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On the Predictive Power of Shortest-Path Weight Inference

机译:关于最短路径重量推断的预测力

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Reverse engineering of the Internet is a valuable activity. Apart from providing scientific insight, the resulting datasets are invaluable in providing realistic network scenarios for other researchers. The Rocketfuel project attempted this process, but it is surprising how little effort has been made to validate its results. This paper concentrates on validating a particular inference methodology used to obtain link weights on a network. There is a basic difficulty in assessing the accuracy of such inferences in that a non-unique set of link-weights may produce the same routing, and so simple measurements of accuracy (even where ground truth data are available) do not capture the usefulness of a set of inferred weights. We propose a methodology based on predictive power to assess the quality of the weight inference. We used this to test Rocketfuel's algorithm, and our tests suggest that it is reasonably good particularly on certain topologies, though it has limitations when its underlying assumptions are incorrect.
机译:互联网的逆向工程是一个有价值的活动。除了提供科学洞察力,产生的数据集是在为其他研究者提供真实的网络场景非常宝贵的。该项目Rocketfuel未遂这一过程,但令人惊讶的是已经做出的努力多么少,以验证其结果。本文着重于验证用于在网络上得到的链路权重的特定推论方法。有在评估一个非唯一的一组链路权重的可能会产生相同的路由这样的推论准确性的基本困难和准确性(即使地面实测数据是可用的),这样简单的测量不捕获的用处一组推断权重。我们提出了一种基于预测能力评估体重推断的质量的方法。我们用这个测试Rocketfuel的算法,和我们的测试表明,它是相当不错特别是在一定的拓扑结构,但它也有局限性,当它的基本假设是不正确的。

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