Image reconstruction with imperfect forward models and applications in deblurring
August 03, 2017 ยท Declared Dead ยท ๐ SIAM Journal of Imaging Sciences
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Authors
Yury Korolev, Jan Lellmann
arXiv ID
1708.01244
Category
math.NA: Numerical Analysis
Cross-listed
cs.CV
Citations
10
Venue
SIAM Journal of Imaging Sciences
Last Checked
1 month ago
Abstract
We present and analyse an approach to image reconstruction problems with imperfect forward models based on partially ordered spaces - Banach lattices. In this approach, errors in the data and in the forward models are described using order intervals. The method can be characterised as the lattice analogue of the residual method, where the feasible set is defined by linear inequality constraints. The study of this feasible set is the main contribution of this paper. Convexity of this feasible set is examined in several settings and modifications for introducing additional information about the forward operator are considered. Numerical examples demonstrate the performance of the method in deblurring with errors in the blurring kernel.
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