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Context aware intrusion detection for building automation systems

机译:楼宇自动化系统的上下文感知入侵检测

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摘要

The Internet of Things (loT) will connect not only computers and mobile devices, but also smart cities, buildings, and homes, as well as electrical grids, gas, and water networks, automobiles, airplanes, etc. IoT will lead to extensive interconnection between Building Automation Systems (BAS) communication protocols and the Internet. The connection to Internet and public networks increases significantly the risk of the BAS networks being attacked, since there's a significant lack of detection and defensive mechanisms for BAS networks. In this paper, we present a framework for a context-aware intrusion detection of a widely deployed Building Automation and Control network. We developed runtime models for service interactions and functionality patterns by modeling the heterogeneous information that is continuously acquired from building assets into a novel BAS context aware data structure. Our IDS performs anomaly based behavior analysis to accurately detect anomalous events triggered by cyber-attacks or any functional failure. An attack classification and severity analysis of detected attacks allow our IDS to automatically launch protective countermeasures. We evaluate our approach in the Smart Building testbed developed at the University of Arizona Center for Cloud and Autonomic Computing, by launching several cyber-attacks that exploit the generic vulnerabilities of BACnet protocol. (C) 2019 Elsevier Ltd. All rights reserved.
机译:物联网(loT)不仅可以连接计算机和移动设备,还可以连接智能城市,建筑物和家庭,以及电网,天然气和水网络,汽车,飞机等。物联网将导致广泛的互连楼宇自动化系统(BAS)通信协议和Internet之间的连接。与Internet和公共网络的连接大大增加了BAS网络受到攻击的风险,因为BAS网络的检测和防御机制非常缺乏。在本文中,我们提出了一个用于广泛部署的楼宇自动化和控制网络的上下文感知入侵检测的框架。我们通过对异构信息进行建模,从而开发了用于服务交互和功能模式的运行时模型,这些信息是从资产中不断获取的,并将其构建成新颖的BAS上下文感知数据结构。我们的IDS进行基于异常的行为分析,以准确检测由网络攻击或任何功能故障触发的异常事件。攻击分类和检测到的攻击的严重性分析使我们的IDS能够自动启动保护性对策。我们通过启动利用BACnet协议通用漏洞的几项网络攻击,在亚利桑那大学云与自主计算中心开发的智能建筑测试平台中评估了我们的方法。 (C)2019 Elsevier Ltd.保留所有权利。

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