使用资源聚合和缓存增强协作对等系统

A. Jayasumana
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引用次数: 9

摘要

我们设想点对点(P2P)系统允许具有不同能力的对等体集成和协作,形成虚拟社区。这样的社区将能够从事比单个同伴所能完成的更大的任务,但对所有同伴都有益。这些新兴系统将共享各种资源,如处理器周期、存储容量、网络带宽、传感器/执行器、服务、中间件、科学算法和数据。涉及应用程序特定资源和动态服务质量目标的协作将强调当前的P2P体系结构,这些体系结构是为具有相似资源的节点之间的成对交互而设计的最佳努力环境。协作式对等(P2P)系统需要资源发现解决方案来聚合多属性、动态和分布式的资源组。将讨论基于资源和查询感知的p2p多属性资源发现解决方案。本文提出了一种利用P2P社区来提高社区范围和系统范围查找性能的分布式缓存解决方案,并将其扩展到多属性系统。我们使用来自四个实际系统的数据分析资源和查询的特征。使用从真实世界数据集学习到的统计行为,将解决一组机制来生成多属性静态和动态资源的真实合成轨迹,以及范围查询。这些痕迹不仅在协作式P2P系统中,而且在云计算中,对资源发现解决方案、作业调度器等的大规模性能研究都很有用。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Enhancing collaborative peer-to-peer systems using resource aggregation and caching
We envision Peer-to-Peer (P2P) systems that allow for the integration and collaboration of peers with diverse capabilities to form virtual communities. Such communities will be able to engage in greater tasks beyond what can be accomplished by individual peers, yet are beneficial to all the peers. These emerging systems will share a variety of resources such as processor cycles, storage capacity, network bandwidth, sensors/actuators, services, middleware, scientific algorithms, and data. Collaborations involving application-specific resources and dynamic quality of service goals will stress current P2P architectures that are designed for best-effort environments with pairwise interactions among nodes with similar resources. Collaborative Peer-to-Peer (P2P) systems require resource discovery solutions to aggregate groups of multi-attribute, dynamic, and distributed resources. Resource and query aware P2P-based multi-attribute resource discovery solutions will be addressed. A distributed caching solution that exploits P2P communities to improve the communitywide and system-wide lookup performance will be presented, with a view to extend it to multi-attribute systems. We analyze the characteristics of resources and queries using data from four real-world systems. A set of mechanisms will be addressed to generate realistic synthetic traces of multi-attribute static and dynamic resources, and range queries, using the statistical behavior learned from real-world datasets. Such traces are useful in large-scale performance studies of resource discovery solutions, job schedulers, etc., not only in collaborative P2P systems, but also in cloud computing.
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