Time-aware Topic Recommendation Based on Micro-blogs
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Liang, Huizhi (Elly)
Xu, Yue
Tjondronegoro, Dian
Christen, Peter
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Association for Computing Machinery Inc (ACM)
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Topic recommendation can help users deal with the information overload issue in micro-blogging communities. This paper proposes to use the implicit information network formed by the multiple relationships among users, topics and micro-blogs, and the temporal information of micro-blogs to find semantically and temporally relevant topics of each topic, and to profile users' time-drifting topic interests. The Content based, Nearest Neighborhood based and Matrix Factorization models are used to make personalized recommendations. The effectiveness of the proposed approaches is demonstrated in the experiments conducted on a real world dataset that collected from Twitter.com.
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2037-12-31
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