智能电网环境下wsn的低功耗网络安全机制

G. S. Dhunna, I. Al-Anbagi
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引用次数: 5

摘要

智能电网网络安全是世界各地公用事业和政府成功和大规模适应智能电网的关键因素之一。智能电网的实现主要依赖于其组件的高度分布式传感和通信功能,如无线传感器网络(wsn)、相量测量单元(pmu)和其他保护装置。这种分布式特性和大量连接设备是在智能电网中实施网络安全的主要挑战。例如,北美电力可靠性公司(NERC)发布了关键基础设施保护(CIP)标准(CIP-002至CIP-009),以定义关键电网基础设施的网络安全要求。然而,NERC CIP标准并没有规定不同通信技术(如wsn、光纤网络和其他网络类型)的网络安全。由于传感器设备的资源有限,在无线传感器网络中实现安全机制是一项具有挑战性的任务。无线传感器网络的安全机制不仅要关注降低传感器设备的功耗,还要保持智能电网应用所需的高可靠性和高吞吐量。本文提出了一种适用于智能电网监控应用的无线传感器网络网络安全机制。我们的机制可以以高效节能的方式检测和隔离智能电网环境中的各种攻击,如拒绝睡眠、伪造和重放攻击。仿真结果表明,该机制在满足NERC CIP要求的同时,优于现有的技术。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
A low power cybersecurity mechanism for WSNs in a smart grid environment
Smart Grid cybersecurity is one of the key ingredients for successful and wide scale adaptation of the Smart Grid by utilities and governments around the world. The implementation of the Smart Grid relies mainly on the highly distributed sensing and communication functionalities of its components such as Wireless Sensor Networks (WSNs), Phasor Measurement Units (PMUs) and other protection devices. This distributed nature and the high number of connected devices are the main challenges for implementing cybersecurity in the smart grid. As an example, the North American Electric Reliability Corporation (NERC) issued the Critical Infrastructure Protection (CIP) standards (CIP-002 through CIP-009) to define cybersecurity requirements for critical power grid infrastructure. However, NERC CIP standards do not specify cybersecurity for different communication technologies such as WSNs, fiber networks and other network types. Implementing security mechanisms in WSNs is a challenging task due to the limited resources of the sensor devices. WSN security mechanisms should not only focus on reducing the power consumption of the sensor devices, but they should also maintain high reliability and throughput needed by Smart Grid applications. In this paper, we present a WSN cybersecurity mechanism suitable for smart grid monitoring application. Our mechanism can detect and isolate various attacks in a smart grid environment, such as denial of sleep, forge and replay attacks in an energy efficient way. Simulation results show that our mechanism can outperform existing techniques while meeting the NERC CIP requirements.
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