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Network security management with traffic pattern clustering

机译:具有流量模式群集的网络安全管理

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摘要

Profiling network traffic pattern is an important approach for tackling network security problem. Based on campus network infrastructure, we propose a new method to identify randomly generated domain names and pinpoint the potential victim groups. We characterize normal domain names with the so called popular 2gram (2 consecutive characters in a word) to distinguish between active and nonexistent domain names. We also track the destination IPs of sources IPs and analyze their similarity of connection pattern to uncover potential anomalous group network behaviors. We apply the Hadoop technique to deal with the big data of network traffic and classify the clients as victims or not with the spectral clustering method.
机译:分析网络流量模式是解决网络安全问题的重要方法。基于校园网络基础结构,我们提出了一种新方法来识别随机生成的域名并查明潜在的受害者群体。我们用所谓的流行2gram(一个单词中连续2个字符)来区分正常域名,以区分活跃域名和不存在域名。我们还跟踪源IP的目标IP并分析它们的连接模式相似性,以发现潜在的异常组网络行为。我们采用Hadoop技术来处理网络流量的大数据,并使用频谱聚类方法将客户端分类为受害人或不受害人。

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