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Novel fuzzy classification approaches based on optimisation of association rules

机译:基于关联规则优化的新型模糊分类方法

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The present paper proposes an approach for classification based on fuzzy rules. The paper mainly concentrates to optimize the association rules for classification. The present study proposes a method called Integrated Rule Classifier (IRC). To develop a Fuzzy Association Rule (FAR) algorithm to produce rules which are suitable for signature-based and anomaly-based detection for mining purposes with attacks. The proposed IRC derives cluster representatives. In the second step FAR's are formed. A lot of flexibility is achieved by the proposed IRC scheme which is not possible in the existing algorithms. One can use any clustering algorithm in step-1 depending on the data-set and other constraints. The other flexibility is that FAR's can be formed based on all cluster representatives or randomly chosen representatives. The proposed IRC methodology is experimented on network audit data collected from KDDCUP99 data-set with class-labels of various network attacks.
机译:本文提出了一种基于模糊规则的分类方法。本文主要集中于优化分类的关联规则。本研究提出了一种称为集成规则分类器(IRC)的方法。开发模糊关联规则(FAR)算法,以产生适用于基于签名的基于异常的基于异常的检测,以攻击采矿目的。拟议的IRC来自集群代表。在第二步中形成。通过所提出的IRC方案实现了许多灵活性,该IRC方案在现有算法中是不可能的。可以根据数据集和其他约束在步骤-1中使用任何聚类算法。其他灵活性是,远远可以根据所有集群代表或随机选择的代表形成。所提出的IRC方法是在从KDDCup99数据集收集的网络审计数据上,使用各种网络攻击的类标签收集。

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