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AI-Driven Intrusion Detection Systems (IDS) on the ROAD Dataset: A Comparative Analysis for Automotive Controller Area Network (CAN)

  • Institut Polytechnique de Paris
  • Ampere Software Technology
  • University of Bologna

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Résumé

The integration of digital devices in modern vehicles has revolutionized automotive technology, enhancing safety and the overall driving experience. The Controller Area Network (CAN) bus is a central system for managing in-vehicle communication between the electronic control units (ECUs). However, the CAN protocol poses security challenges due to inherent vulnerabilities, lacking encryption and authentication, which, combined with an expanding attack surface, necessitates robust security measures. In response to this challenge, numerous Intrusion Detection Systems (IDS) have been developed and deployed. Nonetheless, an open, comprehensive, and realistic dataset to test the effectiveness of such IDSs remains absent in the existing literature. This paper addresses this gap by considering the latest ROAD dataset, containing stealthy and sophisticated injections. The methodology involves dataset labeling and the implementation of both state-of-the-art deep learning models and traditional machine learning models to show the discrepancy in performance between the datasets most commonly used in the literature and the ROAD dataset, a more realistic alternative.

langue originaleAnglais
titreCSCS 2024 - Proceedings of the 2024 Cyber Security in CarS Workshop, Co-Located with
Sous-titreCCS 2024
EditeurAssociation for Computing Machinery, Inc
Pages39-49
Nombre de pages11
ISBN (Electronique)9798400712326
Les DOIs
étatPublié - 20 nov. 2024
Evénement1st Cyber Security in CarS Workshop, CSCS 2024 - Salt Lake City, États-Unis
Durée: 14 oct. 202418 oct. 2024

Série de publications

NomCSCS 2024 - Proceedings of the 2024 Cyber Security in CarS Workshop, Co-Located with: CCS 2024

Une conférence

Une conférence1st Cyber Security in CarS Workshop, CSCS 2024
Pays/TerritoireÉtats-Unis
La villeSalt Lake City
période14/10/2418/10/24

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