Publication | Closed Access
Investigation of undersampling and reconstruction algorithm dependence on respiratory correlated 4D-MRI for online MR-guided radiation therapy
52
Citations
26
References
2016
Year
Computed TomographyImage ReconstructionEngineeringPet-mriAdvanced ImagingBiomedical EngineeringMagnetic Resonance ImagingImage AnalysisXd-grasp ReconstructionsReconstruction Algorithm DependenceRadiation OncologyNuclear MedicineRadiologyHealth SciencesReconstruction TechniqueMedical ImagingNeuroimagingInverse ProblemsMedical Image ComputingMri-guided Radiation TherapyMri DataBiomedical ImagingImage Quality3D Imaging
The purpose of this work is to investigate the effects of undersampling and reconstruction algorithm on the total processing time and image quality of respiratory phase-resolved 4D MRI data. Specifically, the goal is to obtain quality 4D-MRI data with a combined acquisition and reconstruction time of five minutes or less, which we reasoned would be satisfactory for pre-treatment 4D-MRI in online MRI-gRT. A 3D stack-of-stars, self-navigated, 4D-MRI acquisition was used to scan three healthy volunteers at three image resolutions and two scan durations. The NUFFT, CG-SENSE, SPIRiT, and XD-GRASP reconstruction algorithms were used to reconstruct each dataset on a high performance reconstruction computer. The overall image quality, reconstruction time, artifact prevalence, and motion estimates were compared. The CG-SENSE and XD-GRASP reconstructions provided superior image quality over the other algorithms. The combination of a 3D SoS sequence and parallelized reconstruction algorithms using computing hardware more advanced than those typically seen on product MRI scanners, can result in acquisition and reconstruction of high quality respiratory correlated 4D-MRI images in less than five minutes.
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