TY - GEN
T1 - Efficient public trace and revoke from standard assumptions
AU - Agrawal, Shweta
AU - Bhattacherjee, Sanjay
AU - Phan, Duong Hieu
AU - Stehle, Damien
AU - Yamada, Shota
N1 - Publisher Copyright:
© 2017 author(s).
PY - 2017/10/30
Y1 - 2017/10/30
N2 - We provide efficient constructions for trace-and-revoke systems with public traceability in the black-box confirmation model. Our constructions achieve adaptive security, are based on standard assumptions and achieve significant efficiency gains compared to previous constructions. Our constructions rely on a generic transformation from inner product functional encryption (IPFE) schemes to traceand-revoke systems. Our transformation requires the underlying IPFE scheme to only satisfy a very weak notion of security-the attacker may only request a bounded number of random keys-in contrast to the standard notion of security where she may request an unbounded number of arbitrarily chosen keys. We exploit the much weaker security model to provide a new construction for bounded collusion and random key IPFE from the learning with errors assumption (LWE), which enjoys improved efficiency compared to the scheme of Agrawal et al. [CRYPTO'16]. Together with IPFE schemes from Agrawal et al., we obtain trace and revoke from LWE, Decision Diffie Hellman and Decision Composite Residuosity.
AB - We provide efficient constructions for trace-and-revoke systems with public traceability in the black-box confirmation model. Our constructions achieve adaptive security, are based on standard assumptions and achieve significant efficiency gains compared to previous constructions. Our constructions rely on a generic transformation from inner product functional encryption (IPFE) schemes to traceand-revoke systems. Our transformation requires the underlying IPFE scheme to only satisfy a very weak notion of security-the attacker may only request a bounded number of random keys-in contrast to the standard notion of security where she may request an unbounded number of arbitrarily chosen keys. We exploit the much weaker security model to provide a new construction for bounded collusion and random key IPFE from the learning with errors assumption (LWE), which enjoys improved efficiency compared to the scheme of Agrawal et al. [CRYPTO'16]. Together with IPFE schemes from Agrawal et al., we obtain trace and revoke from LWE, Decision Diffie Hellman and Decision Composite Residuosity.
KW - Inner-product functional encryption
KW - Public traceability
KW - Trace-and-revoke
U2 - 10.1145/3133956.3134041
DO - 10.1145/3133956.3134041
M3 - Conference contribution
AN - SCOPUS:85041435779
T3 - Proceedings of the ACM Conference on Computer and Communications Security
SP - 2277
EP - 2293
BT - CCS 2017 - Proceedings of the 2017 ACM SIGSAC Conference on Computer and Communications Security
PB - Association for Computing Machinery
T2 - 24th ACM SIGSAC Conference on Computer and Communications Security, CCS 2017
Y2 - 30 October 2017 through 3 November 2017
ER -