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Key Compression for Isogeny-Based Cryptosystems

机译:基于异构的密码系统的密钥压缩

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摘要

We present a method for key compression in quantum-resistant isogeny-based cryptosystems, which reduces storage and transmission costs of per-party public information by a factor of two, with no effect on the security level of the scheme. We achieve this reduction by compressing both the representation of an elliptic curve, and torsion points on said curve.Compression of the elliptic curve is achieved by associating each j-invariant to a canonical choice of elliptic curve, and the torsion points will be represented as linear combinations with respect to a canonical choice of basis for this subgroup. This method of compressing public information can be applied to numerous isogeny-based protocols, such as key exchange, zero-knowledge identification, and public-key encryption.The details of utilizing compression for each of these cryptosystems is explained.We provide implementation results showing the computational cost of key compression and decompression at various security levels. Our results show that isogeny-based cryptosystems achieve the smallest possible key sizes among all existing families of post-quantum cryptosystems at practical security levels.
机译:我们提出了一种在基于量子抗同性的密码系统中进行密钥压缩的方法,该方法将每方公共信息的存储和传输成本降低了两倍,而对方案的安全级别没有影响。我们通过压缩椭圆曲线的表示形式和所述曲线上的扭转点来实现这种减小。通过将每个j变量与椭圆曲线的规范选择相关联来实现椭圆曲线的压缩,并且扭转点将表示为关于该子组基础的标准选择的线性组合。这种压缩公共信息的方法可以应用于众多基于异构的协议,例如密钥交换,零知识识别和公共密钥加密,并详细说明了每种密码系统使用压缩的细节。各种安全级别的密钥压缩和解压缩的计算成本。我们的结果表明,在实际安全级别上,基于等位基因的密码系统在所有现有的后量子密码系统系列中实现了最小的密钥大小。

著录项

  • 作者

    Leonardi Christopher;

  • 作者单位
  • 年度 2016
  • 总页数
  • 原文格式 PDF
  • 正文语种 en
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