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An Intrusion Detection Algorithm Based on Decision Tree Technology

机译:一种基于决策树技术的入侵检测算法

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摘要

Traditional intrusion detection technology exists a lot of problems, such as low performance, low intelligent level, high false alarm rate, high false negative rate and so on. In this paper, C4.5 decision tree classification method is used to build an effective decision tree for intrusion detection, then convert the decision tree into rules and save them into the knowledge base of intrusion detection system. These rules are used to judge whether the new network behavior is normal or abnormal. Experiments show that: the detection accuracy rate of intrusion detection algorithm based on C4.5 decision tree is over 90%, and the process of constructing rules is easy to understand, so it is an effective method for intrusion detection.
机译:传统的入侵检测技术存在很多问题,如低性能,低智能水平,高误报率,高误报率等。在本文中,C4.5决策树分类方法用于构建用于入侵检测的有效决策树,然后将决策树转换为规则并将其保存到入侵检测系统的知识库中。这些规则用于判断新的网络行为是否正常或异常。实验表明:基于C4.5决策树的入侵检测算法检测精度率超过90%,并且构建规则的过程易于理解,因此它是一种有效的入侵检测方法。

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