Investigating topic models for social media user recommendation.

WWW(2011)

引用 193|浏览69
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摘要
ABSTRACTThis paper presents a user recommendation system that recommends to a user new friends having similar interests. We automatically discover users' interests using Latent Dirichlet Allocation (LDA), a linguistic topic model that represents users as mixtures of topics. Our system is able to recommend friends for 4 million users with high recall, outperforming existing strategies based on graph analysis.
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