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Embedded implementation of Edwards curve- and extended Jacobi quartic curve-based cryptosystems

机译:基于Edwards曲线和扩展Jacobi四次曲线的密码系统的嵌入式实现

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This research addresses the computationally-effective implementation of cryptographic protocols based on elliptic curves, and targets in particular cryptosystems that should be hosted on embedded programmable processors. In principle, the implementation of Elliptic Curve Cryptography (ECC) requires one to deal with different design options, which stem from the available degrees of freedom: elliptic curve family, coordinate system, and point multiplication procedure. On the other hand, theoretical studies already proved that exist only a few setups leading to computational efficient implementations. The goal of present paper is to analyze from an applicative point of view such setups, which mainly involve two specific families of elliptic curves: Edwards curves and extend Jacobi quartic curves. The presented experimental session shows a few interesting outcomes; first, ECC schemes implemented by using either Edwards curves or extended Jacobi quartic curves can obtain remarkable performances in terms of computational efficiency also on low-cost, low-resources processors. Second, the experiments showed that in some cases the number of Fp operations is not enough to accurately estimate the overall performance of an ECC-based cryptosystem.
机译:这项研究致力于解决基于椭圆曲线的加密协议在计算上的有效实现,并针对应托管在嵌入式可编程处理器上的特定加密系统。原则上,椭圆曲线密码术(ECC)的实现需要一种处理不同设计方案的方法,这些方案取决于可用的自由度:椭圆曲线族,坐标系和点乘法过程。另一方面,理论研究已经证明,仅存在几种导致高效计算实现的设置。本文的目的是从应用的角度分析此类设置,这些设置主要涉及两个特定的椭圆曲线族:Edwards曲线和扩展Jacobi四次曲线。提出的实验会议显示了一些有趣的结果;首先,通过使用爱德华兹曲线或扩展的雅可比四次曲线实施的ECC方案在低成本,低资源的处理器上也可以在计算效率方面获得出色的性能。其次,实验表明,在某些情况下,Fp操作的数量不足以准确估计基于ECC的密码系统的整体性能。

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