Publication | Open Access
Smoothers for Discontinuous Signals
70
Citations
13
References
2002
Year
Image ReconstructionEngineeringDiscontinuityLocal M -SmoothersImage AnalysisSignal ReconstructionComputational ImagingEdge DetectionApproximation TheoryDiscontinuous SignalsHealth SciencesInterpolation SpaceMedical ImagingFixed PointsNeuroimagingInverse ProblemsNonlinear Signal ProcessingSpatial FilteringMedical Image ComputingSignal ProcessingBiomedical ImagingImage DenoisingBayes Smoothers
We discuss the interplay between local M -smoothers, Bayes smoothers and some nonlinear filters for edge-preserving signal reconstruction. We prove that all smoothers in question are nonlinear filters in a precise sense and characterize their fixed points. Then a Potts model is adopted for segmentation. For 1-d signals, an exact algorithm for the computation of maximum posterior modes is derived and applied to a phantom and to 1-d fMRI-data.
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