Truncation-free Online Variational Inference for Bayesian Nonparametric ModelsDownload PDFOpen Website

2012 (modified: 11 Nov 2022)NIPS 2012Readers: Everyone
Abstract: We present a truncation-free online variational inference algorithm for Bayesian nonparametric models. Unlike traditional (online) variational inference algorithms that require truncations for the model or the variational distribution, our method adapts model complexity on the fly. Our experiments for Dirichlet process mixture models and hierarchical Dirichlet process topic models on two large-scale data sets show better performance than previous online variational inference algorithms.
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