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A template model for multidimensional inter-transactional association rules

机译:多维事务间关联规则的模板模型

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Multidimensional inter-transactional association rules extend the traditional association rules to describe more general associations among items with multiple properties across transactions. "After McDonald and Burger King open branches, KFC will open a branch two months later and one mile away" is an example of such rules. Since the number of potential inter-transactional association rules tends to be extremely large, mining inter-transactional associations poses more challenges on efficient processing than mining traditional intra-transactional associations. In order to make such association rule mining truly practical and computationally tractable, in this study we present a template model to help users declare the interesting multidimensional inter-transactional associations to be mined. With the guidance of templates, several optimization techniques, i.e., joining, converging, and speeding, are devised to speed up the discovery of inter-transactional association rules. We show, through a series of experiments on both synthetic and real-life data sets, that these optimization techniques can yield significant performance benefits.
机译:多维事务间关联规则扩展了传统的关联规则,以描述跨事务具有多个属性的项目之间的更一般的关联。 “在麦当劳和汉堡王开设分行之后,肯德基将在两个月后又相距一英里的地方开设分行”。由于潜在的交易间关联规则的数量趋向于非常大,因此与挖掘传统的交易内关联相比,挖掘交易间关联对有效处理提出了更多的挑战。为了使这种关联规则挖掘真正可行并且在计算上易于处理,在本研究中,我们提出了一个模板模型,以帮助用户声明要挖掘的有趣的多维事务间关联。在模板的指导下,设计了几种优化技术,即连接,收敛和加速,以加快事务间关联规则的发现。通过对合成数据集和实际数据集进行的一系列实验,我们证明了这些优化技术可以带来显着的性能优势。

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