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Sunday, December 8 • 2:00pm - 6:00pm
Lexical and Hierarchical Topic Regression

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Inspired by a two-level theory that unifies agenda setting and ideological framing, we propose supervised hierarchical latent Dirichlet allocation (SHLDA) which jointly captures documents' multi-level topic structure and their polar response variables. Our model extends the nested Chinese restaurant process to discover a tree-structured topic hierarchy and uses both per-topic hierarchical and per-word lexical regression parameters to model the response variables. Experiments in a political domain and on sentiment analysis tasks show that SHLDA improves predictive accuracy while adding a new dimension of insight into how topics under discussion are framed.
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Sunday December 8, 2013 2:00pm - 6:00pm PST
Harrah's Special Events Center, 2nd Floor
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