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A Resource Recommendation MethodBased on User Taste Diffusion Modelin Folksonomies

机译:基于用户品味扩散模型的人文分散模型的资源推荐方法

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To deal with the tri-relation of user-resource-tag in folk-sonomies and the data sparsity problem in personalized recommendation, we propose a user taste diffusion model based on the tripartite hyper-graph to recommend resources for users. Through the defined tri-relation model and diffusion probability matrix, the user's taste is diffused from itself to other users, resources and tags. When diffusion stops, the can-didate resources can be identified then be ranked according to the taste values As a result the top resources that have not been collected by the given user are selected as the 'final recommendations. Benefiting from the introduction of iterative diffusion mechanism, the recommendation results not only cover the resources collected by the given user's direct neighbors but also cover the ones which are collected by his/her extended neighbors. Experimental results show that our method performs better in terms of precision and recall than other recommendation methods.
机译:为了处理民间典礼中的用户资源标签的三维关系和个性化推荐中的数据稀疏问题,我们提出了一种基于三方超图的用户品味扩散模型,为用户推荐资源。通过定义的三相模型和扩散概率矩阵,用户的味道将从自身扩散到其他用户,资源和标签。当扩散停止时,可以识别CAN-DIDATE资源,然后根据品味值进行排序,结果未被定向用户收集的顶部资源被选为“最终建议”。从引入迭代扩散机制的效益,推荐结果不仅涵盖给定用户的直接邻居收集的资源,而且还涵盖了由他/她的延伸邻居收集的资源。实验结果表明,我们的方法在比其他推荐方法的精度和召回方面表现更好。

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