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Reliable Probabilistic Classification and Its Application to Internet Traffic

机译:可靠的概率分类及其在互联网流量中的应用

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Many machine learning algorithms have been used to classify network traffic flows with good performance, but without information about the reliability in classifications. In this paper, we present a recently developed algorithmic framework, namely the Venn Probability Machine, for making reliable decisions under uncertainty. Experiments on publicly available real traffic datasets show the algorithmic framework works well. Comparison is also made to the published results.
机译:许多机器学习算法已被用于对具有良好性能的网络流量流分类,但没有关于分类中可靠性的信息。在本文中,我们介绍了最近开发的算法框架,即Venn概率机,用于在不确定性下进行可靠的决策。关于公开的真实交通数据集的实验显示算法框架运行良好。还对公布的结果进行了比较。

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