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Papers

Tree-based Intelligent Intrusion Detection System in Internet of Vehicles

2019-10-18 · Li Yang, Abdallah Moubayed, Ismail Hamieh, Abdallah Shami

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.

📄 PDF Abstract BibTeX arXiv:1910.08635

Code (1)

Western-OC2-Lab/Intrusion-Detection-System-Using-Machine-Learning 공식 구현

Tasks

Autonomous VehiclesEnsemble Learningfeature selectionIntrusion Detection

Methods 이 논문이 사용한 방법론

Feature Selection Feature selection, also known as variable selection, attribute selection or variable subset selection, is the process of selecting a subset of relevant features (variables,…

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