Fast and accurate T(2) mapping using Bloch simulations and low-rank plus sparse matrix decomposition Journal Article


Authors: Daniel, G.; Meirav, G.; Noam, O.; Tamar, B. K.; Dvir, R.; Ricardo, O.; Noam, B. E.
Article Title: Fast and accurate T(2) mapping using Bloch simulations and low-rank plus sparse matrix decomposition
Abstract: Purpose: MRI's T2 relaxation time is one of the key contrast mechanisms for clinical diagnosis and prognosis of pathologies. Mapping this relaxation time, however, involves extensive scan times, which are needed to collect quantitative data, thereby impeding its integration into clinical routine. This study employs a low-rank plus sparse (L + S) signal decomposition approach in order to reconstruct accurate T2-maps from highly undersampled multi-echo spin-echo (MESE) MRI data. Methods: Two new algorithms are presented: the first uses standard L + S approach, where both L and S are iteratively updated. The second technique, dubbed SPArse and fixed RanK (SPARK), uses a fixed-rank L, under the assumption that most MESE information is found in the L component and that this rank can be pre-calculated. The utility of these new techniques is demonstrated on in vivo brain and calf data at x2 to x6 acceleration factors. Results: Accelerated T2 maps showed improved accuracy compared to fully sampled ground truth maps, when using L + S and SPARK techniques vis-à-vis standard GRAPPA acceleration. Conclusion: SPARK provides accurate T2 maps with increased robustness to the selection of reconstruction parameters making it suitable to a wide range of applications and facilitating the use of quantitative T2 information in clinical settings. © 2023 Elsevier Inc.
Keywords: controlled study; nuclear magnetic resonance imaging; magnetic resonance imaging; in vivo study; diagnostic imaging; algorithms; simulation; algorithm; brain; quantitative analysis; phantoms, imaging; leisure; image processing, computer-assisted; image processing; relaxation; procedures; acceleration; decomposition; imaging phantom; article; quantitative mri; model-based reconstruction; accelerated mri; l + s; t2-mapping
Journal Title: Magnetic Resonance Imaging
Volume: 98
ISSN: 0730-725X
Publisher: Elsevier Science, Inc.  
Date Published: 2023-05-01
Start Page: 66
End Page: 75
Language: English
DOI: 10.1016/j.mri.2023.01.007
PUBMED: 36649808
PROVIDER: scopus
DOI/URL:
Notes: Article -- Authors' first and last names are reversed on the original publication -- Export Date: 1 March 2023 -- Source: Scopus
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