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Abstract #3410

MRI Constrained Reconstruction without Tuning Parameters Using ADMM and Morozov's Discrepency Principle

Weiyi Chen 1 , Yi Guo 1 , Ziyue Wu 2 , and Krishna S. Nayak 1,2

1 Electrical Engineering, University of Southern California, Los Angeles, CA, United States, 2 Biomedical Engineering, University of Southern California, Los Angeles, CA, United States

We propose a method for MRI constrained reconstruction using ADMM framework that is data-driven, and does not require manual selection of tuning parameters. We use Morozov's discrepancy principle as a criterion to iteratively determine the tuning parameter. Tests with T2w brain data show that the reconstruction quality is comparable with reconstructions using manually selected parameter.

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