Highly Optimized Montgomery Multiplier for SIKE Primes on FPGA

被引:20
作者
Elkhatib, Rami [1 ]
Azarderakhsh, Reza [1 ]
Mozaffari-Kermani, Mehran [2 ]
机构
[1] Florida Atlantic Univ, CEECS Dept, Boca Raton, FL 33431 USA
[2] Univ S Florida, Dept CSE, Tampa, FL 33620 USA
来源
2020 IEEE 27TH SYMPOSIUM ON COMPUTER ARITHMETIC (ARITH) | 2020年
关键词
hardware architectures; isogeny-based cryptography; Montgomery multiplication; post-quantum cryptography; SIKE; HELLMAN KEY EXCHANGE; CRYPTOGRAPHIC PROCESSOR;
D O I
10.1109/ARITH48897.2020.00018
中图分类号
TP39 [计算机的应用];
学科分类号
081203 ; 0835 ;
摘要
New primes were proposed for Supersingular Isogeny Key Encapsulation (SIKE) in NIST standardization process of Round 2 after further cryptanalysis research showed that the security levels of the initial primes chosen were over-estimated [1], [2]. In this paper, we develop a highly optimized F-p Montgomery multiplication algorithm and architecture that further utilizes the special form of SIKE prime compared to previous implementations available in the literature. We then implement SIKE for all Round 2 NIST security levels (SIKEp434 for NIST security level 1, SIKEp503 for NIST security level 2, SIKEp610 for NIST security level 3, and SIKEp751 for NIST security level 5) on Xilinx Virtex 7 using the proposed multiplier. Our best implementation (NIST security level 1) runs 29% faster and occupies 30% less hardware resources in comparison to the leading counterpart available in the literature [3] and implementations for other security levels achieved similar improvement.
引用
收藏
页码:64 / 71
页数:8
相关论文
共 25 条
[1]  
Adj G., 2018, 2018313 CRYPT EPRINT
[2]   Fast and Flexible Hardware Support for ECC Over Multiple Standard Prime Fields [J].
Alrimeih, Hamad ;
Rakhmatov, Daler .
IEEE TRANSACTIONS ON VERY LARGE SCALE INTEGRATION (VLSI) SYSTEMS, 2014, 22 (12) :2661-2674
[3]  
Azarderakhsh R., 2019, SUBMISSION NIST POST
[4]  
Azarderakhsh Reza., 2016, Proceedings of the 3rd ACM International Workshop on ASIA Public-Key Cryptography, AsiaPKC'16, page, P1, DOI DOI 10.1145/2898420.2898421
[5]   High-radix montgomery modular exponentiation on reconfigurable hardware [J].
Blum, T ;
Paar, C .
IEEE TRANSACTIONS ON COMPUTERS, 2001, 50 (07) :759-764
[6]   A high-performance elliptic curve cryptographic processor for general curves over GF(p) based on a systolic arithmetic unit [J].
Chen, Gang ;
Bai, Guoqiang ;
Chen, Hongyi .
IEEE TRANSACTIONS ON CIRCUITS AND SYSTEMS II-EXPRESS BRIEFS, 2007, 54 (05) :412-416
[7]   Efficient Compression of SIDH Public Keys [J].
Costello, Craig ;
Jao, David ;
Longa, Patrick ;
Naehrig, Michael ;
Renes, Joost ;
Urbanik, David .
ADVANCES IN CRYPTOLOGY - EUROCRYPT 2017, PT I, 2017, 10210 :679-706
[8]   Towards quantum-resistant cryptosystems from supersingular elliptic curve isogenies [J].
De Feo, Luca ;
Jao, David ;
Plut, Jerome .
JOURNAL OF MATHEMATICAL CRYPTOLOGY, 2014, 8 (03) :209-247
[9]   A public-key cryptographic processor for RSA and ECC [J].
Eberle, H ;
Gura, N ;
Shantz, SLC ;
Gupta, V ;
Rarick, L ;
Sundaran, S .
15TH IEEE INTERNATIONAL CONFERENCE ON APPLICATION-SPECIFIC SYSTEMS, ARCHITECTURES AND PROCESSORS, PROCEEDINGS, 2004, :98-110
[10]   Optimized Algorithms and Architectures for Montgomery Multiplication for Post-quantum Cryptography [J].
El Khatib, Rami ;
Azarderakhsh, Reza ;
Mozaffari-Kermani, Mehran .
CRYPTOLOGY AND NETWORK SECURITY (CANS 2019), 2019, 11829 :83-98