Publication | Open Access
Statistical iterative reconstruction using adaptive fractional order regularization
85
Citations
41
References
2016
Year
Computed TomographyTexture PreservationImage ReconstructionEngineeringImage AnalysisFractional Order ModelSignal ReconstructionCt ScanPhoton-counting Computed TomographyRegularization (Mathematics)Approximation TheoryNuclear MedicineRadiologyHealth SciencesReconstruction TechniqueMedical ImagingInverse ProblemsSignal ProcessingStatistical Iterative ReconstructionBiomedical ImagingRadiation Dose
In order to reduce the radiation dose of the X-ray computed tomography (CT), low-dose CT has drawn much attention in both clinical and industrial fields. A fractional order model based on statistical iterative reconstruction framework was proposed in this study. To further enhance the performance of the proposed model, an adaptive order selection strategy, determining the fractional order pixel-by-pixel, was given. Experiments, including numerical and clinical cases, illustrated better results than several existing methods, especially, in structure and texture preservation.
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