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Traffic model using a novel sniffer that ensures the user data privacy

机译:使用新型嗅探器的流量模型,可确保用户数据的隐私

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Nowadays, the traffic over the networks is changing because of new protocols, devices and applications. Therefore, it is necessary to analyze the impact over services and resources. Traffic Classification of network is a very important prerequisite for tasks such as traffic engineering and provisioning quality of service. In this paper, we analyze the variable packet size of the traffic in an university campus network through the collected data using a novel sniffer that ensures the user data privacy. We separate the collected data by type of traffic, protocols and applications. Finally, we estimate the traffic model that represents this traffic by means of a Poisson process and compute its associated numerical parameters.
机译:如今,由于新的协议,设备和应用程序,网络上的流量正在发生变化。因此,有必要分析对服务和资源的影响。网络的流量分类是诸如流量工程和供应服务质量之类的任务的非常重要的前提。在本文中,我们使用新颖的嗅探器通过收集的数据来分析大学校园网络中流量的可变数据包大小,以确保用户数据的私密性。我们按流量类型,协议和应用程序将收集的数据分开。最后,我们通过泊松过程估计代表此交通的交通模型,并计算其相关的数值参数。

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