Chebyshev Polynomial-Based Fog Computing Scheme Supporting Pseudonym Revocation for 5G-Enabled Vehicular Networks

Author:

Al-Mekhlafi Zeyad Ghaleb1ORCID,Al-Shareeda Mahmood A.2ORCID,Manickam Selvakumar2ORCID,Mohammed Badiea Abdulkarem1ORCID,Alreshidi Abdulrahman1ORCID,Alazmi Meshari1ORCID,Alshudukhi Jalawi Sulaiman1ORCID,Alsaffar Mohammad1ORCID,Alsewari Abdulrahman3ORCID

Affiliation:

1. College of Computer Science and Engineering, University of Ha’il, Ha’il 81481, Saudi Arabia

2. National Advanced IPv6 Centre (NAv6), Universiti Sains Malaysia, Penang 11800, Malaysia

3. School of Computing and Digital Technology, Birmingham City University, Birmingham B4 7XG, UK

Abstract

The privacy and security of the information exchanged between automobiles in 5G-enabled vehicular networks is at risk. Several academics have offered a solution to these problems in the form of an authentication technique that uses an elliptic curve or bilinear pair to sign messages and verify the signature. The problem is that these tasks are lengthy and difficult to execute effectively. Further, the needs for revoking a pseudonym in a vehicular network are not met by these approaches. Thus, this research offers a fog computing strategy for 5G-enabled automotive networks that is based on the Chebyshev polynomial and allows for the revocation of pseudonyms. Our solution eliminates the threat of an insider attack by making use of fog computing. In particular, the fog server does not renew the signature key when the validity period of a pseudonym-ID is about to end. In addition to meeting privacy and security requirements, our proposal is also resistant to a wide range of potential security breaches. Finally, the Chebyshev polynomial is used in our work to sign the message and verify the signature, resulting in a greater performance cost efficiency than would otherwise be possible if an elliptic curve or bilinear pair operation had been employed.

Funder

The Scientific Research Deanship at the University of Ha’il, Saudi Arabia

Publisher

MDPI AG

Subject

Electrical and Electronic Engineering,Computer Networks and Communications,Hardware and Architecture,Signal Processing,Control and Systems Engineering

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1. Fog computing and blockchain technology based certificateless authentication scheme in 5G-assisted vehicular communication;Peer-to-Peer Networking and Applications;2024-08-31

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3. Intelligent Routing Approaches Based on Ant Colony Optimization for Dynamic Internet of Things Network;Recent Advances in Electrical & Electronic Engineering (Formerly Recent Patents on Electrical & Electronic Engineering);2024-07-19

4. Multi-factor Authentication Framework for Secured Data Access in Cloud Computing;Recent Advances in Electrical & Electronic Engineering (Formerly Recent Patents on Electrical & Electronic Engineering);2024-07-18

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