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Discrepancy principles for Tikhonov regularization of ill-posed problems leading to optimal convergence rates

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Abstract

We propose a class ofa posteriori parameter choice strategies for Tikhonov regularization (including variants of Morozov's and Arcangeli's methods) that lead to optimal convergence rates toward the minimal-norm, least-squares solution of an ill-posed linear operator equation in the presence of noisy data.

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Communicated by M. A. Golberg

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Engl, H.W. Discrepancy principles for Tikhonov regularization of ill-posed problems leading to optimal convergence rates. J Optim Theory Appl 52, 209–215 (1987). https://doi.org/10.1007/BF00941281

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