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An Apparel Recommender System Based on Data Mining

机译:基于数据挖掘的服装推荐系统

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The rapid e-commerce growth has made both business community and customers face a new situation. Web usage mining attempts to discover useful knowledge from the secondary data obtained from the interactions of the customers with the Web. In this paper, we present a case study of an on-line system that recommends apparels based on a knowledge base that consists of rules gotten from decision tree mining and experienced dressing knowledge. To get these rules, apparel components features such as collar style, number of buttons, slits, kind of fabrics, color and apparel style, etc. that characterize the domain of interest in our case must be extracted at first. Then the components features of apparel products that customers browse or purchase are analyzed and a decision tree model which could infer the customersȁ9; "tastes" from their personal information could be gotten. Therefore, the system could recommend apparel items catering customers "tastes" according the decision tree model. The architecture and general technology of our on-line recommender system are described also. We believe that this approach is relevant to a wider class of e-commerce problems and it can be used in a variety of recommender systems.
机译:电子商务的快速增长使商业社区和客户都面临着新的局面。 Web用法挖掘尝试从从客户与Web的交互中获得的辅助数据中发现有用的知识。在本文中,我们将介绍一个在线系统的案例研究,该系统基于一个知识库来推荐服装,该知识库包括从决策树挖掘中获得的规则和经验丰富的服装知识。为了获得这些规则,必须首先提取服装组件的特征,例如衣领样式,纽扣数量,开叉,织物种类,颜色和服装样式等,这些特征是我们所关注领域的特征。然后分析了顾客浏览或购买的服装产品的组成特征,并建立了一个可以推论出顾客ȁ9的决策树模型。可以从他们的个人信息中获得“趣味”。因此,系统可以根据决策树模型推荐满足客户“口味”的服装项目。还介绍了我们的在线推荐系统的体系结构和一般技术。我们认为,这种方法与更广泛的电子商务问题相关,并且可以在各种推荐系统中使用。

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