posted on 2019-04-29, 11:07authored byJ Zhang, J Cui, H Zhong, Z Chen, L Liu
Existing security and identity-based vehicular communication protocols used in Vehicular Ad-hoc Networks (VANETs) to achieve conditional privacy-preserving mostly rely on an ideal hardware device called tamper-proof device (TPD) equipped in vehicles. Achieving fast authentication during the message verification process is usually challenging in such strategies and further they suffer performance constraints from resulting overheads. To address such challenges, this paper proposes a novel Chinese remainder theorem (CRT)-based conditional privacy-preserving authentication scheme for securing vehicular authentication. The proposed protocol only requires realistic TPDs, and eliminates the need for pre-loading the master key onto the vehicle's TPDs. Chinese remainder theorem can dynamically assist the trusted authorities (TAs) whilst generating and broadcasting new group keys to the vehicles in the network. The proposed scheme solves the leakage problem during side channel attacks, and ensures higher level of security for the entire system. In addition, the proposed scheme avoids using the bilinear pairing operation and map-to-point hash operation during the authentication process, which helps achieving faster verification even under increasing number of signature. Moreover, the security analysis shows that our proposed scheme is secure under the random oracle model and the performance analysis shows that our proposed scheme is efficient in reducing computation and communication overheads.
Funding
The work was supported by the National Natural Science Foundation of China (No.61872001, No.61572001,
No.61702005), the Open Fund of Key Laboratory of Embedded System and Service Computing (Tongji University),
Ministry of Education (No.ESSCKF2018-03), the Open Fund
for Discipline Construction, Institute of Physical Science and
Information Technology, Anhui University and the Excellent
Talent Project of Anhui University.
History
Citation
IEEE Transactions on Dependable and Secure Computing, 2019
Author affiliation
/Organisation/COLLEGE OF SCIENCE AND ENGINEERING/Department of Informatics
Version
AM (Accepted Manuscript)
Published in
IEEE Transactions on Dependable and Secure Computing
Publisher
Institute of Electrical and Electronics Engineers (IEEE)