Handling numeric behavioral attributes in actionable behavioral rules mining

Peng Su, Jian Yang, Zhenpeng Li, Yuan Liu
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Abstract

Actionable behavioral rules mining is a new problem of data mining. The produced rules can provide the user explicit suggestions of actions to influence the behaviors of the entity in concern with satisfactory utility to the user. When mining such rules, it is assumed that all the behavioral attributes are categorical, while numerical attributes have been discretized in advance. However, this assumption will hinder the performance of the algorithms for mining such rules. In this paper, to handle this problem, a numeric-behavioral-attributes-based problem definitions and a corresponding mining algorithm are proposed. The experimental results strongly suggest the validity and the superiority of our approach.
在可操作行为规则挖掘中处理数字行为属性
可操作行为规则挖掘是数据挖掘中的一个新问题。生成的规则可以为用户提供明确的行动建议,以影响实体的行为,从而使用户满意。在挖掘这些规则时,假设所有的行为属性都是分类的,而数值属性则是预先离散化的。然而,这种假设会阻碍挖掘这些规则的算法的性能。为了解决这一问题,本文提出了一种基于数值-行为-属性的问题定义和相应的挖掘算法。实验结果有力地证明了该方法的有效性和优越性。
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