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Mining Fuzzy Rules from large Relational Databases

机译:从大型关系数据库中挖掘模糊规则

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摘要

Mining association rules and sequential rules from large databases is an important task of data mining. Precious work is focused on definite and accurate concepts, which may not be concise and meaningful enough for human experts to easily obtain nontrivial knowledge from the rules discovered. The definition of fuzzy concepts is based on fuzzy set theory, which is especially useful when the discovered rules are presented to human experts for examination. In this paper, we present the algorithms for discovering fuzzy association rules and fuzzy sequential rules expressed by fuzzy concepts from large relational databases.
机译:从大型数据库中挖掘关联规则和顺序规则是数据挖掘的重要任务。宝贵的工作集中在确定而准确的概念上,对于人类专家而言,这些概念可能不够简洁和有意义,无法从发现的规则中轻松获取非平凡的知识。模糊概念的定义基于模糊集理论,当将发现的规则提交给人类专家进行检查时,该概念特别有用。在本文中,我们提出了从大型关系数据库中发现模糊概念表示的模糊关联规则和模糊顺序规则的算法。

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