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SMUG: Towards Robust MRI Reconstruction by Smoothed Unrolling (ICASSP 2023)

Repository with code to reproduce the results for SMUG in our paper.

In this work, we propose SMUG that systematically integrates RS with MoDL using a deep unrolled architecture. We study in detail where to apply RS in the unrolled architecture for better performance and propose a novel unrolling loss to improve training efficiency. We show that the proposed SMUG is significantly effective in improving three major types of instabilities of MoDL.