arXiv Open Access 2026

Accelerating Post-Quantum Cryptography via LLM-Driven Hardware-Software Co-Design

Yuchao Liao Tosiron Adegbija Roman Lysecky
Lihat Sumber

Abstrak

Post-quantum cryptography (PQC) is crucial for securing data against emerging quantum threats. However, its algorithms are computationally complex and difficult to implement efficiently on hardware. In this paper, we explore the potential of Large Language Models (LLMs) to accelerate the hardware-software co-design process for PQC, with a focus on the FALCON digital signature scheme. We present a novel framework that leverages LLMs to analyze PQC algorithms, identify performance-critical components, and generate candidate hardware descriptions for FPGA implementation. We present the first quantitative comparison between LLM-driven synthesis and conventional HLS-based approaches for low-level compute-intensive kernels in FALCON, showing that human-in-the-loop LLM-generated accelerators can achieve up to 2.6x speedup in kernel execution time with shorter critical paths, while highlighting trade-offs in resource utilization and power consumption. Our results suggest that LLMs can minimize design effort and development time by automating FPGA accelerator design iterations for PQC algorithms, offering a promising new direction for rapid and adaptive PQC accelerator design on FPGAs.

Topik & Kata Kunci

Penulis (3)

Y

Yuchao Liao

T

Tosiron Adegbija

R

Roman Lysecky

Format Sitasi

Liao, Y., Adegbija, T., Lysecky, R. (2026). Accelerating Post-Quantum Cryptography via LLM-Driven Hardware-Software Co-Design. https://arxiv.org/abs/2602.09410

Akses Cepat

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Tahun Terbit
2026
Bahasa
en
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arXiv
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Open Access ✓