网络地理与RTT关系的测度

R. Landa, R. Clegg, J. Araújo, E. Mykoniati, D. Griffin, M. Rio
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引用次数: 22

摘要

在设计分布式系统和互联网协议时,设计者可以从互联网的统计模型中获益,这些模型可以用来评估它们的性能。然而,这些模型通常不可能包含所有感兴趣的属性。在这些情况下,模型构建者必须选择网络属性的减少子集,其余的将不得不从可用的属性中进行估计。本文提出了一种分析互联网往返时间(RTT)及其与其他地理和网络属性关系的技术。该技术应用于一个新的数据集,该数据集包含来自约5.4万个DNS服务器之间的约2亿个RTT样本的约1900万个RTT测量值。我们的主要贡献是信息理论分析,它允许我们确定给定的地理或网络变量子集(例如RTT或地理位置主机之间的大圆距离)提供的关于其他感兴趣变量的信息量。然后,我们提供了当基于其他变量的子集对感兴趣的变量使用统计估计器时可以预期的误差界限。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Measuring the Relationships between Internet Geography and RTT
When designing distributed systems and Internet protocols, designers can benefit from statistical models of the Internet that can be used to estimate their performance. However, it is frequently impossible for these models to include every property of interest. In these cases, model builders have to select a reduced subset of network properties, and the rest will have to be estimated from those available. In this paper we present a technique for the analysis of Internet round trip times (RTT) and its relationship with other geographic and network properties. This technique is applied on a novel dataset comprising ~19 million RTT measurements derived from ~200 million RTT samples between ~54 thousand DNS servers. Our main contribution is an information-theoretical analysis that allows us to determine the amount of information that a given subset of geographic or network variables (such as RTT or great circle distance between geolocated hosts) gives about other variables of interest. We then provide bounds on the error that can be expected when using statistical estimators for the variables of interest based on subsets of other variables.
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