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  • title: End-to-end reconstruction meets data-driven regularization for inverse problems
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            End-to-end reconstruction meets data-driven regularization for inverse problems
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            End-to-end reconstruction meets data-driven regularization for inverse problems

            Dec 6, 2021

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            Subhadip Mukherjee

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            Marcello Carioni

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            Ozan Öktem

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            About

            We propose an unsupervised approach for learning end-to-end reconstruction operators for ill-posed inverse problems. The proposed method combines the classical variational framework with iterative unrolling, which essentially seeks to minimize a weighted combination of the expected distortion in the measurement space and the Wasserstein-1 distance between the distributions of the reconstruction and ground-truth. More specifically, the regularizer in the variational setting is parametrized by a d…

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            NeurIPS 2021

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