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Cross-Domain Mediation in Collaborative Filtering

机译:协同过滤中的跨域中介

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摘要

One of the main problems of collaborative filtering recommenders is the sparsity of the ratings in the users-items matrix, and its negative effect on the prediction accuracy. This paper addresses this issue applying cross-domain mediation of collaborative user models,i.e., importing and aggregating vectors of users' ratings stored by collaborative systems operating in different application domains. The paper presents several mediation approaches and initial experimental evaluation demonstrating that the mediation can improve the accuracy of the generated predictions.
机译:协作过滤推荐器的主要问题之一是用户项目矩阵中评分的稀疏性及其对预测准确性的负面影响。本文使用协作用户模型的跨域中介来解决此问题,即导入和汇总由运行在不同应用程序域中的协作系统存储的用户评级向量。本文介绍了几种调解方法和初步的实验评估,证明了调解可以提高所生成预测的准确性。

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