Enhance the Multi-level Fuzzy Association Rules Based on Cumulative Probability Distribution Approach

Jr-Shian Chen, Fuh-Gwo Chen, Jen-Ya Wang
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引用次数: 9

Abstract

This paper introduces a fusion model to reinforce multi-level fuzzy association rules, which integrated cumulative probability distribution approach (CPDA) and multi-level taxonomy concepts to extract fuzzy association rules. The proposed model generate large item sets level by level and mine multi-level fuzzy association rule lead to finding more informative and important knowledge from transaction dataset, which is more objective and reasonable in determining the universe of discourse and membership functions with other multi-level fuzzy association rules.
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基于累积概率分布方法的多级模糊关联规则改进
本文提出了一种融合模型,该模型将累积概率分布方法(CPDA)和多级分类法的概念结合起来提取模糊关联规则。该模型逐级生成大型项目集,挖掘多层次模糊关联规则,从交易数据集中发现更多信息丰富的重要知识,与其他多层次模糊关联规则相比,在确定话语域和隶属函数方面更加客观合理。
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