DocumentCode :
1403456
Title :
Enhanced Privacy ID: A Direct Anonymous Attestation Scheme with Enhanced Revocation Capabilities
Author :
Brickell, Ernie ; Li, Jiangtao
Author_Institution :
Intel Archit. Group, Intel Corp., Hillsboro, OR, USA
Volume :
9
Issue :
3
fYear :
2012
Firstpage :
345
Lastpage :
360
Abstract :
Direct Anonymous Attestation (DAA) is a scheme that enables the remote authentication of a Trusted Platform Module (TPM) while preserving the user´s privacy. A TPM can prove to a remote party that it is a valid TPM without revealing its identity and without linkability. In the DAA scheme, a TPM can be revoked only if the DAA private key in the hardware has been extracted and published widely so that verifiers obtain the corrupted private key. If the unlinkability requirement is relaxed, a TPM suspected of being compromised can be revoked even if the private key is not known. However, with the full unlinkability requirement intact, if a TPM has been compromised but its private key has not been distributed to verifiers, the TPM cannot be revoked. Furthermore, a TPM cannot be revoked from the issuer, if the TPM is found to be compromised after the DAA issuing has occurred. In this paper, we present a new DAA scheme called Enhanced Privacy ID (EPID) scheme that addresses the above limitations. While still providing unlinkability, our scheme provides a method to revoke a TPM even if the TPM private key is unknown. This expanded revocation property makes the scheme useful for other applications such as for driver´s license. Our EPID scheme is efficient and provably secure in the same security model as DAA, i.e., in the random oracle model under the strong RSA assumption and the decisional Diffie-Hellman assumption.
Keywords :
data privacy; private key cryptography; EPID scheme; RSA assumption; TPM private key; corrupted private key; decisional Diffie-Hellman assumption; direct anonymous attestation scheme; enhanced privacy ID scheme; enhanced revocation capabilities; expanded revocation property; random oracle model; remote authentication; trusted platform module; unlinkability requirement; user privacy preservation; Authentication; Hardware; Licenses; Privacy; Protocols; Public key; Security and protection; anonymity; cryptographic protocols; privacy; trusted computing.;
fLanguage :
English
Journal_Title :
Dependable and Secure Computing, IEEE Transactions on
Publisher :
ieee
ISSN :
1545-5971
Type :
jour
DOI :
10.1109/TDSC.2011.63
Filename :
6109283
Link To Document :
بازگشت