基于Soundex算法和N-gram技术的神经模糊系统调用主机异常检测性能分析

Byung-Rae Cha
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引用次数: 8

摘要

为了改进使用系统调用的异常入侵检测系统,本研究重点研究了使用Soundex算法的神经模糊学习,该算法旨在将特征选择和变长数据转换为固定长度的学习模式。即利用Soundex算法将变长序列系统调用数据转化为固定长度的行为模式,进行具有模糊隶属函数的反向传播神经网络。利用UNM的sendmail数据,将神经模糊和N-gram技术应用于系统调用的异常入侵检测,以验证其性能。
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Host anomaly detection performance analysis based on system call of neuro-fuzzy using Soundex algorithm and N-gram technique
To improve the anomaly intrusion detection system using system calls, this study focuses on neuro-fuzzy learning using the Soundex algorithm which is designed to change feature selection and variable length data into a fixed length learning pattern. That is, by changing variable length sequential system call data into a fixed length behavior pattern using the Soundex algorithm, this study conducted backpropagation neural networks with fuzzy membership function. The neuro-fuzzy and N-gram techniques are applied for anomaly intrusion detection of system calls using sendmail data of UNM to demonstrate its performance.
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