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Bound-based Network Tomography for Inferring Interesting Link Metrics

机译:基于边界的网络层析成像技术,可得出有趣的链接指标

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Network tomography is an attractive methodology for inferring internal network states from accumulated path measurements between pairs of monitors. Motivated by previous results that identifying all link metrics can require a large number of monitors, we focus on calculating the performance bounds of a set of interesting links, i.e., bound-based network tomography. We develop an efficient solution to obtain the tightest upper bounds and lower bounds of all interesting links in an arbitrary network with a given set of end-to-end path measurements. Based on this solution, we further propose an algorithm to place new monitors over existing ones such that the bounds of interesting links can be maximally tightened. We theoretically prove the effectiveness of the proposed algorithms. We implement the algorithms and conduct extensive experiments based on real network topologies. Compared with state-of-the- art approaches, our algorithms can achieve 2.2~3.1 times more reduction on the bound interval lengths of all interesting links and reduce the number of placed monitors significantly in various network settings.
机译:网络断层扫描是一种吸引人的方法,可从监视器对之间的累积路径测量值推断内部网络状态。以前的结果表明,识别所有链路指标可能需要大量监视器,因此我们着重于计算一组有趣的链路(即基于边界的网络断层扫描)的性能范围。我们开发了一种有效的解决方案,可以通过给定的一组端到端路径测量来获取任意网络中所有有趣链接的最严格的上限和下限。基于此解决方案,我们进一步提出了一种将新监视器放置在现有监视器上的算法,从而可以最大程度地加强有趣链接的边界。我们从理论上证明了所提出算法的有效性。我们实施这些算法,并基于真实的网络拓扑进行广泛的实验。与最新技术相比,我们的算法可以将所有感兴趣的链接的绑定间隔长度减少2.2到3.1倍,并且可以在各种网络设置中显着减少所放置监视器的数量。

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