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A Scheme for Distributed Vehicle Authentication and Revocation in Decentralized VANETs
Mid Sweden University, Faculty of Science, Technology and Media, Department of Computer and Electrical Engineering (2023-).
Mid Sweden University, Faculty of Science, Technology and Media, Department of Computer and Electrical Engineering (2023-).
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2024 (English)In: IEEE Access, E-ISSN 2169-3536, Vol. 12, p. 68648-68667, article id 10529992Article in journal (Refereed) Published
Abstract [en]

Vehicular Ad-Hoc Networks (VANETs) offer enhanced road safety, efficient traffic management, and improved vehicle connectivity while dealing with privacy and security challenges in public communication. In these networks, authentication mechanisms are mandatory to establish trust among communicating entities, such as vehicle-to-vehicle (V2V) and vehicle-to-infrastructure (V2I), without losing identity and location-based privacy. The prevailing conventional authentication mechanisms frequently depend on a centralized trust authority (CA) to ensure the mutual verifiability of transmitted messages. Nevertheless, in scenarios where the density of vehicles within the network is notably high, an overwhelming influx of authentication requests may result in a communication bottleneck at the CA, leading to a single point of failure. This paper proposes a novel distributed authentication scheme in a decentralized VANET with multiple independent CAs connected to multiple local inspectors to eliminate a single point of failure. Furthermore, prior solutions lack the capability to immediately revoke a disputed vehicle that is transmitting malicious messages in the network. In this regard, the proposed scheme also facilitates an immediate revocation of a disputed sender to prevent other vehicles from further receiving malicious messages. As vehicles share time-sensitive data for driving assistance, our scheme minimizes the computation and communication costs for V2I key sharing and direct V2V authenticated message sharing significantly compared to previously proposed schemes. Using comparatively lightweight elliptic curve cryptography and eliminating the direct involvement of CAs in the authentication process, we have reduced the overall delays and achieved a maximum of ≈ 3.9 times faster V2I authenticated key sharing, and a maximum of ≈ 7.5 times faster V2V message sharing compared to state-of-the-art bilinear pairing-based protocols. A comprehensive efficiency analysis validates our scheme's ability to outperform time-sensitive responses, such as sending and receiving an alert within nearly 4 milliseconds. 

Place, publisher, year, edition, pages
Institute of Electrical and Electronics Engineers (IEEE) , 2024. Vol. 12, p. 68648-68667, article id 10529992
Keywords [en]
Elliptic Curve Digital Signatures (ECDSA), privacy-preserving authentication, revocation, security attacks on VANET, single point of failure, Vehicular Ad-Hoc Networks (VANETs)
National Category
Communication Systems
Identifiers
URN: urn:nbn:se:miun:diva-51393DOI: 10.1109/ACCESS.2024.3400530ISI: 001227313300001Scopus ID: 2-s2.0-85193230332OAI: oai:DiVA.org:miun-51393DiVA, id: diva2:1861434
Available from: 2024-05-28 Created: 2024-05-28 Last updated: 2025-09-25
In thesis
1. Privacy-Preserved Authentication & Communication in Vehicular Ad-Hoc Networks
Open this publication in new window or tab >>Privacy-Preserved Authentication & Communication in Vehicular Ad-Hoc Networks
2025 (English)Doctoral thesis, comprehensive summary (Other academic)
Abstract [en]

As a key component of Intelligent Transportation Systems (ITS), Vehicular Ad hoc Networks (VANETs) enable real-time data exchange, traffic optimization, and smarter mobility. However, large-scale deployment raises critical security and privacy concerns, including message integrity, user anonymity, and protection against unauthorized access. This thesis proposes lightweight cryptographic protocols for secure and privacy-preserving authentication in both centralized and decentralized VANETs. The solutions are designed for real-time efficiency, scalability, and strong security. A primary contribution is the development of a localized task management system that significantly reduces authentication latency in centralized VANETs, achieving vehicle verification within a fraction of a millisecond. In decentralized settings, the proposed protocols employ advanced cryptographic mechanisms to establish distributed trust without incurring high computational overhead, including elliptic curve digital signatures (ECDSA) and non-interactive zero-knowledge proofs (NIZKPs). These techniques provide strong, provable security while preserving user anonymity during authentication and message exchange. To enhance group communication in VANETs, the thesis introduces efficient group key-sharing schemes that support secure, direct interactions among vehicles. Furthermore, a novel localized revocation mechanism immediately removes malicious vehicles from the network, addressing a key limitation in existing frameworks. This ensures fast, secure authentication for time-sensitive message transfers while limiting the propagation of malicious data. The thesis also investigates the proposed protocol’s performance under dynamic conditions such as high traffic density, large-scale decentralized deployments, and remote authentication scenarios. It introduces an innovative batch verification technique that supports fault-tolerant Vehicle-to-Vehicle (V2V) authentication, capable of maintaining high throughput while accurately identifying faulty messages even when the invalid message rate reaches 42%. Empirical evaluations demonstrate that the proposed solutions outperform existing schemes in terms of latency, computational efficiency, and robustness. The protocols complete single vehicle verifications within 5 milliseconds, making them suitable for dense and time-critical VANET environments. Additionally, all proposed methods align with prevailing vehicular communication standards such as IEEE WAVE and 3GPP C-V2X, ensuring practical applicability. In summary, this research advances the state of the art in VANET security by delivering scalable, privacy-preserving, and efficient authentication protocols that meet the demands of real-time vehicular communication systems.

Place, publisher, year, edition, pages
Sundsvall: Mid Sweden University, 2025. p. 70
Series
Mid Sweden University doctoral thesis, ISSN 1652-893X ; 425
National Category
Communication Systems
Identifiers
urn:nbn:se:miun:diva-54060 (URN)978-91-90017-15-9 (ISBN)
Public defence
2025-04-29, M108, Holmgatan 10, Sundsvall, 10:15 (English)
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Supervisors
Note

Vid tidpunkten för disputationen var följande delarbeten opublicerade: delarbete 4 inskickat, delarbete 5 accepterat.

At the time of the doctoral defence the following papers were unpublished: paper 4 submitted, paper 5 accepted.

Available from: 2025-03-25 Created: 2025-03-24 Last updated: 2025-09-25Bibliographically approved

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Naskar, SujashZhang, TingtingGidlund, Mikael

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