Publication | Closed Access
A computationally efficient superresolution image reconstruction algorithm
402
Citations
30
References
2001
Year
Numerical AnalysisSuper-resolution ImagingImage AnalysisEngineeringMedical ImagingReconstruction TechniqueBiomedical ImagingSuperresolution ReconstructionComputational ImagingInverse ProblemsSuper-resolutionRegularization TechniquesHigh-resolution ImageVideo Super-resolutionMulti-resolution MethodImage RestorationComputer Vision
Superresolution reconstruction produces a high-resolution image from a set of low-resolution images. Previous iterative methods for superresolution had not adequately addressed the computational and numerical issues for this ill-conditioned and typically underdetermined large scale problem. We propose efficient block circulant preconditioners for solving the Tikhonov-regularized superresolution problem by the conjugate gradient method. We also extend to underdetermined systems the derivation of the generalized cross-validation method for automatic calculation of regularization parameters. The effectiveness of our preconditioners and regularization techniques is demonstrated with superresolution results for a simulated sequence and a forward looking infrared (FLIR) camera image sequence.
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