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PERSO-retailer: Modeling the retailer's business data: Toward recommender system of retailers' marketing plan for personalized CMS

机译:波斯零售商:塑造零售商的业务数据:朝向个性化CMS的零售商营销计划的推荐制度

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摘要

This research aims to exploring the new research of personalized information access in the context of the online retailing. In this paper, we present PERSO-Retailer Modeler, the first stage in this line of research. We propose to add a new level of personalization in the Content Management System (CMS) application by not only creating an e-commerce website to run the retailer's business but by recommending the most relevant marketing plan to ensure the business success. In this perspective, the main advantage of our approach is to transform the traditional CMS into a personal assistant that fits the retailer's selling strategies for product offerings. Our methodology is based on hierarchical clustering of retailer's model, then using the frequent pattern mining techniques to identify common strategies used in a given cluster. The preliminary finding of our experimentation prototyping encourage us to proceed to the next stage of the research which is to propose an evaluation framework as well as exploring further data-mining techniques.
机译:本研究旨在探索在线零售环境中的个性化信息访问的新研究。在本文中,我们展示了Perso-零售商建模者,这是这一研究线的第一阶段。我们建议在内容管理系统(CMS)申请中添加新的个性化水平,不仅通过创建电子商务网站来运行零售商的业务,而且通过推荐最相关的营销计划来确保商业成功。在这种角度来看,我们的方法的主要优势是将传统CMS转化为适合零售商销售产品销售策略的个人助理。我们的方法基于零售商模型的分层聚类,然后使用频繁的模式挖掘技术来识别给定集群中使用的常见策略。我们的实验原型设计的初步发现鼓励我们进入下一阶段的研究,该研究是提出评估框架以及探索进一步的数据挖掘技术。

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