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Inferring original traffic pattern from sampled flow statistics

机译:从采样流统计中推断出原始流量模式

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Packet sampling has become a practical and indispensable means to measure flow statistics. Recent studies have demonstrated that analyzing traffic patterns is crucial in detecting network anomalies. We may not be able to infer the original traffic patterns correctly from the sampled flow statistics because sampling process wipes out a lot of information about small flows, which play a vital role in determining the characteristics of traffic patterns. In this paper, we first show an example of how the sampling process wipes out the original statistics using measured data. Then, we show empirical examples indicating that the original traffic pattern cannot be inferred correctly even if we use a statistical inference method for incomplete data, i.e., the EM algorithm, for sampled flow statistics. Finally, we show that additional information about the original flow statistics, the number of unsampled flows, is helpful in tracking the change in original traffic patterns using sampled flow statistics.
机译:包取样已成为衡量流量统计实际和不可缺少的手段。最近的研究表明,分析流量模式在检测网络异常关键。我们可能不能够从采样流量统计推断正确原有业务模式,因为采样过程中消灭了很多关于小流,这在确定的交通模式的特点发挥着至关重要的角色信息。在本文中,我们首先显示的采样过程中使用测得的数据如何抹了原始统计的例子。然后,我们表明指示原始交通模式不能被正确地推断出即使我们使用一个统计推断方法,用于不完全的数据,即经验实施例中,EM算法,对于采样的流统计数据。最后,我们将展示有关原始流量统计的其他信息,未抽样流的数量,是在跟踪使用采样流量统计原有业务模式的改变很有帮助。

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