Asilomar 2024
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Technical Program
Session MA6a
Paper MA6a.2
MA6a.2
Pruning Unrolled Networks (PUN) at Initialization for MRI Reconstruction Improves Generalization
Shijun Liang, Evan Bell, Avrajit Ghosh, Saiprasad Ravishankar, Michigan State University, United States
Session:
MA6a: Machine Learning Methods for Inverse Problems in Biomedical Imaging
Lecture
Track:
Biomedical Signal and Image Processing
Location:
Evergreen
Presentation Time:
Mon, 28 Oct, 08:40 - 09:05 PT (UTC -8)
Session Chair:
Gregory Ongie, Marquette University
Presentation
Discussion
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Session MA6a
MA6a.1: Inverse-Problem Uncertainty Quantification via Conformal Bounds on Downstream Tasks
Jeffrey Wen, Rizwan Ahmad, Philip Schniter, The Ohio State University, United States
MA6a.2: Pruning Unrolled Networks (PUN) at Initialization for MRI Reconstruction Improves Generalization
Shijun Liang, Evan Bell, Avrajit Ghosh, Saiprasad Ravishankar, Michigan State University, United States
MA6a.3: Estimating Epistemic and Aleatoric Uncertainty with a Single Diffusion Model
Matthew Chan, Maria Molina, Christopher Metzler, University of Maryland, College Park, United States
MA6a.4: Towards a Sampling Theory for Implicit Neural Representations
Mahrokh Najaf, Gregory Ongie, Marquette University, United States
Contacts