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Data Modeling of network dynamics

机译:网络动力学的数据建模

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摘要

This paper highlights Data Modeling theory and its use for text data mining as a graphical network search engine. Data Modeling is then used to create a real-time filter capable of monitoring network traffic down to the port level for unusual dynamics and changes in business as usual. This is accomplished in an unsupervised fashion without a priori knowledge of abnormal characteristics. Two novel methods for converting streaming binary data into a form amenable to graphics based search and change detection are introduced. These techniques are then successfully applied to 1999 KDD Cup network attack data log-on sessions to demonstrate that Data Modeling can detect attacks without prior training on any form of attack behavior. Finally, two new methods for data encryption using these ideas are proposed.
机译:本文重点介绍了数据建模理论及其在文本数据挖掘中作为图形网络搜索引擎的用途。然后,使用数据建模来创建实时过滤器,该过滤器能够监视直至端口级别的网络流量,以进行异常动态变化和照常营业。这是在没有先验知识的异常特征的情况下以无监督方式完成的。介绍了两种将流二进制数据转换为适合基于图形的搜索和更改检测的形式的新颖方法。这些技术随后成功地应用于1999 KDD Cup网络攻击数据登录会话,以证明Data Modeling无需事先进行任何形式的攻击行为培训即可检测到攻击。最后,提出了两种利用这些思想进行数据加密的新方法。

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