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Accelerating 3D-T1ρ mapping of cartilage using compressed sensing with different sparse and low rank models
Marcelo V W Zibetti1, Azadeh Sharafi1, Ricardo Otazo1
1Center for Biomedical Imaging, Department of Radiology, New York University School of Medicine, New York, New York.
Compressed sensing (CS) can accelerate 3D-T1ρ mapping of cartilage up to 10-fold. This technique reduces scan times without significantly impacting T1ρ relaxation time accuracy, making it feasible for clinical use.
Area of Science:
- Magnetic Resonance Imaging
- Biomedical Engineering
- Medical Physics
Background:
- 3D-T1ρ mapping is crucial for cartilage assessment.
- Reducing scan times in MRI is a persistent challenge.
- Compressed sensing (CS) offers potential for accelerating MRI acquisition.
Purpose of the Study:
- To assess the feasibility of using CS to speed up 3D-T1ρ cartilage mapping.
- To evaluate if CS can reduce scan times without compromising T1ρ estimation accuracy.
Main Methods:
- Retrospective undersampling of fully sampled 3D-T1ρ datasets (acceleration factors 2-10).
- Comparison of 12 sparsifying transforms for CS reconstruction, including finite differences, wavelets, and learned transforms.
- Evaluation on synthetic phantoms and in vivo human knee cartilage datasets.
Main Results:
- Most CS methods achieved satisfactory results at acceleration factor 2 (T1ρ error < 4.5%).
- Spatiotemporal finite difference (STFD), exponential dictionaries (EXP), and low rank plus sparse (L+S SFD) methods showed improved performance.
- These advanced methods achieved < 6.5% T1ρ error at acceleration factor 10 with spatial filtering, with STFD reaching 5.1% error.
Conclusions:
- Compressed sensing is feasible for accelerating 3D-T1ρ cartilage mapping up to acceleration factor 10.
- STFD, EXP, and L+S SFD regularizers are effective CS methods for this application.
- These methods maintain satisfactory accuracy for T1ρ estimation in cartilage.
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