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Most Influential AISTATS 2009 Paper · 2026-03 edition

Relational Topic Models For Document Networks

Jonathan Chang; David Blei

Venue
Conference on Artificial Intelligence and Statistics (AISTATS) 2009
Recognition
Most Influential AISTATS 2009 Paper (Rank No. 5)
Edition
2026-03
Impact factor
7
Certificate ID
0264c966a96b18a9

Abstract

We develop the relational topic model (RTM), a model of documents and the links between them. For each pair of documents, the RTM models their link as a binary random variable that is conditioned on their contents. The model can be used to summarize a network of documents, predict links between them, and predict words within them. We derive efficient inference and learning algorithms based on variational methods and evaluate the predictive performance of the RTM for large networks of scientific abstracts and web documents.

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