Bayesian Agglomerative Clustering with Coalescents

Teh, Yee W., III, Hal Daume, Roy, Daniel M.

Neural Information Processing Systems 

We introduce a new Bayesian model for hierarchical clustering based on a prior over trees called Kingman's coalescent. We develop novel greedy and sequential Monte Carlo inferences which operate in a bottom-up agglomerative fashion. We show experimentally the superiority of our algorithms over the state-of-the-art, and demonstrate our approach in document clustering and phylolinguistics.

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