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首页> 外文期刊>International Journal of Knowledge Engineering and Data Mining >UTARM: an efficient algorithm for mining of utility-oriented temporal association rules
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UTARM: an efficient algorithm for mining of utility-oriented temporal association rules

机译:UTARM:一种用于挖掘面向效用的时间关联规则的有效算法

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摘要

Recently, association rule mining has become an area of interest for research in the field of knowledge discovery and several algorithms have been established. Lately, for business development, data mining researchers have enhanced the quality of association rule mining for the mining of association patterns by integrating the influential factors, for instance temporal, value (utility) and more. Here, we have proposed an efficient algorithm, called UTARM (Utility-Based Temporal Association Rule Mining), which combines both temporal (time periods) and utility for mining of remarkable and helpful association rules. The proposed algorithm can be able to mine utility-oriented temporal association rules by adapting the support with relevant to the time periods and utility. Furthermore, the scan time required for finding the FTU itemsets is considerably reduced. The experimentation is carried out on large data sets and the experimental results ensure that the proposed algorithm effectively discovers the utility-oriented temporal association rules.
机译:近来,关联规则挖掘已成为知识发现领域中研究的兴趣领域,并且已经建立了几种算法。最近,对于业务发展,数据挖掘研究人员通过集成影响因素(例如时间,价值(效用)等)来提高关联规则挖掘的质量,以挖掘关联模式。在这里,我们提出了一种有效的算法,称为UTARM(基于实用工具的时间关联规则挖掘),该算法结合了时间(时间段)和实用程序,用于挖掘显着而有用的关联规则。通过使支持与时间段和效用有关,所提出的算法能够挖掘面向效用的时间关联规则。此外,大大减少了查找FTU项目集所需的扫描时间。在大数据集上进行了实验,实验结果确保了该算法有效地发现了面向效用的时间关联规则。

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