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An improved NSGA-III algorithm for feature selection used in intrusion detection

机译:改进的NSGA-III特征选择算法在入侵检测中的应用

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Feature selection can improve classification accuracy and decrease the computational complexity of classification. Data features in intrusion detection systems (IDS) always present the problem of imbalanced classification in which some classifications only have a few instances while others have many instances. This imbalance can obviously limit classification efficiency, but few efforts have been made to address it. In this paper, a scheme for the many-objective problem is proposed for feature selection in IDS, which uses two strategies, namely, a special domination method and a predefined multiple targeted search, for population evolution. It can differentiate traffic not only between normal and abnormal but also by abnormality type. Based on our scheme, NSGA-III is used to obtain an adequate feature subset with good performance. An improved many-objective optimization algorithm (I-NSGA-III) is further proposed using a novel niche preservation procedure. It consists of a bias-selection process that selects the individual with the fewest selected features and a fit-selection process that selects the individual with the maximum sum weight of its objectives. Experimental results show that I-NSGA-III can alleviate the imbalance problem with higher classification accuracy for classes having fewer instances. Moreover, it can achieve both higher classification accuracy and lower computational complexity. (C) 2016 Elsevier B.V. All rights reserved.
机译:特征选择可以提高分类的准确性,并降低分类的计算复杂度。入侵检测系统(IDS)中的数据功能始终存在分类不平衡的问题,其中某些分类仅包含少数几个实例,而其他分类则具有很多实例。这种不平衡显然会限制分类效率,但很少有人努力解决。本文提出了一种多目标问题的IDS特征选择方案,该方案采用两种策略,即特殊的控制方法和预定义的多目标搜索进行种群进化。它不仅可以区分正常流量和异常流量,还可以按异常类型区分流量。基于我们的方案,NSGA-III用于获得具有良好性能的适当特征子集。使用一种新的小生境保存程序,进一步提出了一种改进的多目标优化算法(I-NSGA-III)。它由一个偏向选择过程和一个拟合选择过程组成,偏向选择过程选择具有最少选定特征的个体,拟合选择过程选择具有最大目标权重的个体。实验结果表明,对于实例较少的类,I-NSGA-III可以较高的分类精度缓解不平衡问题。而且,它既可以实现更高的分类精度又可以降低计算复杂度。 (C)2016 Elsevier B.V.保留所有权利。

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