Literature DB >> 32927594

Design and Implementation of High-Performance ECC Processor with Unified Point Addition on Twisted Edwards Curve.

Md Mainul Islam1, Md Selim Hossain2, Moh Khalid Hasan1, Md Shahjalal1, Yeong Min Jang1.   

Abstract

With the swift evolution of wireless technologies, the demand for the Internet of Things (IoT) security is rising immensely. Elliptic curve cryptography (ECC) provides an attractive solution to fulfill this demand. In recent years, Edwards curves have gained widespread acceptance in digital signatures and ECC due to their faster group operations and higher resistance against side-channel attacks (SCAs) than that of the Weierstrass form of elliptic curves. In this paper, we propose a high-speed, low-area, simple power analysis (SPA)-resistant field-programmable gate array (FPGA) implementation of ECC processor with unified point addition on a twisted Edwards curve, namely <span class="Chemical">Edwards25519. Efficient hardware architectures for modular multiplication, modular inversion, unified point addition, and elliptic curve point multiplication (ECPM) are proposed. To reduce the computational complexity of ECPM, the ECPM scheme is designed in projective coordinates instead of affine coordinates. The proposed ECC processor performs 256-bit point multiplication over a prime field in 198,715 clock cycles and takes 1.9 ms with a throughput of 134.5 kbps, occupying only 6543 slices on Xilinx Virtex-7 FPGA platform. It supports high-speed public-key generation using fewer hardware resources without compromising the security level, which is a challenging requirement for IoT security.

Entities:  

Keywords:  elliptic curve cryptography (ECC); elliptic curve point multiplication (ECPM); simple power analysis (SPA) attacks; twisted Edwards curve; unified point addition

Year:  2020        PMID: 32927594      PMCID: PMC7571177          DOI: 10.3390/s20185148

Source DB:  PubMed          Journal:  Sensors (Basel)        ISSN: 1424-8220            Impact factor:   3.576


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