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A novel selection method of network intrusion optimal route detection based on naive Bayesian

机译:基于朴素贝叶斯的网络入侵最优路由选择新方法

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摘要

In order to improve the network security performance and resist the increasingly complex and diversified network intrusion, and reduce the false alarm rate of network intrusion and improve the detection efficiency, this paper proposes the selection method of the network intrusion optimal route detection based on naive Bayesian. We selected the feature subset of network route data by the principal component analysis and accordingly processed the network route detection sample set, getting the input characteristics of network route detection. The research selected the new low dimensional feature of network route data through linear or nonlinear transformation, and used the naive Bayesian network structure to classify the new network route data set. Simulation results show that the proposed method can improve the detection rate of network intrusion optimal route and reduce the false alarm rate, getting a more perfect result of network intrusion detection.
机译:为了提高网络安全性能,抵御日益复杂和多样化的网络入侵,降低网络入侵的误报率,提高检测效率,提出了一种基于朴素贝叶斯的网络入侵最优路由选择方法。 。我们通过主成分分析选择了网络路由数据的特征子集,并对网络路由检测样本集进行了相应处理,得到了网络路由检测的输入特征。该研究通过线性或非线性变换选择了网络路由数据的新低维特征,并使用朴素的贝叶斯网络结构对新的网络路由数据集进行分类。仿真结果表明,该方法可以提高网络入侵最优路由的检测率,降低误报率,获得更加理想的网络入侵检测结果。

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