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Mining optimized association rules with categorical and numeric attributes

机译:使用分类和数字属性进行优化的关联规则

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Association rules are useful for determining correlations between attributes of a relation and have applications in marketing, financial and retail sectors. Furthermore, optimized association rules are an effective way to focus on the most interesting characteristics involving certain attributes. Optimized association rules are permitted to contain uninstantiated attributes and the problem is to determine instantiations such that either the support or confidence of the rule is maximized. We generalize the optimized association rules problem in three ways: (1) association rules are allowed to contain disjunctions over uninstantiated attributes; (2) association rules are permitted to contain an arbitrary number of uninstantiated attributes; and (3) uninstantiated attributes can be either categorical or numeric. Our generalized association rules enable us to extract more useful information about seasonal and local patterns involving multiple attributes. We present effective techniques for pruning the search space when computing optimized association rules for both categorical and numeric attributes. Finally, we report the results of our experiments that indicate that our pruning algorithms are efficient for a large number of uninstantiated attributes, disjunctions and values in the domain of the attributes.
机译:关联规则可用于确定关系属性之间的相关性,并在营销,金融和零售业方面具有应用。此外,优化关联规则是专注于涉及某些属性的最有趣特性的有效方法。允许优化的关联规则包含不当的属性,问题是确定实例化,使得规则的支持或置信度最大化。我们在三种方面概括了优化关联规则问题:(1)允许关联规则包含不受不稳定属性的障碍; (2)允许关联规则包含任意数量的不禁止属性; (3)不当地属性可以是分类或数字。我们的广义关联规则使我们能够提取有关涉及多个属性的季节和本地模式的更有用信息。我们在计算分类和数字属性的优化关联规则时,我们提供了用于修剪搜索空间的有效技术。最后,我们报告了我们的实验结果,表明我们的修剪算法对于大量不行的属性,剖析和属性域中的值是有效的。

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