利用田口法提高基于异常的入侵检测系统的准确性

T. Konno, M. Tateoka
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引用次数: 5

摘要

在基于异常的入侵检测系统的开发中,提高检测精度是非常重要的。它被认为是一种划分正常攻击和潜在攻击阈值的优化问题。为此,我们采用了Toguchi方法,这是一种质量工程技术。我们还采用了“数字数据标准化信噪比”的方法,以同时提高误检率和真检率这两个相反的特性。通过提供更多的正训练数据,可以进一步降低误检率。通过这些技术,实际数据的假阳性率达到0.186%或更低。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Accuracy Improvement of Anomaly-Based Intrusion Detection System Using Taguchi Method
In development of anomaly-based Intrusion Detection System, improving detection accuracy is important. It is considered a kind of optimization problem of the thresholds for dividing normal and potential attack. We applied the Toguchi method, which is a technique for quality engineering, for this purpose. We also use "the standardized signal-to-noise ratio of digital data" approach in order to improve simultaneously the two opposite characteristics, false detection rate and true detection rate. The false detection rate can be more decreased by giving more positive training data. By these techniques, 0.186% or the less false positive rate is attained in real data.
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