Journal of University of Chinese Academy of Sciences >
Quantum dynamic password authentication scheme
Received date: 2012-01-09
Revised date: 2012-03-23
Online published: 2013-01-15
In a classical dynamic password authentication system(CDPAS), the password changes with time to get the 'one time pad' security. The hash function is computationally secure. Thus the CDPAS is not statistically secure. We propose a quantum dynamic password scheme. It compresses the attack time period and resist the replay attack. It is statistically secure and significantly enhances the reusing times of the seed compared to the CDPAS.
LI Zhao , YANG Li , ZHOU Rui-Rui . Quantum dynamic password authentication scheme[J]. Journal of University of Chinese Academy of Sciences, 2013 , 30(1) : 131 -136 . DOI: 10.7523/j.issn.1002-1175.2013.01.020
[1] Das M L, Saxena A, Gulati V P. A dynamic ID-based remote user authentication scheme[J]. IEEE Transactions on Consumer Electronics, 2004, 50(2): 629-631.
[2] David M R, Mihir B, David N, et al. HOTP an HMAC-based one-time password algorithm[S/OL]. RFC 4226, 2005.[2012-01-03]. https://rsync.tools.ietf.org/html/rfc4226.
[3] Shi B S, Li J, Liu J M, et al. Quantum key distribution and quantum authentication based on entangled state[J]. Physics Letters A, 2001, 281: 83-87.
[4] Mihara T. Quantum identification schemes with entanglements[J]. Physical Review A, 2002, 65(5): 052326/1-4.
[5] Wang J, Zhang Q, Tang C J. Multiparty simultaneous quantum identity authentication based on entanglement swapping[J]. Chinese Physics Letters, 2006, 23: 2360-2363.
[6] Biham E, Huttner B, Mor T. Quantum cryptographic network based on quantum memories[J]. Physical Review A, 1996, 54(4): 2651-2658.
[7] Gao F, Qin S J, Guo F Z, et al. Cryptanalysis of quantum secure direct communication and authentication scheme via bell states[J]. Chinese Physics Letters, 2011, 28(2):020303/1-4.
[8] Yang Y G, Wen Q Y. Economical multiparty simultaneous quantum identity authentication based on Greenberger-Horne-Zeilinger states[J]. Chinese Physics B, 2009, 18(08): 3233-3237.
[9] Dusek M, Haderka O, Hendrych M, et al. Quantum identification system[J]. Physical Review A, 1999, 60(1): 149-156.
[10] Zeng G H, Zhang W P. Identity verification in quantum key distribution[J]. Physical Review A, 2000, 61: 022305/1-5.
[11] Shi B S, Li J, Liu J M, et al. Quantum direct communication with authentication[J]. Physical Review A, 2006, 73: 042305/1-5.
[12] Ljunggren D, Bourennane M, Karlsson A. Authority-based user authentication in quantum key distribution[J]. Physical Review A, 2000, 62: 022305/1-7.
[13] He G Q, Zeng G H. A quantum identification scheme based on polarization modulation[J]. Chinese Physics B, 2005, 14(03): 541-545.
[14] Zhang Z S, Zeng G H, Zhou N R, et al. Quantum identity authentication based on ping-pong technique for photons[J]. Physics Letters A, 2006, 356:199-205.
[15] Lee H, Lim J, Yang H. Quantum direct communication with authentication[J]. Physical Review A, 2006, 73: 042305/1-5.
[16] Curty M, Santos D J, Perez E, et al. Qubit authentication[J]. Physical Review A, 2002, 66: 022301/1-7.
[17] Wang T Y, Wen Q Y, Zhu F C. Secure authentication of classical messages with single photons[J]. Chinese Physics B, 2009, 18(08): 3189-3192.
[18] Pan J Y, Yang L. Quantum identification based on one-time pad[J]. Journal of Graduate University of Chinese Academy of Sciences, 2012, 29(2): 277-281(in Chinese). 潘江游, 杨理. 基于一次一密的量子身份识别方案[J]. 中国科学院研究生院学报, 2012, 29(2): 277-281.
[19] Fujiwara A. Quantum channel identification problem[J]. Physical Review A, 2001, 63: 042304/1-4.
[20] Zeng G H. Quantum authentication without lost of quantum channel[C]//ChinCrypt'2004. Wuxi:Science Press, 2004: 141-146.
[21] Bennett C H, Brassard G. Quantum cryptography: public-key distribution and coin tossing[C]//Proceedings of the IEEE International Conference on Computers, Systems and Signal Processing. New York:IEEE,1984: 175-179.
[22] Long G L, Liu X S. Theoretically efficient high capacity quantum key distribution scheme[J]. Physical Review A, 2002, 65(3): 032302/1-3.
[23] Williamson M, Vlatkovedral. Eavesdropping on practical quantum cryptography[J]. Journal of Modern Optics, 2003, 50(13): 1989-2011.
[24] Yang L, Wu L A, Liu S H. On the Breidbart eavesdropping problem of the extended BB84 QKD protocol [J]. Acta Physica Sinica, 2002, 51(5): 0961-0965 (in Chinese). 杨理, 吴令安, 刘颂豪. QKD扩展BB84协议的Breidbart基窃听问题[J]. 物理学报, 2002, 51(5): 0961-0965.
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