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Utility-based association rule mining: A marketing solution for cross-selling

机译:基于实用程序的关联规则挖掘:交叉销售的营销解决方案

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Recently, a utility-based mining approach has emerged as an alternative mechanism to frequency-based mining in an attempt to reflect not only the statistical correlation but also the semantic significance (e.g., price and quantity) of items. However, existing mining trajectories utilizing high-utility itemsets may not offer firms sufficient business insights unless they can precisely assess the value of association rules, which may vary substantially depending on many business parameters included in the assessment. In this study, we propose a utility-based association-rule mining method that valuates association rules by measuring their specific business benefits accruing to firms. Based on previous studies, three key elements (opportunity, effectiveness, and probability) are identified to define and operationalize a users' preference as a utility function. To apply the utility-based mechanism to the processing of large transaction databases, we constructed functional algorithms, with heightened attention paid to their pruning strategies, and evaluated them based on real-world databases. Experimental results show that the proposed approach can provide users with greater business benefits than the high-utility itemset mining approach, suggesting several important strategic implications for both research and practice.
机译:最近,基于实用程序的挖掘方法已经出现,作为基于频率的挖掘的替代机制,试图不仅反映统计相关性,而且反映出项目的语义重要性(例如,价格和数量)。但是,利用高实用性项目集的现有采矿轨迹可能无法为公司提供足够的业务洞察力,除非他们可以准确地评估关联规则的价值,关联规则的价值可能会根据评估中包括的许多业务参数而有很大差异。在这项研究中,我们提出了一种基于效用的关联规则挖掘方法,该方法通过测量关联规则对公司的特定业务收益来评估关联规则。根据以前的研究,确定了三个关键要素(机会,有效性和概率)来定义和操作用户的偏好作为效用函数。为了将基于实用程序的机制应用于大型交易数据库的处理,我们构建了功能算法,并高度重视其修剪策略,并基于实际数据库对其进行了评估。实验结果表明,与高功能项集挖掘方法相比,该方法可以为用户提供更大的业务收益,这对研究和实践都具有重要的战略意义。

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