Revolutionizing supermarket services with hierarchical association rule mining

M. Meftah, S. Ounacer, S. Ardchir, M. El Ghazouani, M. Azzouazi
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引用次数: 0

Abstract

The use of association rule mining techniques has become a focal point for many researchers seeking a better understanding of consumer behavior. By analyzing the relationships between products and their placement in aisles, valuable insights can be gained into the factors that influence product preservation in large-scale distribution environments. This approach has the potential to inform better decision-making processes and optimize product preservation outcomes, despite some limitations in the quality of the data available. Additionally, a hybridization approach was adopted by incorporating transactions from clients participating in a loyalty program to encourage large-scale distributions to gain a better understanding of customer behavior and improve their purchasing strategies. The goal of this research is to promote consistency between the real-world and virtual representations of customer behavior, ultimately leading to improved purchasing outcomes for large-scale distributions.
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利用分层关联规则挖掘革新超市服务
使用关联规则挖掘技术已经成为许多研究人员寻求更好地理解消费者行为的焦点。通过分析产品之间的关系及其在通道中的位置,可以获得影响大规模分销环境中产品保存的因素的有价值的见解。这种方法有可能为更好的决策过程提供信息,并优化产品保存结果,尽管现有数据的质量存在一些限制。此外,还采用了一种混合方法,将参与忠诚计划的客户的交易纳入其中,以鼓励大规模分销,从而更好地了解客户行为并改进他们的购买策略。本研究的目标是促进客户行为的真实世界和虚拟表现之间的一致性,最终导致大规模分销的改善购买结果。
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来源期刊
Mathematical Modeling and Computing
Mathematical Modeling and Computing Computer Science-Computational Theory and Mathematics
CiteScore
1.60
自引率
0.00%
发文量
54
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