UniFHE: Faster Accelerator for FHE with Diverse Algebraic Structure and Balanced Memory System
Qingyun Niu, Lutan Zhao, Ming Cai, Kai Li, Dan Meng, Rui Hou
Abstract
Fully homomorphic encryption (FHE) enables computations on encrypted data. Existing FHE schemes are primarily categorized into RLWE-based word-wise schemes and LWEbased bit-wise schemes. Efficient combination of different FHE schemes adapted to real-world applications has emerged as a research focus. This paper proposes UniFHE, the first FHE accelerator that supports diverse algebraic structures using general arithmetic units to achieve higher performance. UniFHE is compatible with both RLWE-based and LWE-based FHE schemes without modifications to their original algorithmic designs. To support both finite ring and complex field operations, UniFHE introduces a general arithmetic unit and further constructs core computation structures. To balance on-chip memory demands across different schemes, UniFHE adopts a multi-pipeline architecture for LWE-based schemes. The core functional units for RLWE-based schemes are spliced based on the LWE-based pipelines. Furthermore, an on-chip plaintext encoding mechanism significantly reduces off-chip memory bandwidth demands. Experimental results show that, beyond superior area and energy efficiency, UniFHE delivers up tohigher performance compared to scheme-specific accelerator combinations. Moreover, in hybrid schemes, UniFHE achieves aspeedup over the state-of-the-art unified FHE accelerator Trinity.
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