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  • title: Smooth Bilevel Programming for Sparse Regularization
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            Smooth Bilevel Programming for Sparse Regularization
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            Smooth Bilevel Programming for Sparse Regularization

            Dec 6, 2021

            Speakers

            CP

            Clarice Poon

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            GP

            Gabriel Peyré

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            About

            Iteratively reweighted least square (IRLS) is a popular approach to solve sparsity-enforcing regression problems in machine learning. State of the art approaches are more efficient but typically rely on specific coordinate pruning schemes. In this work, we show how a surprisingly simple re-parametrization of IRLS, coupled with a bilevel resolution (instead of an alternating scheme) is able to achieve top performances on a wide range of sparsity (such as Lasso, group Lasso and trace norm regulari…

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            NeurIPS 2021

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            Neural Information Processing Systems (NeurIPS) is a multi-track machine learning and computational neuroscience conference that includes invited talks, demonstrations, symposia and oral and poster presentations of refereed papers. Following the conference, there are workshops which provide a less formal setting.

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