涌现:健壮且可扩展的分布式应用程序的范例

R. Anthony
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引用次数: 61

摘要

自然的分布式系统是自适应的、可扩展的和容错的。涌现科学描述了在自然系统中,许多参与者遵循简单的规则集如何产生更高层次的自我调节行为。涌现倡导简单的沟通模式,自主独立,增强鲁棒性和自稳定性。高质量的分布式应用程序(如自治系统)必须满足适当的非功能需求,包括可伸缩性、效率、健壮性、低延迟和稳定性。然而,分布式应用程序的传统设计,特别是就所采用的通信策略而言,可能会在这些特征之间引入折衷。本文讨论了将涌现科学应用于分布式计算的方法,避免了与传统设计的应用程序相关的一些妥协。为了证明该范式的有效性,描述了一种紧急选举算法并对其性能进行了评估。该设计包含了不确定性行为。所得到的算法具有非常低的通信复杂度,同时具有非常稳定、可扩展和鲁棒性。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Emergence: a paradigm for robust and scalable distributed applications
Natural distributed systems are adaptive, scalable and fault-tolerant. Emergence science describes how higher-level self-regulatory behaviour arises in natural systems from many participants following simple rule-sets. Emergence advocates simple communication models, autonomy and independence, enhancing robustness and self-stabilization. High-quality distributed applications such as autonomic systems must satisfy the appropriate nonfunctional requirements which include scalability, efficiency, robustness, low-latency and stability. However the traditional design of distributed applications, especially in terms of the communication strategies employed, can introduce compromises between these characteristics. This paper discusses ways in which emergence science can be applied to distributed computing, avoiding some of the compromises associated with traditionally-designed applications. To demonstrate the effectiveness of this paradigm, an emergent election algorithm is described and its performance evaluated. The design incorporates nondeterministic behaviour. The resulting algorithm has very low communication complexity, and is simultaneously very stable, scalable and robust.
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