异步分布式密钥生成计算安全的随机性、一致性和阈值签名。

Eleftherios Kokoris-Kogias, D. Malkhi, A. Spiegelman
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引用次数: 79

摘要

在本文中,我们提出了第一个异步分布式密钥生成(ADKG)算法,这也是第一个可以生成具有对偶(f,2f+1)阈值(其中f是错误方的数量)的加密密钥的分布式密钥生成算法。因此,使用我们的ADKG,我们消除了最可扩展的共识算法所做的可信设置假设。为了创建具有对偶(f,2f+1)-阈值的DKG,我们首先肯定地回答Cachin等人[7]提出的开放问题,即如何创建具有重建阈值f+1本文章由计算机程序翻译,如有差异,请以英文原文为准。
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Asynchronous Distributed Key Generation for Computationally-Secure Randomness, Consensus, and Threshold Signatures.
In this paper, we present the first Asynchronous Distributed Key Generation (ADKG) algorithm which is also the first distributed key generation algorithm that can generate cryptographic keys with a dual (f,2f+1)-threshold (where f is the number of faulty parties). As a result, using our ADKG we remove the trusted setup assumption that the most scalable consensus algorithms make. In order to create a DKG with a dual (f,2f+1)- threshold we first answer in the affirmative the open question posed by Cachin et al. [7] on how to create an Asynchronous Verifiable Secret Sharing (AVSS) protocol with a reconstruction threshold of f+1
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