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An Anomaly-Based IDS for Detecting Attacks in RPL-Based Internet of Things

机译:基于异常的IDS在基于RPL的物联网中检测攻击

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The Internet of Things (IoT) is a concept that allows the networking of various objects of everyday life and communications on the Internet without human interaction. The IoT consists of Low-Power and Lossy Networks (LLN) which for routing use a special protocol called Routing over Low-Power and Lossy Networks (RPL). Due to the resource-constrained nature of RPL networks, they may be exposed to a variety of internal attacks. Neighbor attack and DIS attack are the specific internal attacks at this protocol. This paper presents an anomaly-based lightweight Intrusion Detection System (IDS) based on threshold values for detecting attacks on the RPL protocol. The results of the simulation using Cooja show that the proposed model has a very high True Positive Rate (TPR) and in some cases, it can be 100%, while the False Positive Rate (FPR) is very low. The results show that the proposed model is fully effective in detecting attacks and applicable to large-scale networks.
机译:物联网(IoT)是一个概念,它使人们可以将日常生活中的各种对象和Internet上的通信进行联网,而无需人工干预。物联网由低功耗有损网络(LLN)组成,用于路由的特殊协议称为“低功耗有损网络路由(RPL)”。由于RPL网络的资源受限性质,它们可能会遭受各种内部攻击。邻居攻击和DIS攻击是此协议下的特定内部攻击。本文提出了一种基于阈值的基于异常的轻量级入侵检测系统(IDS),用于检测对RPL协议的攻击。使用Cooja进行的仿真结果表明,所提出的模型具有很高的真实肯定率(TPR),在某些情况下可以达到100%,而错误肯定率(FPR)却很低。结果表明,该模型在检测攻击中完全有效,适用于大规模网络。

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