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首页> 外文期刊>International Journal of Computational Intelligence and Applications >GENETIC PROGRAMMING APPROACH FOR MULTI-CATEGORY PATTERN CLASSIFICATION APPLIED TO NETWORK INTRUSIONS DETECTION
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GENETIC PROGRAMMING APPROACH FOR MULTI-CATEGORY PATTERN CLASSIFICATION APPLIED TO NETWORK INTRUSIONS DETECTION

机译:用于网络入侵检测的多类别模式分类的遗传规划方法

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摘要

The present paper describes a new approach of classification using genetic programming. The proposed technique consists of genetically co-evolve a population of nonlinear transformations on the input data to be classified, and map them to a new space with reduced dimension in order to get a maximum inter-classes discrimination. It is much easier to classify the new samples from the transformed data. Contrary to the existing GP-classification techniques, the proposed one uses a dynamic repartition of the transformed data in separated intervals, the efficiency of a given intervals repartition is handled by the fitness criterion, with a maximum classes discrimination. Experiments were performed using the Fisher's Iris dataset. After that, the KDD'99 Cup dataset was used to study the intrusion detection and classification problem. The results demonstrate that the proposed genetic approach outperforms the existing GP-classification methods, and provides improved results compared to other existing techniques.
机译:本文介绍了一种使用遗传规划进行分类的新方法。所提出的技术包括在待分类的输入数据上对一组非线性变换进行遗传共进化,然后将它们映射到维数减小的新空间,从而获得最大的类别间区别。从转换后的数据中对新样本进行分类要容易得多。与现有的GP分类技术相反,提出的方法在分离的间隔中使用转换数据的动态重新划分,给定间隔重新划分的效率由适应性标准处理,最大程度地区分了类别。使用Fisher的Iris数据集进行实验。之后,使用KDD'99 Cup数据集来研究入侵检测和分类问题。结果表明,提出的遗传方法优于现有的GP分类方法,并且与其他现有技术相比,提供了改进的结果。

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