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Spectral image reconstruction using an edge preserving spatio-spectral Wiener estimation
27
Citations
23
References
2009
Year
EngineeringMultispectral ImagingSpectrum EstimationImage AnalysisSignal ReconstructionWiener Denoising FilterComputational ImagingCamera ResponsesSpectral Image ReconstructionReconstruction TechniqueSpectral ImagingInverse ProblemsSpatial FilteringMedical Image ComputingSignal ProcessingComputer VisionRemote SensingVideo DenoisingImage RestorationSpectral Images
Reconstruction of spectral images from camera responses is investigated using an edge preserving spatio-spectral Wiener estimation. A Wiener denoising filter and a spectral reconstruction Wiener filter are combined into a single spatio-spectral filter using local propagation of the noise covariance matrix. To preserve edges the local mean and covariance matrix of camera responses is estimated by bilateral weighting of neighboring pixels. We derive the edge-preserving spatio-spectral Wiener estimation by means of Bayesian inference and show that it fades into the standard Wiener reflectance estimation shifted by a constant reflectance in case of vanishing noise. Simulation experiments conducted on a six-channel camera system and on multispectral test images show the performance of the filter, especially for edge regions. A test implementation of the method is provided as a MATLAB script at the first author's website.
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