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Abacus: Accurate behavioral classification of P2P-TV traffic

机译:算盘:P2P电视流量的准确行为分类

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摘要

Peer-to-Peer streaming (P2P-TV) applications offer the capability to watch real time video over the Internet at low cost. Some applications have started to become popular, raising the concern of Network Operators that fear the large amount of traffic they might generate. Unfortunately, most of P2P-TV applications are based on proprietary and unknown protocols, and this makes the detection of such traffic challenging per se. In this paper, we propose a novel methodology to accurately classify P2P-TV traffic and to identify the specific P2P-TV application which generated it. Our proposal relies only on the count of packets and bytes exchanged among peers during small time-windows: the rationale is that these two counts convey a wealth of useful information, concerning several aspects of the application and its inner workings, such as signaling activities and video chunk size. Our classification framework, which uses Support Vector Machines, accurately identifies P2P-TV traffic as well as traffic that is generated by other kinds of applications, so that the number of false classification events is negligible. By means of a large experimental campaign, which uses both testbed and real network traffic, we show that it is actually possible to reliably discriminate between different P2P-TV applications by simply counting packets.
机译:点对点流(P2P-TV)应用程序提供了以低成本观看Internet上实时视频的功能。一些应用程序已开始流行,引起网络运营商的担忧,他们担心它们可能会产生大量流量。不幸的是,大多数P2P-TV应用都是基于专有和未知协议的,这本身就使检测此类流量变得困难。在本文中,我们提出了一种新颖的方法来对P2P-TV流量进行准确分类,并识别产生该流量的特定P2P-TV应用程序。我们的建议仅取决于在较小的时间窗口内对等方之间交换的数据包和字节的数量:理由是这两个数量传达了大量有用的信息,涉及应用程序及其内部工作的多个方面,例如信令活动和视频块大小。我们的分类框架使用支持向量机,可以准确地识别P2P-TV流量以及其他类型的应用程序生成的流量,因此错误分类事件的数量可以忽略不计。通过使用试验台和实际网络流量的大型实验性活动,我们表明实际上可以通过简单地对数据包进行计数来可靠地区分不同的P2P-TV应用程序。

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