一种允许估计吞吐量平均值的交通模型的建议

C. A. H. Suarez, L.F. Pedraza, C. Salgado
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引用次数: 4

摘要

本文旨在开发一种允许估计吞吐量平均值的Wi-Fi数据网络的多变量流量模型。为了构建模型,使用一个名为Wire Shark的软件包收集了一个8主机无线自组织网络的数据,该网络是专门为建模而设计的。然后,根据从采集数据中提取的交通特征估计出最方便的多变量模型。使用STATA软件包对结果进行评估,从而为模型及其性能水平建立显著的解释变量。对于我们的Wi-Fi网络,结果表明所分析的流量具有自相似特征。此外,模型系数及其对应的显著性水平在各表中给出。最后,根据普通最小二乘方法(误差百分之22,16),产生了一个由四个变量组成的解释性多变量模型。研究结果表明,本研究中产生的多变量流量模型允许对吞吐量平均值进行可靠的分析,然而,该模型在预测所选估计集之外的数据的流量值时受到限制。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
A Proposal of Traffic Model That Allows Estimating Throughput Mean Values
The present paper is aimed at developing a multi-variable traffic model of a Wi-Fi data network that allows estimating throughput mean values. In order to construct the model, data corresponding to an 8-host wireless ad-hoc network were collected using a software package called Wire Shark, the network was specially designed for modeling purposes. Subsequently, the most convenient multi-variable models were estimated according to the traffic features extracted from the collected data. Results were the evaluated using a software package called STATA, leading to the establishment of significant explanatory variables for the model and its performance levels. For our Wi-Fi network, results show that the analyzed traffic exhibits self-similarity features. Additionally, model coefficients and their corresponding significance levels are shown in various tables. Finally, an explanatory multivariable model consisting of four variables was produced on the basis of ordinary least-squares methodologies (with a per-cent error of 22, 16). The findings suggest that the multi-variable traffic model produced in this study allows a reliable analysis of throughput mean values, however, the model is limited when predicting traffic values for data outside the selected estimation set.
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