捕获网络流量的完整多重分形特征

Trang Le Dinh Dang, S. Molnár, I. Maricza
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引用次数: 15

摘要

提出了一种新的网络流量多重分形模型。该模型是一个乘级联与独立对数正态过程的组合。我们证明了该模型具有在数据流量中观察到的所有重要性质,包括远程依赖(LRD)、多重分形和对数正态性。我们还证明了该模型足够灵活,可以捕捉数据流量的完整多重分形特征,包括标度函数和矩因子。另一方面,我们认为该模型从实用的角度来看是简单的,只有三个参数。最后给出了该模型在数据流量测量中的实际应用,并对该模型的排队性能进行了验证。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Capturing the complete multifractal characteristics of network traffic
We propose a new multifractal traffic model for network traffic. The model is a combination of a multiplicative cascade with an independent lognormal process. We show that the model has all the important properties observed in data traffic including long-range dependence (LRD), multifractality and lognormality. We also demonstrate that the model is flexible enough to capture the complete multifractal characteristics of data traffic including both the scaling function and the moment factor. On the other hand, we argue that the model is simple from practical point of view having only three parameters. Practical applications for measured data traffic and validation of the model with queueing performance evaluation are also presented.
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