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The performance and locality tradeoff in BitTorrent-like P2P file-sharing systems

机译:类似BitTorrent的p2p文件共享系统中的性能和位置权衡

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摘要

The recent surge of large-scale peer-to-peer (P2P) applications has brought huge amounts of P2P traffic, which significantly changes the Internet traffic pattern and increases the traffic-relay cost at the Internet Service Providers (ISPs). To alleviate the stress on networks, localized peer selection has been proposed that advocates neighbor selection within the same network (AS or ISP) to reduce the cross-ISP traffic. Nevertheless, localized peer selection may potentially lead to the downgrade of downloading speed at the peers, rendering a non-negligible tradeoff between the downloading performance and traffic localization in the P2P system. Aiming at effective peer selection strategies that achieve any desired Pareto optimum in face of the tradeoff, in this paper, we characterize the performance and locality tradeoff as a multi-objective b-matching optimization problem. In particular, we first present a generic maximum weight b-matching model that characterizes the tit-for-tat in BitTorrent-like peer selection. We then introduce multiple optimization objectives into the model, which effectively characterize the performance and locality tradeoff using simultaneous objectives to optimize. We also design fully distributed peer selection algorithms that can effectively achieve any desired Pareto optimum of the global multi-objective optimization, that represents a desired tradeoff point between performance and locality in the entire system. Our models and algorithms are supported by rigorous analysis and extensive simulations. ©2010 IEEE.
机译:最近大规模的对等(P2P)应用程序激增带来了大量P2P流量,这极大地改变了Internet流量模式并增加了Internet服务提供商(ISP)的流量中继成本。为了减轻对网络的压力,已经提出了局部对等体选择,其提倡在同一网络(AS或ISP)内进行邻居选择,以减少跨ISP的流量。但是,本地化的对等体选择可能会导致对等体的下载速度降低,从而在P2P系统中的下载性能和流量本地化之间造成不可忽略的折衷。针对面对折衷可以实现任何期望的帕累托最优的有效对等选择策略,在本文中,我们将性能和局部折衷描述为多目标b匹配优化问题。特别地,我们首先提出一个通用的最大权重b匹配模型,该模型描述了类似BitTorrent的对等选择中的针锋相对。然后,我们将多个优化目标引入到模型中,这些模型使用同时进行的目标进行优化来有效地表征性能和位置折衷。我们还设计了完全分布式的对等体选择算法,该算法可以有效地实现全局多目标优化的任何期望的帕累托最优,这代表了整个系统性能和局部性之间的期望折衷点。严格的分析和广泛的仿真为我们的模型和算法提供了支持。 ©2010 IEEE。

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    Huang W; Wu C; Lau FCM;

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  • 年度 2010
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  • 正文语种 eng
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