arXiv: Optimization and Control | 2019

Adaptive parameter selection for weighted-TV image reconstruction problems.

 
 
 
 

Abstract


We propose an efficient estimation technique for the automatic selection of locally-adaptive Total Variation regularisation parameters based on an hybrid strategy which combines a local maximum-likelihood approach estimating space-variant image scales with a global discrepancy principle related to noise statistics. We verify the effectiveness of the proposed approach solving some exemplar image reconstruction problems and show its outperformance in comparison to state-of-the-art parameter estimation strategies, the former weighting locally the fit with the data (Dong et al. 11), the latter relying on a bilevel learning paradigm (Hintermuller et al., 17)

Volume None
Pages None
DOI 10.1088/1742-6596/1476/1/012003
Language English
Journal arXiv: Optimization and Control

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