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Improving the performance of self-organizing maps for intrusion detection

机译:提高自组织地图的入侵检测性能

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The use of self-organizing maps in intrusion detection has not been practical for attack analysis as a result of the computational processing time required for large volumes of data. Although previous research has addressed this problem through optimizing the algorithms used for self-organizing maps and through feature reduction, there is no existing solution for using self-organizing maps for intrusion detection that adequately addresses the problem of computational performance to make self-organizing maps practical for analysis of intrusion detection data. This research demonstrates a method of preprocessing that includes discretization, deduplication, binary filtering for imbalanced datasets, and feature extraction to improve the performance and optimize the quality of clustering in self-organizing maps.
机译:由于大量数据所需的计算处理时间,在入侵检测中使用自组织地图对攻击分析并不实用。虽然以前的研究通过优化用于自组织地图的算法并通过特征减少来解决了这个问题,但没有现有的解决方案,用于使用自组织地图进行入侵检测,以充分解决进行自组织地图的计算性能问题实用用于分析入侵检测数据。该研究演示了一种预处理的方法,包括离散化,重复数据删除,用于实施数据集的二进制滤波,以及特征提取,以提高性能并优化自组织地图中的聚类质量。

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