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Clustering-based separation of media transfers in DPI-classified cellular video and VoIP traffic

机译:在DPI分类的蜂窝视频和VoIP通信中,基于集群的媒体传输分离

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Identifying VoIP and video traffic is often useful in the context of managing a cellular network, and to perform such traffic classification deep packet inspection (DPI) approaches are often used. Commercial DPI classifiers do not necessarily differentiate between, for example, YouTube traffic that arises from browsing inside the YouTube app, and traffic arising from the actual viewing of a YouTube video. Here we apply unsupervised clustering methods on such cellular DPI-labeled VoIP and video traffic to identify the characteristic behavior of the two sub-groups of media-transfer and non media-transfer flows. The analysis is based on a measurement campaign performed inside the core network of a commercial cellular operator, collecting data for more than two billion packets in 40+ million flows. A specially instrumented commercial DPI appliance allows the simultaneous collection of per packet information in addition to the DPI classification output. We show that the majority of flows falls into clusters that are easily identifiable as belonging to one of the traffic sub-groups, and that a surprising majority of DPIlabeled VoIP and video traffic is non-media related.
机译:识别VoIP和视频流量通常在管理蜂窝网络的上下文中很有用,并且为了执行此类流量分类,经常使用深度数据包检查(DPI)方法。商业DPI分类器不一定区分例如因在YouTube应用内浏览而产生的YouTube流量与因实际观看YouTube视频而产生的流量。在这里,我们对此类蜂窝DPI标记的VoIP和视频流量应用无监督的聚类方法,以识别媒体传输流和非媒体传输流这两个子组的特征行为。该分析基于商业蜂窝运营商核心网络内部进行的一项测量活动,该活动收集了40+百万个流量中超过20亿个数据包的数据。除DPI分类输出外,特殊配备的商用DPI设备还允许同时收集每个数据包的信息。我们显示出,大多数流都属于易于识别为属于流量子组之一的群集,并且令人惊讶的是,大多数DPI标记的VoIP和视频流量与媒体无关。

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