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A new P2P traffic identification methodology based on flow statistics

机译:基于流统计的新P2P流量识别方法

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Nowadays P2P traffic consumes a great amount of network bandwidth which brings many difficulties to network management. In order to accurately identify P2P traffic, this paper proposes a methodology based on flow statistics. At first it quickly eliminates those flow features irrelevant to class by the ReliefF algorithm, then from the rest features it uses a wrapper method combined genetic algorithm with support vector machine to select flow features and optimize the parameters of support vector machine model, and finally it outputs the best flow feature set and the optimized support vector machine model. The experimental results indicate that this methodology can achieve improved accuracy with fewer flow features.
机译:如今,P2P流量消耗了大量的网络带宽,为网络管理带来了许多困难。为了准确识别P2P流量,本文提出了一种基于流动统计的方法。首先,它很快消除了通过Creieff算法无关紧要的流量功能,然后从RESIFFF算法采用包装方法组合遗传算法,支持向量机选择流量,并优化支持向量机模型的参数,最后是它输出最佳流量功能集和优化的支持向量机模型。实验结果表明,这种方法可以通过更少的流动特征来实现改善的准确性。

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