Self Similarity Analysis and Modeling of VoIP Traffic under Wireless Heterogeneous Network Environment

B. Canberk, S. Oktug
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引用次数: 10

Abstract

Self similar behavior of the aggregate traffic is a well known issue in the networking area. In this paper, we first study the self similarity of the empirically aggregated VoIP traffic in a heterogeneous wireless network testbed environment and then model it using Fractional Gaussian Noise (fGn). The heterogeneity of the environment is provided by exploiting different wireless technologies in backbone and access networks. The backbone of the testbed is IEEE 802.16d WiMAX whereas the access network is IEEE 802.11b WiFi mesh architecture. We evaluate the self similarity in terms of throughput and packet inter-arrival time using empirically captured VoIP calls generated by softphones in the laboratory. We prove the collected data’s self similar characteristics with stochastic analysis using autocorrelation functions. We implement three well-known time domain estimators to obtain Hurst values for both metrics. We also suggest the Fractional Gaussian Noise (fGn) Model for the empirically aggregated VoIP data. The self similarity analysis and modeling performed in this work will motivate new design issues on the quality of service frameworks and resources allocation mechanisms such as buffers in wireless heterogeneous networks.
无线异构网络环境下VoIP业务的自相似分析与建模
聚合流量的自相似行为是网络领域的一个众所周知的问题。本文首先研究了异构无线网络试验台环境下经验聚合VoIP业务的自相似性,然后利用分数阶高斯噪声(fGn)对其进行建模。通过在骨干网和接入网中利用不同的无线技术,提供了环境的异构性。测试平台的主干是IEEE 802.16d WiMAX,而接入网络是IEEE 802.11b WiFi网状结构。我们利用实验室中由软电话生成的经验捕获的VoIP呼叫来评估吞吐量和分组间到达时间方面的自相似性。利用自相关函数,用随机分析证明了所收集数据的自相似特性。我们实现了三个众所周知的时域估计器来获得两个度量的Hurst值。我们还建议将分数高斯噪声(fGn)模型用于经验聚合的VoIP数据。在这项工作中进行的自相似性分析和建模将激发有关服务框架质量和资源分配机制(如无线异构网络中的缓冲区)的新设计问题。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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