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  • title: Multitask Learning with No Regret: from Improved Confidence Bounds to Active Learning
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            Multitask Learning with No Regret: from Improved Confidence Bounds to Active Learning
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            Multitask Learning with No Regret: from Improved Confidence Bounds to Active Learning

            Dec 10, 2023

            Speakers

            PGS

            Pier Giuseppe Sessa

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            PL

            Pierre Laforgue

            Speaker · 0 followers

            NC

            Nicolò Cesa-Bianchi

            Speaker · 0 followers

            About

            Multitask learning is a powerful framework that enables one to simultaneously learn multiple related tasks by sharing information between them. Quantifying uncertainty in the estimated tasks is of pivotal importance for many downstream applications, such as online or active learning. In this work, we provide novel multitask confidence intervals in the challenging agnostic setting, i.e., when neither the similarity between tasks nor the tasks' features are available to the learner. The obtained i…

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            NeurIPS 2023

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