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Accurate, Fine-Grained Classification of P2P-TV Applications by Simply Counting Packets

机译:通过简单地计算数据包准确,细粒度的P2P-TV应用程序分类

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We present a novel methodology to accurately classify the traffic generated by P2P-TV applications, relying only on the count of packets they exchange with other peers during small time-windows. The rationale is that even a raw count of exchanged packets conveys a wealth of useful information concerning several implementation aspects of a P2P-TV application - such as network discovery and signaling activities, video content distribution and chunk size, etc. By validating our framework, which makes use of Support Vector Machines, on a large set of P2P-TV testbed traces, we show that it is actually possible to reliably discriminate among different applications by simply counting packets.
机译:我们提出了一种新颖的方法,可以准确地分类P2P-TV应用程序生成的流量,仅在小型时间窗口期间与其他对等体交换的数据包的计数依赖。理由是,即使是交换数据包的原始计数也通过验证我们的框架来传达有关P2P-TV应用程序的几个实现方面的有关P2P-TV应用程序的几个实现方面的有用信息,如网络发现和信令活动,视频内容分发和块大小等。这使得使用支持向量机,在一大集P2P-TV测试的迹线上,我们表明它实际上可以通过简单地计算数据包来可靠地区分不同的应用程序。

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