2019
DOI: 10.48550/arxiv.1905.06828
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Convergence of Heuristic Parameter Choice Rules for Convex Tikhonov Regularisation

Stefan Kindermann,
Kemal Raik

Abstract: We investigate the convergence theory of several known as well as new heuristic parameter choice rules for convex Tikhonov regularisation. The success of such methods is dependent on whether certain restrictions on the noise are satisfied. In the linear theory, such conditions are well understood and hold for typically irregular noise. In this paper, we extend the convergence analysis of heuristic rules using noise restrictions to the convex setting and prove convergence of the aforementioned methods therewith… Show more

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