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Multiscale, Nonlinear and Adaptive Approximation II

Edited by Ronald DeVore () and Angela Kunoth ()

in Springer Books from Springer

Date: 2024
ISBN: 978-3-031-75802-7
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Chapters in this book:

Prologue to Multiscale, Nonlinear and Adaptive Approximation II
Ronald A. DeVore and Angela Kunoth
Introduction: Wolfgang Dahmen’s mathematical work (as of 2009)
Ronald A. DeVore and Angela Kunoth
Multilevel Representations of Random Fields and Sparse Approximations of Solutions to Random PDEs
Markus Bachmayr and Albert Cohen
Nonlinear compressive reduced basis approximation for multi-parameter elliptic problem
Hassan Ballout, Yvon Maday and Christophe Prud’homme
Sparse Besov Space Analysis of Representations in Machine Learning
Ido Ben Shaul and Shai Dekel
Joint Denoising and Line Distortion Correction for Raster-Scanned Image Series
Benjamin Berkels and Peter Binev
The Approximation of Cauchy-Stieltjes and Laplace-Stieltjes Functions
Dietrich Braess and Wolfgang Hackbusch
Approximating Partial Differential Equations without Boundary Conditions
Andrea Bonito and Diane Guignard
Constructions of Bounded Solutions of $$ \textit{di}\upsilon $$ u = f in Critical Spaces
Albert Cohen, Ronald DeVore and Eitan Tadmor
On the importance of the $$ \varepsilon $$ -regularization of the distribution-dependent Mumford–Shah model for hyperspectral image segmentation
Jan-Christopher Cohrs and Benjamin Berkels
A Note on Best n-term Approximation for Generalized Wiener Classes
Ronald DeVore, Guergana Petrova and Przemysław Wojtaszczyk
Stable Truncation and Root-Independent Normalization of Tree Tensor Networks
Lars Grasedyck, Sebastian Krämer and Dieter Moser
Tree-Based Nonlinear Reduced Modeling
Diane Guignard and Olga Mula
Samplets: Wavelet Concepts for Scattered Data
Helmut Harbrecht and Michael Multerer
A novel multilevel approach for the efficient computation of random hyperbolic conservation laws
Michael Herty, Adrian Kolb and Siegfried Müller
On the Construction of Bases and Frames with Applications
Kamen G. Ivanov, Gerard Kerkyacharian, George Kyriazis and Pencho Petrushev
Towards Continuous Mathematical Models for the Analysis of Classes of Deep Neural Networks
Angela Kunoth, Mathias Oster and Reinhold Schneider
Unstoppable Mathematicians
Dominique Picard
Some Thoughts on Compositional Tensor Networks
Reinhold Schneider and Mathias Oster
Efficient least squares discretizations for Unique Continuation and Cauchy problems
Rob Stevenson

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Persistent link: https://EconPapers.repec.org/RePEc:spr:sprbok:978-3-031-75802-7

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DOI: 10.1007/978-3-031-75802-7

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