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Approximation by multivariate max-product Kantorovich-type operators and learning rates of least-squares regularized regression - MaRDI portal

Approximation by multivariate max-product Kantorovich-type operators and learning rates of least-squares regularized regression (Q2191850)

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Approximation by multivariate max-product Kantorovich-type operators and learning rates of least-squares regularized regression
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    Approximation by multivariate max-product Kantorovich-type operators and learning rates of least-squares regularized regression (English)
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    26 June 2020
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    In a recent paper, for univariate max-product sampling operators based on general kernels with bounded generalized absolute moments, the authors have obtained several \(L_\mu^p\) convergence properties on bounded intervals or on the whole real axis. In this paper, firstly the authors obtain quantitative estimates with respect to a K-functional, for the multivariate Kantorovich variant of these max-product sampling operators with the integrals written in terms of Borel probability measures. Applications of these approximation results to learning theory are obtained
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    multivariate max-product
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    sampling Kantorovich operators
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    Borel probability measures
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    multivariate generalized kernels
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    K-functional
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    learning theory
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    regularizing function
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    sample error
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    regularized error
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