Research on the Application of CRFs Based on Feature Sets in Network Intrusion Detection

Jianping Li, Huiqiang Wang, Jianguang Yu
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引用次数: 7

Abstract

This thesis puts forward a method of CRFs (Conditional Random Fields) based on feature sets in network intrusion detection. This method takes advantages of the CRFs models which can stitch to sequence data marking and add random attributes. It uses varied connection information and its relativity in network connection information data sequence as well as the feature sets relativity to attack detection and discovery of abnormal phenomenon. It uses KDD Cup 1999 data sets as experimental data and comes to a conclusion that our proposed method is practicable, reliable and efficient.
基于特征集的CRFs在网络入侵检测中的应用研究
本文提出了一种基于特征集的条件随机场(CRFs)网络入侵检测方法。该方法利用了CRFs模型可以缝合序列数据标记和添加随机属性的优点。它利用网络连接信息数据序列中的各种连接信息及其相关性以及特征集相关性来进行攻击检测和异常现象的发现。以KDD Cup 1999数据集作为实验数据,结果表明本文提出的方法是可行、可靠和高效的。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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