Bayesian Multitask Learning with Latent HierarchiesDownload PDFOpen Website

2009 (modified: 04 Nov 2022)CoRR 2009Readers: Everyone
Abstract: We learn multiple hypotheses for related tasks under a latent hierarchical relationship between tasks. We exploit the intuition that for domain adaptation, we wish to share classifier structure, but for multitask learning, we wish to share covariance structure. Our hierarchical model is seen to subsume several previously proposed multitask learning models and performs well on three distinct real-world data sets.
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