Fuzzy logic on decision model for IDS

A. Orfila, J. Rubiera, A. Ribagorda
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引用次数: 15

Abstract

Nowadays one of the main problems of Intrusion Detection Systems (IDS) is the high rate of false positives that they show. The number of alerts that an IDS launches are clearly higher than the number of real attacks. This paper tries to introduce a measure of the IDS prediction skill in close relationship with these false positives. So the prediction skill of an IDS is then computed according to the false positives produced. The problem faced is how to make an accurate prediction from the results of different IDS. The fraction of IDS over the total number of them that predicts a given event will determine whether such event is predicted or not. The performance obtained from the application of fuzzy thresholds over such fraction is compared with the corresponding crisp thresholds. The results of these comparisons allow us to conclude a relevant improvement when fuzzy thresholds are involved.
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入侵检测系统决策模型的模糊逻辑
当前入侵检测系统存在的主要问题之一是系统的误报率高。IDS发出的警报数量明显高于实际攻击的数量。本文试图引入一种与这些假阳性密切相关的IDS预测技巧的度量。因此,根据产生的假阳性计算IDS的预测能力。面临的问题是如何根据不同的入侵检测结果做出准确的预测。预测给定事件的IDS数量占IDS总数的比例将决定是否预测该事件。将模糊阈值的应用与相应的清晰阈值进行了比较。这些比较的结果使我们得出结论,当模糊阈值涉及相关的改进。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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