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A Novel Cloud Intrusion Detection System Using Feature Selection and Classification

机译:基于特征选择和分类的新型云入侵检测系统

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This paper proposes a new cloud intrusion detection system for detecting the intruders in a traditional hybrid virtualized, cloud environment. The paper introduces an effective feature selection algorithm called Temporal Constraint based on Feature Selection algorithm and also proposes a classification algorithm called hybrid decision tree. This hybrid decision tree has been developed by extending the Enhanced C4.5 algorithm an existing decision tree based classifier. Furthermore, the experiments conducted on the sample Cloud Intrusion Detection Datasets (CIDD) show that the proposed cloud intrusion detection system provides better detection accuracy than the existing work and reduces the false positive rate.
机译:本文提出了一种新的云入侵检测系统,用于检测传统混合虚拟化云环境中的入侵者。本文介绍了一种基于特征选择算法的有效时间选择约束算法,并提出了一种称为混合决策树的分类算法。通过将增强型C4.5算法扩展为现有的基于决策树的分类器,可以开发出此混合决策树。此外,对样本云入侵检测数据集(CIDD)进行的实验表明,所提出的云入侵检测系统比现有工作提供了更好的检测精度,并降低了误报率。

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