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On Zipf Models for Probabilistic Piece Selection in P2P Stored Media Streaming

机译:P2P存储媒体流中概率片段选择的Zipf模型

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The Zipf distribution is widely used to model Web site popularity, video popularity, and file referencing behavior. In recent published work, we proposed and evaluated a Zipf-based policy for probabilistic piece selection in Peer-to-Peer (P2P) media streaming. In this current paper, we revisit this Zipf model in more detail, and identify two fundamentally different modeling approaches, namely regenerative versus degenerative Zipf models. We illustrate the differences between the two models, provide refined analytical models for each, and validate the models with simulations in the context of P2P media streaming. The results show that the regenerative model is more appropriate for P2P streaming, because of its stronger sequential progress.
机译:Zipf分布广泛用于对网站受欢迎程度,视频受欢迎程度和文件引用行为进行建模。在最近发表的工作中,我们提出并评估了基于Zipf的对等(P2P)媒体流中概率片段选择的策略。在本文中,我们将更详细地介绍此Zipf模型,并确定两种根本不同的建模方法,即再生与退化Zipf模型。我们说明了两种模型之间的差异,为每种模型提供了完善的分析模型,并在P2P媒体流环境中通过仿真验证了模型。结果表明,再生模型因其顺序性更强而更适合P2P流。

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