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Accuracy Improvement for Spatial Composition-Based End-to-End Network Measurement

机译:基于空间组成的端到端网络测量的准确性改进

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Spatial composition method for end-to-end network measurement avoids lengthy measurements of a path and the path is divided into some sub-paths when multiple measured paths share the underlay network route. The performance of the overall path is estimated by spatially composing measurement results of the sub-paths. This method is quite effective for measurement in overlay networks where many paths between overlay nodes share the underlay network. However, such estimation methods may include the additional errors caused by the measurement inaccuracy of sub-paths. Therefore, we need to assess the estimation accuracy of the spatial composition-based method and introduce statistical processing to suppress the estimation errors. In this paper, we propose statistical processing methods of measurement results to improve estimation accuracy of spatial composition-based measurement method for packet loss ratio. We introduce a statistical test for measurement results to exclude outliers from spatial composition. We also propose some statistical indexes for determining whether we should discard the measurement results and reconduct the measurement. We evaluate the performance of the proposed method by using measurement results obtained on Planet Lab environment. From the evaluation results we find that proposed two methods can decrease the estimation error of the spatial composition of packet loss ratio by 36% and 23%, respectively.
机译:用于端到端网络测量的空间组合方法避免了路径的冗长测量,并且当多个测量路径共享底层网络路径时,路径被分成一些子路径。通过空间组成子路径的测量结果来估计整体路径的性能。该方法对于覆盖网络中的测量非常有效,其中覆盖节点之间的许多路径共享底层网络。然而,这种估计方法可以包括由子路径的测量不准确引起的附加误差。因此,我们需要评估基于空间组成的方法的估计准确性,并引入统计处理以抑制估计误差。本文提出了测量结果的统计处理方法,提高了基于空间组合物的测量方法的估计准确性零件损失率。我们介绍了测量结果的统计测试,以排除来自空间组成的异常值。我们还提出了一些统计指标来确定我们是否应该丢弃测量结果并指导测量。我们通过使用在行星实验室环境中获得的测量结果来评估所提出的方法的性能。从评估结果,发现提出的两种方法可以分别将空间组成的估计误差分别降低36%和23%。

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