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Tree-Based Intelligent Intrusion Detection System in Internet of Vehicles

机译:基于树的智能入侵检测系统在车辆互联网上

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The use of autonomous vehicles (AVs) is a promising technology in Intelligent Transportation Systems (ITSs) to improve safety and driving efficiency. Vehicle-to-everything (V2X) technology enables communication among vehicles and other infrastructures. However, AVs and Internet of Vehicles (IoV) are vulnerable to different types of cyber-attacks such as denial of service, spoofing, and sniffing attacks. In this paper, an intelligent intrusion detection system (IDS) is proposed based on tree-structure machine learning models. The results from the implementation of the proposed intrusion detection system on standard data sets indicate that the system has the ability to identify various cyber-attacks in the AV networks. Furthermore, the proposed ensemble learning and feature selection approaches enable the proposed system to achieve high detection rate and low computational cost simultaneously.
机译:自动车辆(AVS)的使用是智能交通系统(ITS)的有希望的技术,以提高安全性和驾驶效率。车辆到一切(V2X)技术可以在车辆和其他基础设施之间进行沟通。然而,AVS和车辆(IOV)易受不同类型的网络攻击,例如拒绝服务,欺骗和嗅探攻击。本文提出了一种基于树结构机器学习模型的智能入侵检测系统(ID)。在标准数据集上实施建议的入侵检测系统的结果表明系统能够识别AV网络中的各种网络攻击。此外,所提出的集合学习和特征选择方法使得提出的系统能够同时实现高检测率和低计算成本。

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