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Preprints of the Keldysh Institute of Applied Mathematics, 2009, 002, 20 pp.
(Mi ipmp273)
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The regularized algorithms of statistical estimation of functions
D. A. Lavrik, A. Kh. Pergament
Abstract:
The regularized algorithms of filtration are supported and investigated. Hereby optimal of the information point of view M-parametric approximations of required function are used. The approximation parameters are determined by a maximum likelihood method. The number of parameters is defined by $\chi^2$ criterion. The results of 1D and 2D modeling problems are represented.
Citation:
D. A. Lavrik, A. Kh. Pergament, “The regularized algorithms of statistical estimation of functions”, Keldysh Institute preprints, 2009, 002, 20 pp.
Linking options:
https://www.mathnet.ru/eng/ipmp273 https://www.mathnet.ru/eng/ipmp/y2009/p2
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