Kernel Mode Decomposition and the Programming of Kernels

Sale price  $76.49 Regular price $84.99

Kernel Mode Decomposition and the Programming of Kernels

Sale price  $76.49 Regular price $84.99

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Surveys and Tutorials in the Applied Mathematical Sciences

Kernel Mode Decomposition and the Programming of Kernels

Houman Owhadi | Clint Scovel | Gene Ryan Yoo

Mathematics / Applied

This monograph demonstrates a new approach to the classical mode decomposition problem through nonlinear regression models, which achieve near-machine precision in the recovery of the modes. The presentation includes a review of generalized additive models, additive kernels/Gaussian processes,  generalized Tikhonov regularization, empirical mode decomposition, and Synchrosqueezing, which are all related to and generalizable under the proposed framework.

Although kernel methods have strong theoretical foundations, they require the prior selection of a good kernel. While the usual approach to this kernel selection problem is hyperparameter tuning, the objective of this monograph is to present an alternative (programming) approach to the kernel selection problem while using mode decomposition as a prototypical pattern recognition problem. In this approach, kernels are programmed for the task at hand through the programming of interpretable regression networks in the contextof additive Gaussian processes.

It is suitable for engineers, computer scientists, mathematicians, and students in these fields working on kernel methods, pattern recognition, and mode decomposition problems.



Publication Date: 04 December 2021
Publisher: Springer International Publishing
Imprint: Springer
ISBN-13: 9783030821708
Format: Paperback softback
Page Count: 118

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