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Real-Time Identification Research of Unstructured P2P Multicast Video Streaming

机译:非结构化P2P多播视频流的实时识别研究

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Many potential safety problems result from the rapid development of P2P IPTV business, and the foundation for effectively managing the business is to accurately identify unstructured P2P multicast video streaming. In this paper, an identification method is proposed which is based on support vector machines. The network traffic is successively separated by flow features and behavior features, and finally the applications of unstructured P2P multicast video streaming could be identified. The method not only could adapt to the continuous changes of network, but also could identify the known and unknown flow of unstructured P2P multicast video streaming online. The experiments show that the average identification accuracy of the method is 90.9%, and the identification time is about 5 minutes.
机译:许多潜在的安全问题是由P2P IPTV业务的快速发展产生的,而有效管理业务的基础是准确地识别非结构化的P2P组播视频流。 本文提出了一种基于支持向量机的识别方法。 通过流特征和行为特征连续分隔网络流量,最后可以识别非结构化P2P组播视频流的应用。 该方法不仅可以适应网络的连续变化,还可以识别在线非结构化P2P组播视频流的已知和未知流。 实验表明,该方法的平均鉴定精度为90.9%,鉴定时间约为5分钟。

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