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Cybersecurity in Robotic Autonomous Vehicles

Cybersecurity in Robotic Autonomous Vehicles Machine Learning Applications to Detect Cyber Attacks

Hardback (21 Mar 2025)

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Publisher's Synopsis

Cybersecurity in Robotic Autonomous Vehicles introduces a novel intrusion detection system (IDS) specifically designed for AVs, which leverages data prioritisation in CAN IDs to enhance threat detection and mitigation. It offers a pioneering intrusion detection model for AVs that uses machine and deep learning algorithms.

Presenting a new method for improving vehicle security, the book demonstrates how the IDS has incorporated machine learning and deep learning frameworks to analyse CAN bus traffic and identify the presence of any malicious activities in real time with high level of accuracy. It provides a comprehensive examination of the cybersecurity risks faced by AVs with a particular emphasis on CAN vulnerabilities and the innovative use of data prioritisation within CAN IDs.

The book will interest researchers and advanced undergraduate students taking courses in cybersecurity, automotive engineering, and data science. Automotive industry and robotics professionals focusing on Internet of Vehicles and cybersecurity will also benefit from the contents.

Book information

ISBN: 9781041006404
Publisher: CRC Press
Imprint: CRC Press
Pub date:
DEWEY: 629.046
DEWEY edition: 23
Language: English
Number of pages: 104
Weight: 252g
Height: 144mm
Width: 224mm
Spine width: 13mm