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Unicast-based inference of network link delay distributions with finite mixture models

机译:基于有限混合模型的基于单播的网络链路延迟分布推断

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摘要

Providers of high quality-of-service over telecommunication networks require accurate methods for remote measurement of link-level performance. Recent research in network tomography has demonstrated that it is possible to estimate internal link characteristics, e.g., link delays and packet losses, using unicast probing schemes in which probes are exchanged between several pairs of sites in the network. We present a new method for estimation of internal link delay distributions using the end-to-end packet pair delay statistics gathered by back-to-back packet-pair unicast probes. Our method is based on a variant of the penalized maximum likelihood expectation-maximization (PML-EM) algorithm applied to an additive finite mixture model for the link delay probability density functions. The mixture model incorporates a combination of discrete and continuous components, and we use a minimum message length (MML) penalty for selection of model order. We present results of Matlab and ns-2 simulations to illustrate the promise of our network tomography algorithm for light cross-traffic scenarios.
机译:电信网络上的高质量服务的提供商需要用于链路级性能的远程测量的准确方法。网络断层摄影的最新研究表明,可以使用单播探测方案来估计内部链路特性,例如链路延迟和数据包丢失,其中在网络中的几对站点之间交换探针。我们提出了一种新的方法,用于估计内部链路延迟分布,该方法使用了背对背数据包对单播探测器收集的端对端数据包对延迟统计信息。我们的方法基于应用于链接延迟概率密度函数的加法有限混合模型的惩罚最大似然期望最大化(PML-EM)算法的变体。混合模型结合了离散和连续的组成部分,我们使用最小消息长度(MML)损失来选择模型顺序。我们介绍了Matlab和ns-2仿真的结果,以说明我们的网络层析成像算法在轻交通情况下的前景。

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