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Ensemble and Gossip Learning-Based Framework for Intrusion Detection System in Vehicle-to-Everything Communication
Muhammad Nadeem Ali1, Muhammad Imran1, Ihsan Ullah1
1Department of Software & Communications Engineering, Hongik University, Sejong-si 30016, Republic of Korea.
This study introduces novel methods for detecting denial-of-service (DoS) attacks in autonomous vehicles. Ensemble learning and gossip learning achieve high detection rates, enhancing intelligent transportation system security.
Area of Science:
- Cybersecurity in Intelligent Transportation Systems
- Machine Learning for Network Security
Background:
- Autonomous vehicles rely on vehicle-to-everything (V2X) communication for operation.
- V2X communication is vulnerable to cyber-attacks, particularly denial-of-service (DoS) attacks.
- DoS attacks can severely disrupt autonomous vehicle functionality and safety.
Purpose of the Study:
- To develop and evaluate methods for detecting DoS attacks in autonomous vehicles.
- To address DoS detection in both infrastructure-based (V2X Mode 3) and infrastructureless (V2X Mode 4) scenarios.
- To compare the proposed methods against existing security schemes.
Main Methods:
- Proposed an ensemble learning (EL) approach for DoS attack detection in V2X Mode 3 (infrastructure-based).
- Introduced a gossip learning (GL)-based approach for DoS attack detection in V2X Mode 4 (infrastructureless).
- Utilized the UNSW-NB15 dataset for evaluating the performance of both EL and GL methods.
Main Results:
- The ensemble learning approach achieved a DoS attack detection efficiency of 98.82%.
- The gossip learning approach demonstrated a DoS attack detection efficiency of 99.16%.
- Both proposed methods outperformed existing DoS detection schemes.
Conclusions:
- Ensemble learning and gossip learning are effective strategies for detecting DoS attacks in autonomous vehicle communication.
- The proposed methods offer robust security solutions for intelligent transportation systems.
- These findings contribute to the advancement of secure autonomous driving technologies.
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