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Characterizing Per-Application Network Traffic Using Entropy

机译:使用熵表征每个应用程序的网络流量

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The Internet has been evolving into a more heterogeneous internetwork with diverse new applications imposing more stringent bandwidth and QoS requirements. Already new applications such as YouTube, Hulu, and Netflix are consuming a large fraction of the total bandwidth. We argue that, in order to engineer future internets such that they can adequately cater to their increasingly diverse and complex set of applications while using resources efficiently, it is critical to be able to characterize the load that emerging and future applications place on the underlying network. In this article, we investigate entropy as a metric for characterizing per-flow network traffic complexity. While previous work has analyzed aggregated network traffic, we focus on studying isolated traffic flows. Per-application flow characterization caters to the need of network control functions such as traffic scheduling and admission control at the edges of the network. Such control functions necessitate differentiating network traffic on a per-application basis. The "entropy fingerprints" that we get from our entropy estimator summarize many characteristics of each application's network traffic. Not only can we compare applications on the basis of peak entropy, but we can also categorize them based on a number of other properties of the fingerprints.
机译:互联网已经发展成为一种异构的互联网,具有各种新的应用程序,对带宽和QoS的要求更高。 YouTube,Hulu和Netflix等新应用程序正在占用总带宽的很大一部分。我们认为,为了对未来的互联网进行工程设计,以使其能够充分满足其日益多样化和复杂的应用程序集,同时有效地利用资源,至关重要的是,能够表征新兴和未来应用程序对基础网络的负载。在本文中,我们研究熵作为表征每流网络流量复杂性的度量。尽管先前的工作分析了聚合的网络流量,但我们专注于研究隔离的流量。每个应用程序的流量表征可满足网络控制功能的需求,例如网络边缘的流量调度和准入控制。这种控制功能必须根据每个应用区分网络流量。我们从熵估计器获得的“熵指纹”总结了每个应用程序网络流量的许多特征。我们不仅可以根据峰熵对应用程序进行比较,还可以根据指纹的许多其他属性对应用程序进行分类。

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