Prediction techniques for dynamic imaging with online primal-dual methods
Online optimisation facilitates the solution of dynamic inverse problems, such as image stabilisation, fluid flow monitoring, and dynamic medical imaging. In this paper, we improve upon previous work on predictive online primal-dual methods on two fronts. Firstly, we provide a more concise analysis...
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Zusammenfassung: | Online optimisation facilitates the solution of dynamic inverse problems,
such as image stabilisation, fluid flow monitoring, and dynamic medical
imaging. In this paper, we improve upon previous work on predictive online
primal-dual methods on two fronts. Firstly, we provide a more concise analysis
that symmetrises previously unsymmetric regret bounds, and relaxes previous
restrictive conditions on the dual predictor. Secondly, based on the latter, we
develop several improved dual predictors. We numerically demonstrate their
efficacy in image stabilisation and dynamic positron emission tomography. |
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DOI: | 10.48550/arxiv.2405.02497 |