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ASSOCIATION RULE MINING WITH SUBJECTIVE KNOWLEDGE

机译:与主观知识的协会规则挖掘

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In this paper, an analytical framework for association rule mining based on the Dempster-Shafer (DS) evidential reasoning is proposed. The method we propose associates itemsets in a database with basic probability assignments (bpas) encountered in DS theory to numerically quantify the complex interrelationships that exist among the itemsets, thus incorporating the subjective human reasoning that may otherwise be unaccounted for. In order to recast an association within this framework, measures of support and confidence in association rule mining derived via certain conditional notions are used. These measures utilize the associated subjective knowledge of the itemsets in order to discover the interesting patterns as opposed to a simple measure of frequency of occurrence of itemsets. The manner in which the frequency of occurrence is used in the existing methods also fail to capture the associations generated by the multiplicity of an item. However the method we propose uses the subjective assignment of a bpa in order to address this issue. The association rules thus formed capture the qualitative nature of the relationships among itemsets in the database which is not sufficiently well captured in the traditional data mining analysis methods.
机译:本文提出了一种基于Dempster-Shafer(DS)证据推理的关联规则挖掘的分析框架。该方法我们建议在DS理论遇到的数值量化项集之间存在,从而结合主观的人的推理否则可能下落不明的复杂关系与基本概率分配(BPAS)的数据库联营项目集。为了重新在本框架内的关联,使用通过某些条件概念衍生的关联规则挖掘的支持和置信度。这些措施利用了项目集的相关主观知识,以发现有趣的模式,而不是简单地衡量项目集的发生频率。在现有方法中使用发生频率的方式也未能捕获由项目的多重性产生的关联。然而,我们提出的方法使用BPA的主观分配来解决这个问题。因此,组织规则形成了在传统数据挖掘分析方法中捕获了数据库中的项目集之间的关系的定性性质。

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