Analysis, modeling and generation of self-similar VBR video traffic

M. Garrett, W. Willinger
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引用次数: 1165

Abstract

We present a detailed statistical analysis of a 2-hour long empirical sample of VBR video. The sample was obtained by applying a simple intraframe video compression code to an action movie. The main findings of our analysis are (1) the tail behavior of the marginal bandwidth distribution can be accurately described using “heavy-tailed” distributions (e.g., Pareto); (2) the autocorrelation of the VBR video sequence decays hyperbolically (equivalent to long-range dependence) and can be modeled using self-similar processes. We combine our findings in a new (non-Markovian) source model for VBR video and present an algorithm for generating synthetic traffic. Trace-driven simulations show that statistical multiplexing results in significant bandwidth efficiency even when long-range dependence is present. Simulations of our source model show long-range dependence and heavy-tailed marginals to be important components which are not accounted for in currently used VBR video traffic models.
自相似VBR视频流量的分析、建模和生成
我们对一个2小时长的VBR视频实证样本进行了详细的统计分析。该样本是通过对动作电影应用简单的帧内视频压缩代码获得的。我们分析的主要发现是:(1)边际带宽分布的尾部行为可以用“重尾”分布(如帕累托)准确地描述;(2) VBR视频序列的自相关性呈双曲衰减(相当于远程依赖),可以使用自相似过程进行建模。我们将我们的发现结合到一个新的(非马尔可夫)VBR视频源模型中,并提出了一种生成合成流量的算法。跟踪驱动仿真表明,即使存在远程依赖,统计复用也能显著提高带宽效率。源模型的模拟表明,远程依赖和重尾边际是目前使用的VBR视频流量模型中未考虑的重要组成部分。
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