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Physics-Based Deep Learning Methods for Magnetic Resonance Data Sampling, Image Reconstruction and Quantitative Susceptibility Mapping- [electronic resource]
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Physics-Based Deep Learning Methods for Magnetic Resonance Data Sampling, Image Reconstruction and Quantitative Susceptibility Mapping- [electronic resource]
자료유형  
 학위논문
Control Number  
0016933137
International Standard Book Number  
9798380314268
Dewey Decimal Classification Number  
616
Main Entry-Personal Name  
Zhang, Jinwei.
Publication, Distribution, etc. (Imprint  
[S.l.] : Cornell University., 2023
Publication, Distribution, etc. (Imprint  
Ann Arbor : ProQuest Dissertations & Theses, 2023
Physical Description  
1 online resource(246 p.)
General Note  
Source: Dissertations Abstracts International, Volume: 85-03, Section: B.
General Note  
Advisor: Wang, Yi.
Dissertation Note  
Thesis (Ph.D.)--Cornell University, 2023.
Restrictions on Access Note  
This item must not be sold to any third party vendors.
Summary, Etc.  
요약Improved magnetic resonance (MR) data sampling, under-sampled image reconstruction, and dipole inversion can be achieved using physics-based deep learning methods. These methods leverage the physical models of MR imaging processes to improve the quality and accuracy of MR images.One approach to improving MR data sampling involves optimizing the k-space under-sampling pattern from fully sampled k-space dataset. A pioneering work is called LOUPE which updates the probabilistic density function used to generate binary k-space sampling patterns, and uses a sigmoid approximation to sample from the learned density function.In addition, physics-based deep learning methods can be used for under-sampled image reconstruction by incorporating the imaging physical models into the deep learning architectures. Pioneering works, such as VarNet and MoDL, have incorporated physical models by unrolling iterative reconstruction algorithms with deep learning-based regularizers.Moreover, physics-based deep learning has also improved the ill-posed problem of dipole inversion used to extract tissue susceptibility from magnetic field data. QSMnet and DeepQSM are two pioneering works that have tackled this problem by incorporating physical models either into the training loss function or through simulating the training dataset.This thesis contributes to physics-based deep learning for MRI by: 1) improving LOUPE using a straight-through (ST) estimator and extending the improved LOUPE to multi-echo and multi-contrast scenarios; 2) developing pulse sequence for prospective multi-echo gradient echo under-sampling and customized efficient multi-contrast sampling; 3) designing image reconstruction network architectures aggregating multi-echo and multi-contrast image features; 4) utilizing physical models into the loss function for test time fine-tuning to improve generalization; 5) solving Bayesian posterior estimation of dipole inversion problem using Variational Inference (VI) incorporating physical models.
Subject Added Entry-Topical Term  
Medical imaging.
Subject Added Entry-Topical Term  
Biophysics.
Index Term-Uncontrolled  
Improved magnetic resonance
Index Term-Uncontrolled  
Probabilistic density function
Index Term-Uncontrolled  
Deep learning architectures
Added Entry-Corporate Name  
Cornell University Biomedical Engineering
Host Item Entry  
Dissertations Abstracts International. 85-03B.
Host Item Entry  
Dissertation Abstract International
Electronic Location and Access  
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Control Number  
joongbu:642234
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