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Intrusion detection based on artificial immune network clustering
Pages: 374-378
Year: Issue:  4
Journal: Journal of Chengdu University Of Information Technology

Abstract: 提出了一种基于自适应半径免疫算法(ARIA)的入侵检测方法.ARIA训练得到的抗体网络充分保留了原始数据的密度分布信息,具有准确的空间形态;再用最小生成树算法和zahn划分标准对抗体网络细胞聚类,聚类得到的簇被标记为正常或异常并用于网络异常检测中.对KDD CUP 99数据集的实验结果表明:相对于基于aiNet的入侵检测方法,新的算法检测率高、误报率低,能够有效识别KDD中的已知攻击和未知攻击.
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