Hierarchical Dirichlet Processes
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Abstract
We consider problems involving groups of data where each observation within a group is a draw from a mixture model and where it is desirable to share mixture components between groups. We assume that the number of mixture components is unknown a priori and is to be inferred from the data. In this setting it is natural to consider sets of Dirichlet processes, one for each group, where the well-known clustering property of the Dirichlet process provides a nonparametric prior for the number of mixture components within each group. Given our desire to tie the mixture models in the various groups, we consider a hierarchical model, specifically one in which the base measure for the child Dirichlet processes is…
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4Topics & keywords
Keywords
- Dirichlet process
- Hierarchical Dirichlet process
- Generalized Dirichlet distribution
- Latent Dirichlet allocation
- Mixture model
- Mathematics
- Dirichlet distribution
- Inference
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