1Department of Radiology, Jingzhou Hospital Affiliated to Yangtze University, Jingzhou, China
2Department of Radiology, Jingzhou Central Hospital, Jingzhou, China
3Shanghai United Imaging Healthcare Co., Ltd, Shanghai, China
Presenting Author: Hai Lin
Synopsis
Motivation:
Goals:
Approach:
Results:
Full abstract & presentation
The full text, figures, and any recorded presentation for this abstract are not shown here. Log in if you are a member or registered attendee with access.
Full abstracts, figures, and presentations for Cape Town - 2026 ISMRM-ISMRT Annual Meeting and Exhibition are available to registered attendees. This content becomes freely available to the public roughly two years after the meeting.
To request or purchase access, contact the ISMRM Central Office at info@ismrm.org.
1. Nacey NC, Geeslin MG, Miller GW, Pierce JL. Magnetic resonance imaging of the knee: An overview and update of conventional and state of the art imaging. J Magn Reson Imaging. 2017 May;45(5):1257-1275. doi: 10.1002/jmri.25620. [doi]
2. Lecouvet F, Van Haver T, Acid S, Perlepe V, Kirchgesner T, Vande Berg B, Triqueneaux P, Denis ML, Thienpont E, Malghem J. Magnetic resonance imaging (MRI) of the knee: Identification of difficult-to-diagnose meniscal lesions. Diagn Interv Imaging. 2018 Feb;99(2):55-64. doi: 10.1016/j.diii.2017.12.005 [doi]
3. Springer E, Bohndorf K, Juras V, Szomolanyi P, Zbýň Š, Schreiner MM, Schmitt B, Trattnig S. Comparison of Routine Knee Magnetic Resonance Imaging at 3 T and 7 T. Invest Radiol. 2017 Jan;52(1):42-54. doi: 10.1097/RLI.0000000000000303 [doi]
4. Garwood ER, Recht MP, White LM. Advanced Imaging Techniques in the Knee: Benefits and Limitations of New Rapid Acquisition Strategies for Routine Knee MRI. AJR Am J Roentgenol. 2017 Sep;209(3):552-560. doi: 10.2214/AJR.17.18228. [doi]
5. Shi Z, Zhao X, Zhu S, Miao X, Zhang Y, Han S, Wang B, Zhang B, Ye X, Dai Y, Chen C, Rao S, Lin J, Zeng M, Wang H. Time-of-Flight Intracranial MRA at 3 T versus 5 T versus 7 T: Visualization of Distal Small Cerebral Arteries. Radiology. 2022 Dec;305(3):E72. doi: 10.1148/radiol.229027. Erratum for: Radiology. 2023 Jan;306(1):207-217. doi: 10.1148/radiol.220114. [doi]
6. Guo Y, Lin L, Zhao S, Sun G, Chen Y, Xue K, Yang Y, Chen S, Zhang Y, Li G, Zhu Y, Vliegenthart R, Wang Y. Myocardial Fibrosis Assessment at 3-T versus 5-T Myocardial Late Gadolinium Enhancement MRI: Early Results. Radiology. 2024 Nov;313(2):e233424. doi: 10.1148/radiol.233424. [doi]
7. Liu S, Ni M, Wang D, Feng L, Li Y, Jiang C, He S, Yang Y, Yuan H. Clinical Diagnostic Value of 5 T MRI for Knee Injuries: A Comparison Study With 1.5 or 3 T. J Magn Reson Imaging. 2025 Aug 20. doi: 10.1002/jmri.70045. [doi]
8. Zuo J, Li X, Banerjee S, Han E, Majumdar S. Parallel imaging of knee cartilage at 3 Tesla. J Magn Reson Imaging. 2007 Oct;26(4):1001-9. doi: 10.1002/jmri.21122. [doi]
9. Lee SH, Lee YH, Suh JS. Accelerating knee MR imaging: Compressed sensing in isotropic three-dimensional fast spin-echo sequence. Magn Reson Imaging. 2018 Feb;46:90-97. doi: 10.1016/j.mri.2017.10.018. [doi]
10. Wang Q, Zhao W, Xing X, Wang Y, Xin P, Chen Y, Zhu Y, Xu J, Zhao Q, Yuan H, Lang N. Feasibility of AI-assisted compressed sensing protocols in knee MR imaging: a prospective multi-reader study. Eur Radiol. 2023 Dec;33(12):8585-8596. doi: 10.1007/s00330-023-09823-6. [doi]
11. Kim M, Lee SM, Park C, Lee D, Kim KS, Jeong HS, Kim S, Choi MH, Nickel D. Deep Learning-Enhanced Parallel Imaging and Simultaneous Multislice Acceleration Reconstruction in Knee MRI. Invest Radiol. 2022 Dec 1;57(12):826-833. doi: 10.1097/RLI.0000000000000900.007/s00330-023-09823-6. [doi]
12. Smekens C, Beirinckx Q, Bosmans F, Vanhevel F, Snoeckx A, Sijbers J, Jeurissen B, Janssens T, Van Dyck P. Deep Learning-Enhanced Accelerated 2D TSE and 3D Superresolution Dixon TSE for Rapid Comprehensive Knee Joint Assessment. Invest Radiol. 2025 Mar 1;60(3):220-233. doi: 10.1097/RLI.0000000000001118. [doi]