Powers of Tau in Asynchrony
Sourav Das, Zhuolun Xiang, Ling Ren
摘要
—The q -Strong Diffie-Hellman ( q -SDH) parameters are foundational to efficient constructions of many cryptographic primitives such as zero-knowledge succinct non-interactive arguments of knowledge, polynomial/vector commitments, verifiable secret sharing, and randomness beacon. The only existing method to generate these parameters securely is highly sequential, requires synchrony assumptions, and has very high communication and computation costs. For example, to generate parameters for any given q , each party incurs a communication cost of Ω( nq ) and requires Ω( n ) rounds. Here n is the number of parties in the secure multiparty computation protocol. Since q is typically large, i.e., on the order of billions, the cost is highly prohibitive. In this paper, we present a distributed protocol to generate q - SDH parameters in an asynchronous network. In a network of n parties, our protocol tolerates up to one-third of malicious parties. Each party incurs a communication cost of O ( q + n 2 log q ) and the protocol finishes in O (log q +log n ) expected rounds. We provide a rigorous security analysis of our protocol. We implement our protocol and evaluate it with up to 128 geographically distributed parties. Our evaluation illustrates that our protocol is highly scalable and results in a 2-6 × better runtime and 4-13 × better per-party bandwidth usage compared to the state-of-the-art synchronous protocol for generating q -SDH parameters.
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引用它的顶会 Paper3
- Partial Synchrony for Free: New Upper Bounds for Byzantine AgreementPierre Civit, Muhammad Ayaz Dzulfikar, Seth Gilbert, Rachid Guerraoui 等SODA 2025
- Lite-PoT: Practical Powers-of-Tau Setup CeremonyLucien K. L. Ng, Pedro Moreno-Sanchez, Mohsen Minaei, Panagiotis Chatzigiannis 等CCS 2025
- Dumbo-MPC: Efficient Fully Asynchronous MPC with Optimal ResilienceYuan Su, Yuan Lu, Jiliang Li, Yuyi Wang 等USENIX Security 2025
它引用的顶会 Paper9
- Sonic: Zero-Knowledge SNARKs from Linear-Size Universal and Updatable Structured Reference StringsMary Maller, Sean Bowe, Markulf Kohlweiss, Sarah MeiklejohnCCS 2019 · 被引用 412 次
- Marlin: Preprocessing zkSNARKs with Universal and Updatable SRSAlessandro Chiesa, Yuncong Hu, Mary Maller, Pratyush Mishra 等EUROCRYPT 2020 · 被引用 356 次
- Practical Asynchronous Distributed Key GenerationSourav Das, Thomas Yurek, Zhuolun Xiang, Andrew Miller 等S&P 2022 · 被引用 136 次
- Asynchronous Distributed Key Generation for Computationally-Secure Randomness, Consensus, and Threshold SignaturesEleftherios Kokoris-Kogias, Dahlia Malkhi, Alexander SpiegelmanCCS 2020 · 被引用 107 次
- RandPiper - Reconfiguration-Friendly Random Beacons with Quadratic CommunicationAdithya Bhat, Nibesh Shrestha, Zhongtang Luo, Aniket Kate 等CCS 2021 · 被引用 5 次
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