拜占庭容错复制中的请求批处理自配置

A. S. Sá, A. E. S. Freitas, R. Macêdo
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引用次数: 2

摘要

容忍拜占庭式故障的复制技术已经应用于分布式计算中,以应对系统组件可能由于恶意或自然原因(例如,入侵)而失败的敌对环境。从Lamport, Pease和Shostak在1982年对拜占庭将军的开创性工作中,Castro和Liskov在1999年提出了一个成功的解决方案,称为PBFT,它基于许多协议优化,包括请求批处理的使用,克服了先前解决方案的性能缺点。这项工作激发了其他一些工作,如扩展PBFT协议,提高PBFT在某些计算环境条件下的性能。在这些解决方案中,我们称之为pbft家族协议,请求批处理参数的调优是在设计时实现的。然而,在底层特征动态变化(例如,工作负载、通道QoS、网络拓扑等)的动态分布式系统中,这种配置可能无法产生期望的性能。为了应对这一挑战,本文提出了一种基于反馈控制理论的配料参数动态配置的创新解决方案。为了评估其效率,在各种场景下对该方案进行了仿真,并与pbft家族协议中使用的原始版本进行了比较。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Request Batching Self-Configuration in Byzantine Fault-Tolerant Replication
Replication techniques that tolerate byzantine failures have been applied in distributed computing to cope with hostile environments in which system components may fail due to malicious or natural causes (e.g., intrusions). From the seminal work of Lamport, Pease and Shostak on Byzantine Generals, in 1982, Castro and Liskov proposed in 1999 a successful solution, named PBFT, which overcomes performance drawbacks of previous ones, based on a number of protocol optimizations, including the use of request batching. Such a work motivated several other works as extension of the PBFT protocol, improving PBFT performance in certain computing environment conditions. In these solutions, which we call PBFT-family protocols, the tuning of the request batching parameters are realized in design time. However, such configuration may not yield the desired performance in dynamic distributed systems where the underlying characteristics change dynamically (e.g., workload, channel QoS, network topology, etc.). To answer to this challenge, this paper proposes an innovative solution to the dynamic configuration of batching parameters inspired on feedback control theory. In order to evaluate its efficiency, the proposed solution is simulated in various scenarios and compared with the original version used in the PBFT-family protocols.
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