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Modern Large-Scale Data Management Systems after 40 Years of Consensus

机译:经过40年共识的现代大型数据管理系统

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Modern large-scale data management systems utilize consensus protocols to provide fault tolerance. Consensus protocols are extensively used in the distributed database infrastructure of large enterprises such as Google, Amazon, and Facebook as well as permissioned blockchain systems like IBM’s Hyperledger Fabric. In the last four decades, numerous consensus protocols have been proposed to cover a broad spectrum of distributed database systems. On one hand, distributed networks might be synchronous, partially synchronous, or asynchronous, and on the other hand, infrastructures might consist of crashonly nodes, Byzantine nodes or both. In addition, a consensus protocol might follow a pessimistic or optimistic strategy to process transactions. Furthermore, while traditional consensus protocols assume a priori known set of nodes, in permissionless blockchains, nodes are assumed to be unknown. Finally, consensus protocols have explored a variety of performance trade-offs between the number of phases/messages (latency), the number of required nodes, message complexity, and the activity level of participants. In this tutorial, we discuss consensus protocols that are used in modern large-scale data management systems, classify them into different categories based on their assumptions on network synchrony, failure model of nodes, etc., and elaborate on their main advantages and limitations.
机译:现代大规模数据管理系统利用共识协议来提供容错能力。共识协议广泛用于Google,Amazon和Facebook等大型企业的分布式数据库基础结构,以及IBM的Hyperledger Fabric等获得许可的区块链系统。在过去的四十年中,已经提出了许多共识协议来涵盖广泛的分布式数据库系统。一方面,分布式网络可能是同步的,部分同步的或异步的,另一方面,基础架构可能由仅崩溃节点,拜占庭节点或两者组成。此外,共识协议可能会遵循悲观或乐观策略来处理交易。此外,尽管传统的共识协议假定先验已知的节点集,但在无许可的区块链中,假定节点是未知的。最后,共识协议已经在阶段/消息(等待时间)的数量,所需节点的数量,消息的复杂性以及参与者的活动水平之间探索了各种性能折衷。在本教程中,我们将讨论在现代大规模数据管理系统中使用的共识协议,根据它们对网络同步,节点故障模型等的假设将它们分为不同的类别,并详细说明它们的主要优点和局限性。

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