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The Novel Model of Collaborative Filtering Recommendation Based on Fuzzy Clustering Analysis

机译:基于模糊聚类分析的协同过滤推荐小说模型

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Collaborative filtering process is based on the known users of the evaluation of target users to predict the target of interest, and then to the target users to recommend new items. This paper applies the fuzzy clustering technology used in the project of nearest neighbors and the users nearest neighbor search, reduces the project space and user space calculation dimension, to improve the traditional collaborative filtering algorithm scalability. The paper puts forward the novel model of collaborative filtering recommendation based on fuzzy clustering analysis. Compared with the traditional method of item similarity calculation is more accurate, the experiments show that the method improves the accuracy of recommendation.
机译:协作过滤过程基于已知用户评估目标用户,以预测感兴趣的目标,然后到目标用户推荐新项目。本文适用于最近邻居项目和最近邻搜索的项目中使用的模糊聚类技术,从而降低了项目空间和用户空间计算维度,以提高传统的协作滤波算法可伸缩性。本文提出了基于模糊聚类分析的基于模糊聚类的协同过滤推荐模型。与传统的物品相似性计算比较更准确,实验表明该方法提高了推荐的准确性。

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