Motion‐robust sub‐millimeter isotropic diffusion imaging through motion corrected generalized slice dithered enhanced resolution (MC‐gSlider) acquisition

© 2018 International Society for Magnetic Resonance in Medicine Purpose: To develop an efficient MR technique for ultra-high resolution diffusion MRI (dMRI) in the presence of motion. Methods: gSlider is an SNR-efficient high-resolution dMRI acquisition technique. However, subject motion is inevitab...

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Main Authors: Wang, Fuyixue, Bilgic, Berkin, Dong, Zijing, Manhard, Mary Kate, Ohringer, Ned, Zhao, Bo, Haskell, Melissa, Cauley, Stephen F, Fan, Qiuyun, Witzel, Thomas, Adalsteinsson, Elfar, Wald, Lawrence L, Setsompop, Kawin
Other Authors: Harvard University--MIT Division of Health Sciences and Technology
Format: Article
Language:English
Published: Wiley 2021
Online Access:https://hdl.handle.net/1721.1/134949
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author Wang, Fuyixue
Bilgic, Berkin
Dong, Zijing
Manhard, Mary Kate
Ohringer, Ned
Zhao, Bo
Haskell, Melissa
Cauley, Stephen F
Fan, Qiuyun
Witzel, Thomas
Adalsteinsson, Elfar
Wald, Lawrence L
Setsompop, Kawin
author2 Harvard University--MIT Division of Health Sciences and Technology
author_facet Harvard University--MIT Division of Health Sciences and Technology
Wang, Fuyixue
Bilgic, Berkin
Dong, Zijing
Manhard, Mary Kate
Ohringer, Ned
Zhao, Bo
Haskell, Melissa
Cauley, Stephen F
Fan, Qiuyun
Witzel, Thomas
Adalsteinsson, Elfar
Wald, Lawrence L
Setsompop, Kawin
author_sort Wang, Fuyixue
collection MIT
description © 2018 International Society for Magnetic Resonance in Medicine Purpose: To develop an efficient MR technique for ultra-high resolution diffusion MRI (dMRI) in the presence of motion. Methods: gSlider is an SNR-efficient high-resolution dMRI acquisition technique. However, subject motion is inevitable during a prolonged scan for high spatial resolution, leading to potential image artifacts and blurring. In this study, an integrated technique termed Motion Corrected gSlider (MC-gSlider) is proposed to obtain high-quality, high-resolution dMRI in the presence of large in-plane and through-plane motion. A motion-aware reconstruction with spatially adaptive regularization is developed to optimize the conditioning of the image reconstruction under difficult through-plane motion cases. In addition, an approach for intra-volume motion estimation and correction is proposed to achieve motion correction at high temporal resolution. Results: Theoretical SNR and resolution analysis validated the efficiency of MC-gSlider with regularization, and aided in selection of reconstruction parameters. Simulations and in vivo experiments further demonstrated the ability of MC-gSlider to mitigate motion artifacts and recover detailed brain structures for dMRI at 860 μm isotropic resolution in the presence of motion with various ranges. Conclusion: MC-gSlider provides motion-robust, high-resolution dMRI with a temporal motion correction sensitivity of 2 s, allowing for the recovery of fine detailed brain structures in the presence of large subject movements.
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spelling mit-1721.1/1349492024-03-20T19:05:15Z Motion‐robust sub‐millimeter isotropic diffusion imaging through motion corrected generalized slice dithered enhanced resolution (MC‐gSlider) acquisition Wang, Fuyixue Bilgic, Berkin Dong, Zijing Manhard, Mary Kate Ohringer, Ned Zhao, Bo Haskell, Melissa Cauley, Stephen F Fan, Qiuyun Witzel, Thomas Adalsteinsson, Elfar Wald, Lawrence L Setsompop, Kawin Harvard University--MIT Division of Health Sciences and Technology Massachusetts Institute of Technology. Department of Electrical Engineering and Computer Science Massachusetts Institute of Technology. Institute for Medical Engineering & Science © 2018 International Society for Magnetic Resonance in Medicine Purpose: To develop an efficient MR technique for ultra-high resolution diffusion MRI (dMRI) in the presence of motion. Methods: gSlider is an SNR-efficient high-resolution dMRI acquisition technique. However, subject motion is inevitable during a prolonged scan for high spatial resolution, leading to potential image artifacts and blurring. In this study, an integrated technique termed Motion Corrected gSlider (MC-gSlider) is proposed to obtain high-quality, high-resolution dMRI in the presence of large in-plane and through-plane motion. A motion-aware reconstruction with spatially adaptive regularization is developed to optimize the conditioning of the image reconstruction under difficult through-plane motion cases. In addition, an approach for intra-volume motion estimation and correction is proposed to achieve motion correction at high temporal resolution. Results: Theoretical SNR and resolution analysis validated the efficiency of MC-gSlider with regularization, and aided in selection of reconstruction parameters. Simulations and in vivo experiments further demonstrated the ability of MC-gSlider to mitigate motion artifacts and recover detailed brain structures for dMRI at 860 μm isotropic resolution in the presence of motion with various ranges. Conclusion: MC-gSlider provides motion-robust, high-resolution dMRI with a temporal motion correction sensitivity of 2 s, allowing for the recovery of fine detailed brain structures in the presence of large subject movements. 2021-10-27T20:10:00Z 2021-10-27T20:10:00Z 2018 2020-11-20T16:53:11Z Article http://purl.org/eprint/type/JournalArticle https://hdl.handle.net/1721.1/134949 en 10.1002/MRM.27196 Magnetic Resonance in Medicine Creative Commons Attribution-Noncommercial-Share Alike http://creativecommons.org/licenses/by-nc-sa/4.0/ application/pdf Wiley PMC
spellingShingle Wang, Fuyixue
Bilgic, Berkin
Dong, Zijing
Manhard, Mary Kate
Ohringer, Ned
Zhao, Bo
Haskell, Melissa
Cauley, Stephen F
Fan, Qiuyun
Witzel, Thomas
Adalsteinsson, Elfar
Wald, Lawrence L
Setsompop, Kawin
Motion‐robust sub‐millimeter isotropic diffusion imaging through motion corrected generalized slice dithered enhanced resolution (MC‐gSlider) acquisition
title Motion‐robust sub‐millimeter isotropic diffusion imaging through motion corrected generalized slice dithered enhanced resolution (MC‐gSlider) acquisition
title_full Motion‐robust sub‐millimeter isotropic diffusion imaging through motion corrected generalized slice dithered enhanced resolution (MC‐gSlider) acquisition
title_fullStr Motion‐robust sub‐millimeter isotropic diffusion imaging through motion corrected generalized slice dithered enhanced resolution (MC‐gSlider) acquisition
title_full_unstemmed Motion‐robust sub‐millimeter isotropic diffusion imaging through motion corrected generalized slice dithered enhanced resolution (MC‐gSlider) acquisition
title_short Motion‐robust sub‐millimeter isotropic diffusion imaging through motion corrected generalized slice dithered enhanced resolution (MC‐gSlider) acquisition
title_sort motion robust sub millimeter isotropic diffusion imaging through motion corrected generalized slice dithered enhanced resolution mc gslider acquisition
url https://hdl.handle.net/1721.1/134949
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