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  • title: ProtoVAE: A Trustworthy Self-Explainable Prototypical Variational Model
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            ProtoVAE: A Trustworthy Self-Explainable Prototypical Variational Model
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            ProtoVAE: A Trustworthy Self-Explainable Prototypical Variational Model

            Nov 28, 2022

            Speakers

            SG

            Srishti Gautam

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            AB

            Ahcene Boubekki

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            SH

            Stine Hansen

            Speaker · 0 followers

            About

            The need for interpretable models has fostered the development of self-explainable classifiers. Prior approaches are either based on multi-stage optimization schemes, impacting the predictive performance of the model, or produce explanations that are not transparent, trustworthy or do not capture the diversity of the data. To address these shortcomings, we propose ProtoVAE, a variational autoencoder-based framework that learns class-specific prototypes in an end-to-end manner and enforces trustw…

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            NeurIPS 2022

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