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A novel intrusion detectionmethod based on threshold modification using receiver operating characteristic curve

机译:基于阈值修改的新颖侵入检测方法使用接收机操作特性曲线

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摘要

Class imbalance makes traditional intrusion detection system have low detection rate (DR) and high false positive rate (FR) for minority class, which is unsuitable for practical needs. In order to improve the DRs and reduce FRs of minority classes, we propose a novel intrusion detection method, which combines convolutional neural networks (CNNs) algorithm with threshold modification method based on receiver operating characteristic (ROC) curve. In this method, we use CNNs as a classifier and modify threshold of the classifier through ROC curve. In addition, NSLKDD dataset and UNSW-NB15 dataset have been carried out to evaluate the performance of this method. The experimental results illustrate that the proposed method has a better performance no matter in improving DRs or reducing FRs of minority classes.
机译:类别不平衡使传统的入侵检测系统具有低检测率(DR)和少数级别的高误频率(FR),这是不适合实践需求的。为了改善少数民族类别的DRS和降低FR,我们提出了一种新的入侵检测方法,其将卷积神经网络(CNNS)算法与基于接收器操作特征(ROC)曲线的阈值修正方法相结合。在此方法中,我们使用CNN作为分类器并通过ROC曲线修改分类器的阈值。此外,已执行NSLKDD数据集和UNSW-NB15数据集以评估该方法的性能。实验结果表明,无论改善少数群体的DRS还是还原FR,所提出的方法都具有更好的性能。

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