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Application specific slicing for MVNO through software-defined data plane enhancing SDN

机译:通过软件定义的数据平面增强SDN的软件定义数据平面特定于MVNO的应用程序

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In this paper, we show our prototype implementation of our proposal in the real MVNO connecting customized smartphones so that we can identify applications from the given traffic with 100% accuracy using deeply programmable nodes developed in FLARE project. In addition, we propose a new method of identifying applications from the traffic of unmodified smartphones by machine learning using the training data collected from the customized smartphones. We show that a simple machine learning technique such as random forest achieves about 80% to 96% of accuracy in application identification.
机译:在本文中,我们在连接自定义智能手机的真实MVNO中显示了我们的原型实施,以便我们可以使用闪光项目中开发的深度可编程节点来识别给定流量的应用程序。此外,我们提出了一种新的方法,可以使用从自定义智能手机收集的培训数据通过机器学习来识别未修改的智能手机的流量的方法。我们表明,随机森林等简单的机器学习技术在应用识别中实现了约80%至96%的准确性。

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