能电网(SG)是一个很有吸引力的概念,是为了应对发电和配电的新问题而发展起来的。通过利用信息和通信技术(ICT)的最新进展,它为能源供应商、零售商和消费者提供了显著的好处。然而,SG很容易受到网络攻击,这可能会造成严重的经济和生态后果。传统的入侵检测系统(ids)在检测和减轻网络攻击方面的效率越来越低,因为它们对呈指数增长的网络流量的分析能力有限。在本文中,我们介绍了安全和私有智能电网(SPEAR)平台,该平台具有支持大数据的IDS,可以及时检测和识别针对SG组件的网络攻击。为了验证SPEAR平台在保护关键基础设施方面的效率,我们在一个小型风力发电厂安装了该平台。
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