2021
DOI: 10.3390/jimaging7110231
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An Optimization-Based Meta-Learning Model for MRI Reconstruction with Diverse Dataset

Abstract: This work aims at developing a generalizable Magnetic Resonance Imaging (MRI) reconstruction method in the meta-learning framework. Specifically, we develop a deep reconstruction network induced by a learnable optimization algorithm (LOA) to solve the nonconvex nonsmooth variational model of MRI image reconstruction. In this model, the nonconvex nonsmooth regularization term is parameterized as a structured deep network where the network parameters can be learned from data. We partition these network parameter… Show more

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Cited by 13 publications
(1 citation statement)
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“…[30][31][32][33][34] To improve the interpretability of the relation between the topology of the deep model and reconstruction results, a new emerging class of deep learning-based methods known as learnable optimization algorithms (LOA) have attracted much attention e.g. [35][36][37][38][39][40][41][42][43][44][45][46][47][48][49][50][51][52][53][54] LOA was proposed to map existing optimization algorithms to structured networks where each phase of the networks correspond to one iteration of an optimization algorithm.…”
Section: Optimization-based Network Unrolling Algorithms For Mri Reco...mentioning
confidence: 99%
“…[30][31][32][33][34] To improve the interpretability of the relation between the topology of the deep model and reconstruction results, a new emerging class of deep learning-based methods known as learnable optimization algorithms (LOA) have attracted much attention e.g. [35][36][37][38][39][40][41][42][43][44][45][46][47][48][49][50][51][52][53][54] LOA was proposed to map existing optimization algorithms to structured networks where each phase of the networks correspond to one iteration of an optimization algorithm.…”
Section: Optimization-based Network Unrolling Algorithms For Mri Reco...mentioning
confidence: 99%