Rhythmic Keccak: SCA Security and Low Latency in HW

Author:

Arribas Victor,Bilgin Begül,Petrides George,Nikova Svetla,Rijmen Vincent

Abstract

Glitches entail a great issue when securing a cryptographic implementation in hardware. Several masking schemes have been proposed in the literature that provide security even in the presence of glitches. The key property that allows this protection was introduced in threshold implementations as non-completeness. We address crucial points to ensure the right compliance of this property especially for low-latency implementations. Specifically, we first discuss the existence of a flaw in DSD 2017 implementation of Keccak by Gross et al. in violation of the non-completeness property and propose a solution. We perform a side-channel evaluation on the first-order and second-order implementations of the proposed design where no leakage is detected with up to 55 million traces. Then, we present a method to ensure a non-complete scheme of an unrolled implementation applicable to any order of security or algebraic degree of the shared function. By using this method we design a two-rounds unrolled first-order Keccak-

Publisher

Universitatsbibliothek der Ruhr-Universitat Bochum

Subject

General Earth and Planetary Sciences,General Environmental Science

Cited by 5 articles. 订阅此论文施引文献 订阅此论文施引文献,注册后可以免费订阅5篇论文的施引文献,订阅后可以查看论文全部施引文献

1. A Low-Randomness First-Order Masked Xoodyak;2023 IEEE International Symposium on Hardware Oriented Security and Trust (HOST);2023-05-01

2. Optimized threshold implementations: securing cryptographic accelerators for low-energy and low-latency applications;Journal of Cryptographic Engineering;2021-11-25

3. A Lightweight Implementation of Saber Resistant Against Side-Channel Attacks;Lecture Notes in Computer Science;2021

4. Guards in action: First-order SCA secure implementations of KETJE without additional randomness;Microprocessors and Microsystems;2019-11

5. Trade-offs in Protecting Keccak Against Combined Side-Channel and Fault Attacks;Constructive Side-Channel Analysis and Secure Design;2019

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