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Performance Analysis of Reversible Finite Field Arithmetic Architectures Over GF(p) and GF(2(m)) in Elliptic Curve Cryptography

机译:椭圆曲线密码学对GF(p)和GF(2(m))的可逆有限域算术架构的性能分析

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Elliptic curve cryptosystems (ECC) are becoming more and more popular and are included in many standards, as they offer high security strength when compared with other conventional public-key cryptosystems, for the same key length. But the security strength of hardware implementations of ECC is challenged by side channel attacks (SCA) such as power analysis. Reversible logic circuits ideally consume zero energy, which serves as the motivation to implement cryptographic algorithms against power analysis attacks. This paper proposes two new hardware architectures for performing montgomery multiplication in GF(p) and GF(2(m)), as they are the power consuming operations in ECC. The two architectures are optimized to reduce the hardware cost and they are then implemented in reversible logic with reduced number of quantum cost. In this work, the reversible logic synthesis is performed with Toffoli family of reversible gates. The performance metrics of all the multipliers are analyzed and properly tabulated. Scalar multiplication on elliptic curve points, which is the core operation used in every elliptic curve cryptosystem, has been implemented in reversible logic by using the proposed reversible montgomery multipliers.
机译:椭圆曲线密码系统(ECC)越来越受欢迎,并已包含在许多标准中,因为与其他传统的公钥密码系统相比,对于相同的密钥长度,椭圆曲线密码系统具有很高的安全强度。但是,ECC硬件实现的安全强度受到诸如功率分析之类的侧信道攻击(SCA)的挑战。可逆逻辑电路理想情况下消耗零能量,这是实现针对功耗分析攻击的加密算法的动机。本文提出了两种新的硬件体系结构,它们在GF(p)和GF(2(m))中执行蒙哥马利乘法,因为它们是ECC中的功耗操作。对这两种体系结构进行了优化,以降低硬件成本,然后以可逆的逻辑实现它们,并减少了数量的量子成本。在这项工作中,可逆逻辑综合是使用Toffoli系列可逆门进行的。所有乘数的性能指标均已分析并正确制成表格。椭圆曲线点上的标量乘法是每个椭圆曲线密码系统中使用的核心操作,已通过使用建议的可逆蒙哥马利乘法器以可逆逻辑实现。

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