TY - JOUR
T1 - An efficient CPPA scheme for intelligent transportation networks
AU - Alanazi, Faisal
AU - Al-Shareeda, Sarah
AU - Ozguner, Fusun
N1 - Publisher Copyright:
© 2019 Elsevier B.V.
PY - 2019/10
Y1 - 2019/10
N2 - To defend intelligent transportation networks’ security and privacy, existing standards employ the Public Key Infrastructure (PKI) authentication framework. However, the high associated PKI computation and communication overheads break ground for utilizing an alternative candidate, the Identity-based Cryptographic (IBC) authentication. Most of the underlined calculations of the IBC approaches rely on the elliptic curves’ pairing operation. Since the pairing function is a complex and computation intensive operation, several studies have developed pairingless IBC authentications and applied the hardware security of tamper-proof devices to secure the cryptographic parameters at user-end. Motivated by this trend, we compose a Pairingless Modified Efficient Conditional Privacy-Preserving Authentication Scheme (PME-CPPAS). Our scheme omits the utilization of the complex pairing operation as well as the demand for expensive tamper-proof devices. When analyzing the performance of the presented design, its effectiveness, in comparison to the available pairing-based and pairingless approaches, is proved in terms of computation complexity, communication overhead, and storage overhead. PME-CPPAS achieves less signing computational cost and comparable verification computational performance.
AB - To defend intelligent transportation networks’ security and privacy, existing standards employ the Public Key Infrastructure (PKI) authentication framework. However, the high associated PKI computation and communication overheads break ground for utilizing an alternative candidate, the Identity-based Cryptographic (IBC) authentication. Most of the underlined calculations of the IBC approaches rely on the elliptic curves’ pairing operation. Since the pairing function is a complex and computation intensive operation, several studies have developed pairingless IBC authentications and applied the hardware security of tamper-proof devices to secure the cryptographic parameters at user-end. Motivated by this trend, we compose a Pairingless Modified Efficient Conditional Privacy-Preserving Authentication Scheme (PME-CPPAS). Our scheme omits the utilization of the complex pairing operation as well as the demand for expensive tamper-proof devices. When analyzing the performance of the presented design, its effectiveness, in comparison to the available pairing-based and pairingless approaches, is proved in terms of computation complexity, communication overhead, and storage overhead. PME-CPPAS achieves less signing computational cost and comparable verification computational performance.
KW - Authentication
KW - Bilinear pairings
KW - Conditional privacy
KW - Elliptic curve cryptography
KW - Identity-based signature
KW - Intelligent transportation/vehicular networks
KW - Tamper-proof device
UR - http://www.scopus.com/inward/record.url?scp=85068187295&partnerID=8YFLogxK
U2 - 10.1016/j.pmcj.2019.101041
DO - 10.1016/j.pmcj.2019.101041
M3 - Article
AN - SCOPUS:85068187295
SN - 1574-1192
VL - 59
JO - Pervasive and Mobile Computing
JF - Pervasive and Mobile Computing
M1 - 101041
ER -