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Analysis of association rule extraction between rough set and concept lattice

机译:粗糙集与概念格之间的关联规则提取分析

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The model of concept lattice has strong ability of knowledge representation and knowledge discovery. Rough set theory based on the attribute reduction method often inevitably cuts out some useful information. Concept lattice, by contrast, has the relative completeness in association rule mining, and is user-friendly to find interesting information. So it can improve the mining efficiency. Based on the summaries of several typical attribute reduction algorithms, the thesis extracts association rules from the decision table, and shows that concept lattice can better realize the intuitive visualization in the process of association rule mining.
机译:概念格模型具有较强的知识表示和知识发现能力。基于属性约简方法的粗糙集理论常常不可避免地切出一些有用的信息。相比之下,概念格在关联规则挖掘中具有相对的完整性,并且便于用户查找有趣的信息。这样可以提高开采效率。在总结几种典型的属性约简算法的基础上,从决策表中提取出关联规则,表明概念格可以更好地实现关联规则挖掘的直观可视化。

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