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MrCAR: A Multi-relational Classification Algorithm based on Association Rules

机译:MRCAR:一种基于关联规则的多关系分类算法

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Classification is an important subject in data mining and machine learning, which has been studied extensively and has a wide range of applications. Classification based on association rules is one of the most effective classification method, whose accuracy is higher and discovered rules are easier to understand comparing with classical classification methods. However, current algorithms for classification based on association rules is single table oriented, which means they can only apply to the data stored in a single relational table. Directly applying these algorithms in multi-relational data environment will result in many problems. This paper proposes a novel algorithm MrCAR for classification based on association rules in multi-relational data environment. MrCAR mines relevant features in each table to predict the class label. Close itemsets technique and Tuple ID Propagation method are used to improve the performance of the algorithm. Experimental results show that MrCAR has higher accuracy and better understandability comparing with a typical existing multi-relational classification algorithm.
机译:分类是数据挖掘和机器学习中的一个重要主题,它已经广泛研究并具有广泛的应用。基于关联规则的分类是最有效的分类方法之一,其准确性较高,发现规则更容易理解与经典分类方法相比。然而,基于关联规则的分类的当前算法是面向表的,这意味着它们只能适用于存储在单个关系表中的数据。直接在多关系数据环境中应用这些算法将导致许多问题。本文提出了一种基于多关联规则在多关联数据环境中进行分类的新型算法MRCAR。 MRCAR挖掘每个表中的相关功能以预测类标签。关闭项目集技术和元组ID传播方法用于提高算法的性能。实验结果表明,与典型的现有多关联分类算法相比,MRCAR具有更高的准确性和更好的可理解性。

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