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An Approach to Collaborative Filtering by ARTMAP Neural Networks

机译:ARTMAP神经网络的协同过滤方法

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Recommender systems are now widely used in e-commerce applications to assist customers to find relevant products from the many that are frequently available. Collaborative filtering (CF) is a key component of many of these systems, in which recommendations are made to users based on the opinions of similar users in a system. This paper presents a model-based approach to CF by using supervised ARTMAP neural networks (NN). This approach deploys formation of reference vectors, which makes a CF recommendation system able to classify user profile patterns into classes of similar profiles. Empirical results reported show that the proposed approach performs better than similar CF systems based on unsupervised ART2 NN or neighbourhood-based algorithm.
机译:推荐系统现在已广泛用于电子商务应用程序,以帮助客户从许多经常可用的产品中找到相关的产品。协作过滤(CF)是许多此类系统的关键组件,其中,系统会根据系统中相似用户的意见向用户提出建议。本文提出了一种使用监督的ARTMAP神经网络(NN)的基于模型的CF方法。这种方法部署了参考向量的形成,这使得CF推荐系统能够将用户配置文件模式分类为相似配置文件的类别。报告的经验结果表明,该方法的性能优于基于无监督ART2 NN或基于邻域的算法的类似CF系统。

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