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基于粗糙集理论的网络型入侵检测系统

Network-based Intrusion Detection System Using Rough Set

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【作者】 张红梅王勇王行愚

【Author】 ZHANG Hongmei 1,2,WANG Yong 1,2,WANG Xingyu 1(1.School of Information Science and Engineering,East China University of Science & Technology,Shanghai 200237;2.Network Information Center,Guilin University of Electronic Technology,Guilin 541004)

【机构】 华东理工大学信息学院华东理工大学信息学院 上海200237桂林电子工业学院网络信息中心桂林541004上海200237

【摘要】 为解决目前大多数入侵检测产品或模型对未知攻击的检测都存在精度低或者虚警率高的问题,建立了一个基于网络的入侵检测实验平台,使用了多种新的攻击工具实施攻击;并在此基础上提取了网络连接的29项实时特征;应用粗糙集理论实现了一个网络连接的检测器。经实验表明,所选取的网络连接特征能较好地反映网络安全状况,粗糙集理论应用于多类分类问题和未知攻击的检测方面是有效的。

【Abstract】 Most of current products and models are poor at detecting novel attacks without an acceptable level of accuracy or false alarms.In order to figure out this problem,a network based intrusion detection system is established,and many up-to-date attack tools are used to attack the network.On the basis of the intrusion experiment,29 variables are chosen as intrusion features to characterize the status of network connection.At the same time,the rough sets theory is exploited as a detector of network connection.The experimental results indicate that the features extracted from network connection are good indicators of the status of network and the rough sets theory is powerful in multi-class classification as well as effective in unknown attack detection.

【基金】 国家自然科学基金资助项目(69974014);教育部高校博士点基金资助项目(20040251010)
  • 【文献出处】 计算机工程 ,Computer Engineering , 编辑部邮箱 ,2006年19期
  • 【分类号】TP393.08
  • 【被引频次】9
  • 【下载频次】183
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