|
|
Metric for Defences Against Fault Attacks of Block Ciphers |
OU Qingyu LUO Fang YE Weiwei ZHOU Xueguang |
(Department of Information Security, Naval University of Engineering, Wuhan 430033, China) |
|
|
Abstract A detailed analysis of the fault features for the block cipher is performed, and an analysis framework for propagation of faults is proposed. Furthermore, a security evaluation methodology with single fault injection or multi fault injection is presented. The experiment results show that the change of the key space for the block cipher, using different fault attacks, can be charactered effectively and the ability of the fault-resistant can be presented well.
|
Received: 28 May 2016
Published: 19 April 2017
|
|
Fund: The National Natural Science Foundation of China (61202338) |
Corresponding Authors:
LUO Fang
E-mail: ouqingyv@163.com
|
|
|
|
[1] |
DASSANCE F and VENELLI A. Combined fault and side-channel attacks on the AES key shedule[C]. Fault Diagnosis and Tolerance in Cryptography(FDTC), Leuven, Belgium, 2012: 63-71.
|
[2] |
THOMAS F, ELIANE J, VICTOR L, et al. Fault attacks on AES with faulty ciphertexts only[C]. Fault Diagnosis and Tolerance in Cryptography(FDTC), Santa Barbara, CA, 2013: 108-118.
|
[3] |
NAHID F G, BILGIDAY Y, MOSTAFA T, et al. Differential fault intensity analysis[C]. Fault Diagnosis and Tolerance in Cryptography(FDTC), Busan, 2014: 71-78.
|
[4] |
RONAN L, GUILLAUME R, JEAN M D, et al. A DFA on AES based on the entropy of error distributions[C]. Fault Diagnosis and Tolerance in Cryptography(FDTC), Leuven, Belgium, 2012: 34-43.
|
[5] |
ABHISHEK C, BODHISATWA M, and DEBDEEP M. Combined side-channel and fault analysis attack on protected grain family of stream ciphers[OL]. http://eprint.iacr.org/ 2015/602.pdf, 2015.
|
[6] |
REN Y, WANG A, and WU L. Transient-steady effect attack on block ciphers[C]. Cryptographic Hardware and Embedded Systems(CHES), Saint Malo, France, 2015: 433-450.
|
[7] |
MA K, LIANG H, and WU K. Homomorphic property-based concurrent error detection of RSA: A countermeasure to fault attack[J]. IEEE Transactions on Computers, 2012, 61(4): 1040-1049.
|
[8] |
BRIAIS S, CIORANESCO J M, DANGER J L, et al. Random active shield[C]. Fault Diagnosis and Tolerance in Cryptography(FDTC), Leuven, Belgium, 2012: 103-114.
|
[9] |
SIKHAR P, ABHISHEK C, and Debdeep M. Fault tolerant infective countermeasure for AES[J]. Security, Privacy and Applied Cryptography Engineering, 2015, 935(4): 190-209.
|
[10] |
PEI L and YUNSI F. Faulty clock detection for crypto circuits against differential fault analysis attack[OL]. http:// eprint.iacr.org.org/2014/883.pdf, 2014.
|
[11] |
陈弘毅, 白国强, 徐秋亮, 等. 密码芯片和侧信道攻击发展研究[R]. 2009-2010密码学学科发展报告, 2010: 126-149.
|
|
CHEN Hongyi, BAI Guoqiang, XU Qiuliang, et al. Advances in cryptographic integrated circuits and side-channel attacks[R]. 2009-2010 Report on Advances in Cryptology, 2010: 126-149.
|
[12] |
AMIEL F, CLAVIER C, and Tunstall M. Fault analysis of DPA-resistant algorithms[C]. Fault Diagnosis and Tolerance in Cryptography(FDTC), Yokohama, Japan, 2006: 223-236.
|
[13] |
BLOMER J and SEIFERT J P. Fault based cryptanalysis of the Advanced Encryption Standard (AES)[C]. Financial Cryptography, Heidelberg, 2003: 162-181.
|
[14] |
ROCHE T, LOMNE V, and KHALFALLAH K. Combined fault and side-channel attack on protected implementations of AES[C]. Smart Card Research and Advanced Applications, Leuven, Belgium, 2011: 65-83.
|
[15] |
JOYE M, QUISQUATER J J, Yen S M, et al. Observability analysis-detecting when improved cryptosystems fail[C]. Topics in Cryptology(CT-RSA), Heidelberg, 2002: 17-29.
|
[16] |
JOAN D and VINCENT R. The Design of Rijndael AES: The Advanced Encryption Standard[M]. Berlin, Heidelberg, Springer-Verlag, 2002: 123.
|
[17] |
CHRISTOPHE C, BENEDIKT G, and INGRID V. Fault analysis study of IDEA[OL]. https://securewww.esat. kuleuven.be/cosic/publications/article-1024, 2008.
|
|
|
|