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Efficient Masked S-Boxes Processing: A Step Forward

机译:高效的蒙版S盒处理:前进的一步

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To defeat side-channel attacks, the implementation of block cipher algorithms in embedded devices must include dedicated counter-measures. To this end, security designers usually apply secret sharing techniques and build masking schemes to securely operate an shared data. The popularity of this approach can be explained by the fact that it enables formal security proofs. The construction of masking schemes thwarting higher-order side-channel attacks, which correspond to a powerful adversary able to exploit the leakage of the different shares, has been a hot topic during the last decade. Several solutions have been proposed, usually at the cost of significant performance overheads. As a result, the quest for efficient masked S-box implementations is still ongoing. In this paper, we focus on the scheme proposed by Carlet et al at FSE 2012, and latter improved by Roy and Vivek at CHES 2013. This scheme is today the most efficient one to secure a generic S-box at any order. By exploiting an idea introduced by Coron et al at FSE 2013, we show that Carlet et al's scheme can still be improved for S-boxes with input dimension larger than four. We obtain this result thanks to a new definition for the addition-chain exponentiation used during the masked S-box processing. For the AES and DES S-boxes, we show that our improvement leads to significant efficiency gains.
机译:为了克服边信道攻击,嵌入式设备中块密码算法的实现必须包括专门的对策。为此,安全设计人员通常会应用秘密共享技术并构建屏蔽方案,以安全地操作共享数据。这种方法的普及可以通过其启用正式安全证明的事实来解释。在过去的十年中,构建屏蔽方案以阻止高阶边信道攻击,这种方案对应于能够利用不同份额泄漏的强大对手。已经提出了几种解决方案,通常以显着的性能开销为代价。结果,对有效的掩蔽S-box实现的追求仍在进行中。在本文中,我们重点关注Carlet等人在FSE 2012上提出的方案,后来在Roy和Vivek在CHES 2013上对其进行了改进。今天,该方案是在任何顺序上保护通用S-box的最有效方案。通过利用Coron等人在FSE 2013上提出的想法,我们表明Carlet等人的方案仍然可以针对输入尺寸大于4的S盒进行改进。由于蒙版S-box处理过程中使用的加法链幂的新定义,我们获得了此结果。对于AES和DES S-box,我们证明了我们的改进可以显着提高效率。

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