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An AHP-Based Recommendation System for Exclusive or Specialty Stores

机译:专卖店或专卖店的基于AHP的推荐系统

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Recommendation system is an important method of solving the problem of information overload. It also helps consumers to save time while searching for goods. Numerous recommendation techniques are proposed. However, they still have to confront some weaknesses such as cold-start, gray sheep and matrix sparsity problems. The purpose of this paper is to propose a method to overcome the cold-start problem and recommend a fit item for consumers to improve the personalized service. The proposed method can be applied in the e-commerce websites of exclusive or specialty stores. It is a combination of the product knowledge and Analytic Hierarchy Process (AHP) method. There are two phases in the proposed method. Phase 1 is to calculate the weight between product attributes and create a candidate product set. Phase 2 is to conduct the recommendation from the candidate set. This paper also introduces the implementation experiences by taking the badminton racket recommendation as a case study example.
机译:推荐系统是解决信息超载问题的重要方法。它还可以帮助消费者节省搜索商品的时间。提出了许多推荐技术。但是,他们仍然必须面对一些弱点,例如冷启动,灰羊和矩阵稀疏性问题。本文的目的是提出一种克服冷启动问题并推荐适合消费者的产品的方法,以改善个性化服务。所提出的方法可以应用于专卖店或专卖店的电子商务网站。它是产品知识和层次分析法(AHP)方法的结合。所提出的方法有两个阶段。阶段1是计算产品属性之间的权重并创建候选产品集。第2阶段将从候选集中进行推荐。本文还以羽毛球拍推荐为例介绍了实施经验。

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