Hardware Acceleration for High-Volume Operations of CRYSTALS-Kyber and CRYSTALS-Dilithium

Author:

Carril Xavier1ORCID,Kardaris Charalampos1ORCID,Ribes-González Jordi2ORCID,Farràs Oriol2ORCID,Hernandez Carles3ORCID,Kostalabros Vatistas1ORCID,González-Jiménez Joel Ulises4ORCID,Moretó Miquel1ORCID

Affiliation:

1. Barcelona Supercomputing Center, Spain

2. Universitat Rovira i Virgili, Spain

3. Universitat Politècnica de València, Spain

4. Universitat Politècnica de Catalunya, Spain

Abstract

Many high-demand digital services need to perform several cryptographic operations, such as key exchange or security credentialing, in a concise amount of time. In turn, the security of some of these cryptographic schemes is threatened by advances in quantum computing, as quantum computer could break their security in the near future. Post-Quantum Cryptography (PQC) is an emerging field that studies cryptographic algorithms that resist such attacks. The National Institute of Standards and Technology (NIST) has selected the CRYSTALS-Kyber Key Encapsulation Mechanism and the CRYSTALSDilithium Digital Signature algorithm as primary PQC standards. In this paper, we present FPGA-based hardware accelerators for high-volume operations of both schemes. We apply High-Level Synthesis (HLS) for hardware optimization, leveraging a batch processing approach to maximize the memory throughput, and applying custom HLS logic to specific algorithmic components. Using reconfigurable field-programmable gate arrays (FPGAs), we show that our hardware accelerators achieve speedups between 3x and 9x over software baseline implementations, even over ones leveraging CPU vector architectures. Furthermore, the methods used in this study can also be extended to the new CRYSTALS-based NIST FIPS drafts, ML-KEM and ML-DSA, with similar acceleration results.

Publisher

Association for Computing Machinery (ACM)

Reference48 articles.

1. KaLi: A Crystal for Post-Quantum Security Using Kyber and Dilithium

2. Roberto Avanzi, Joppe Bos, Léo Ducas, Eike Kiltz, Tancrède Lepoint, Vadim Lyubashevsky, John M. Schanck, Peter Schwabe, Gregor Seiler, and Damien Stehlé. 2021. Crystals-Kyber Algorithm Specifications and Supporting Documentation (version 3.01). Retrieved September 2023 from https://pq-crystals.org/kyber/data/kyber-specification-round3-20210131.pdf

3. Shi Bai, Léo Ducas, Eike Kiltz, Tancrède Lepoint, Vadim Lyubashevsky, Peter Schwabe, Gregor Seiler, and Damien Stehlé. 2021. Crystals-Dilithium Algorithm Specifications and Supporting Documentation (version 3.1). Retrieved September 2023 from https://pq-crystals.org/dilithium/data/dilithium-specification-round3-20210208.pdf

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