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Development of a recommender system based on navigational and behavioral patterns of customers in e-commerce sites

机译:根据电子商务网站中客户的导航和行为模式开发推荐系统

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In this article, a novel CF (collaborative filtering)-based recommender system is developed for e-commerce sites. Unlike the conventional approach in which only binary purchase data are used, the proposed approach analyzes the data captured from the navigational and behavioral patterns of customers, estimates the preference levels of a customer for the products which are clicked but not purchased, and CF is conducted using the preference levels for making recommendations. This also compares with the existing works on clickstream data analysis in which the navigational and behavioral patterns of customers are analyzed for simple relationships with the target variable. The effectiveness of the proposed approach is assessed using an experimental e-commerce site. It is found among other things that the proposed approach outperforms the conventional approach in almost all cases considered. The proposed approach is versatile and can be applied to a variety of e-commerce, sites as long as the navigational and behavioral patterns of customers can be captured.
机译:在本文中,为电子商务站点开发了一种基于CF(协作过滤)的新型推荐系统。与仅使用二进制购买数据的常规方法不同,该提议的方法分析了从客户的导航和行为模式中捕获的数据,估计了客户对被点击但未购买的产品的偏好水平,并进行了CF使用偏好级别进行推荐。这也与有关点击流数据分析的现有工作进行了比较,在该工作中,分析了客户的导航和行为模式以与目标变量建立简单关系。使用实验性电子商务站点评估了所提出方法的有效性。可以发现,在几乎所有考虑的情况下,提出的方法都优于传统方法。所提出的方法是通用的,并且可以应用于各种电子商务站点,只要可以捕获客户的导航和行为模式即可。

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