Atom: A Stream Cipher with Double Key Filter

IF 1.7 Q3 COMPUTER SCIENCE, SOFTWARE ENGINEERING
S. Banik, Andrea Caforio, Takanori Isobe, Fukang Liu, W. Meier, Kosei Sakamoto, Santanu Sarkar
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引用次数: 4

Abstract

It has been common knowledge that for a stream cipher to be secure against generic TMD tradeoff attacks, the size of its internal state in bits needs to be at least twice the size of the length of its secret key. In FSE 2015, Armknecht and Mikhalev however proposed the stream cipher Sprout with a Grain-like architecture, whose internal state was equal in size with its secret key and yet resistant against TMD attacks. Although Sprout had other weaknesses, it germinated a sequence of stream cipher designs like Lizard and Plantlet with short internal states. Both these designs have had cryptanalytic results reported against them. In this paper, we propose the stream cipher Atom that has an internal state of 159 bits and offers a security of 128 bits. Atom uses two key filters simultaneously to thwart certain cryptanalytic attacks that have been recently reported against keystream generators. In addition, we found that our design is one of the smallest stream ciphers that offers this security level, and we prove in this paper that Atom resists all the attacks that have been proposed against stream ciphers so far in literature. On the face of it, Atom also builds on the basic structure of the Grain family of stream ciphers. However, we try to prove that by including the additional key filter in the architecture of Atom we can make it immune to all cryptanalytic advances proposed against stream ciphers in recent cryptographic literature.
带双密钥过滤器的流密码
众所周知,要使流密码免受通用的TMD折衷攻击,其内部状态的比特大小至少需要是其密钥长度的两倍。然而,在FSE 2015中,Armknecht和Mikhalev提出了具有类似grain架构的流密码Sprout,其内部状态与其密钥大小相等,并且可以抵抗TMD攻击。尽管Sprout还有其他弱点,但它孕育了一系列具有短内部状态的流密码设计,如Lizard和Plantlet。这两种设计都有针对它们的密码分析结果报告。本文提出了一种内部状态为159位,安全性为128位的流密码Atom。Atom同时使用两个密钥过滤器来阻止最近报道的针对密钥流生成器的某些密码分析攻击。此外,我们发现我们的设计是提供此安全级别的最小流密码之一,并且我们在本文中证明了Atom可以抵抗迄今为止文献中针对流密码提出的所有攻击。从表面上看,Atom也是建立在Grain系列流密码的基本结构之上的。然而,我们试图证明,通过在Atom架构中包含额外的密钥过滤器,我们可以使它免受最近密码学文献中针对流密码提出的所有密码分析进展的影响。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
IACR Transactions on Symmetric Cryptology
IACR Transactions on Symmetric Cryptology Mathematics-Applied Mathematics
CiteScore
5.50
自引率
22.90%
发文量
37
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