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A Segmentation Pattern Based Approach to Automated Protocol Identification

机译:基于分段模式的协议自动识别方法

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In-depth understanding of network traffic is important for a variety of applications, such as network management and network security. In this paper, we propose a novel protocol identification system PSKS, which relies on the statistical signatures of network packet payloads. The proposed approach is based on the key insight that message segmentation patterns can be leveraged for accurate application identification. Specifically, the segmentation possibility for every position of protocol messages exhibits highly skewed frequency distribution due to the reason that different protocols have different message formats (i.e., Distinct message segmentation patterns). Motivated by this observation, we want to extract statistical application fingerprints by exploiting the message segmentation patterns. In PSKS, we first extract the message segmentation patterns by scoring the segmentation possibility scale for each position of messages, and then extract statistical signatures by Kolmogorov-Smirnov test and feed the signatures to tri-training, a collaborative learning algorithm. The tri-training can improve the generalization ability of our final classifier. We implemented and evaluated PSKS, and the experimental results show that PSKS achieves an average precision and recall of approximately 98%.
机译:深入了解网络流量对于诸如网络管理和网络安全之类的各种应用很重要。在本文中,我们提出了一种新颖的协议识别系统PSKS,该系统依赖于网络数据包有效载荷的统计签名。所提出的方法基于以下关键见解:可以利用消息分段模式来进行准确的应用程序标识。具体地,由于不同协议具有不同消息格式(即,不同的消息分割模式)的原因,协议消息的每个位置的分割可能性表现出高度偏斜的频率分布。受此观察结果的启发,我们希望通过利用消息分割模式来提取统计应用程序指纹。在PSKS中,我们首先通过对消息每个位置的分割可能性等级进行评分来提取消息分割模式,然后通过Kolmogorov-Smirnov检验提取统计签名,并将签名提供给三训练(一种协作学习算法)。三训练可以提高我们最终分类器的泛化能力。我们实施并评估了PSKS,实验结果表明PSKS的平均精度和召回率约为98%。

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