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Dynamic Identification for Personalized Product Recommendations Based on Fuzzy Discrete Event Systems

机译:基于模糊离散事件系统的个性化产品推荐的动态识别

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In this paper, we propose a new approach of dynamic identification to personalized product recommendations. Using this approach, we can predict the preferences of customers on products and help the customers to find the right products. The approach is a two-step procedure. The first step is to find the preferences of a customer on product features. The second step is to find the relationship between customer's preferences on product features and customer's evaluations of these products. For the first step, the preferences of the customer vary over time. In order to deal with the time-varying nature of customers, we use fuzzy discrete event system technology. For the second step, a back-propagation neural network is used to estimate the relationship between customer's preferences and evaluations. The approach is applied to movie recommendations using Movielens database. The results are significantly better than the traditional approaches.
机译:在本文中,我们向个性化产品建议提出了一种动态识别的新方法。使用这种方法,我们可以预测客户对产品的偏好,并帮助客户找到合适的产品。该方法是两步过程。第一步是找到客户对产品功能的偏好。第二步是找到客户对产品特征和客户对这些产品的评估的偏好之间的关系。对于第一步,客户的偏好随着时间的变化而变化。为了处理客户的时变性,我们使用模糊离散事件系统技术。对于第二步,使用反向传播神经网络来估计客户偏好和评估之间的关系。使用MOVIELENS数据库将该方法应用于电影建议。结果明显优于传统方法。

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