Accelerating Number Theoretic Transform with Multi-GPU Systems for Efficient Zero Knowledge Proof
Zhuoran Ji, Jianyu Zhao, Peimin Gao, Xiangkai Yin, Lei Ju
2025Year
8Citations
2Top-tier citations
Abstract
Zero-knowledge proofs validate statements without revealing any information, pivotal for applications such as verifiable outsourcing and digital currencies. However, their broad adoption is limited by the prolonged proof generation times, mainly due to two operations: Multi-Scalar Multiplication (MSM) and Number Theoretic Transform (NTT). While MSM has been efficiently accelerated using multi-GPU systems, NTT has not, due to the high inter-GPU communication overhead incurred by its permutation data access pattern.
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Cited by top-tier papers2
- TensorZKP: Repurposing GPU Tensor Cores for High-Performance Zero-Knowledge ProofsTao Lu, Jipeng Zhang, Yanpei Guo, Xuanming Liu et al.USENIX Security 2026
- GenZA: A General and Efficient Accelerator for Diverse Zero-Knowledge Proof ProtocolsCheng Wang, Jiangbin Dong, Mingyu GaoISCA 2026
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