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06-07-2024 | Original Research

A New Matrix Feature Selection Strategy in Machine Learning Models for Certain Krylov Solver Prediction

Authors: Hai-Bing Sun, Yan-Fei Jing, Xiao-Wen Xu

Published in: Journal of Classification | Issue 1/2025

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Abstract

The article introduces a new matrix feature selection strategy for machine learning models to predict the performance of Krylov solvers in solving large sparse systems of linear equations. It addresses the challenge of efficiently and accurately solving these systems, which are common in scientific and engineering computing. The proposed strategy focuses on selecting the most relevant matrix features to reduce computational cost while maintaining high prediction accuracy. The article reviews existing Krylov solvers and discusses the modeling process and feature selection strategy in detail. Numerical experiments demonstrate the effectiveness of the new strategy, showing that it can significantly reduce computational time without compromising prediction accuracy. The article concludes by highlighting the potential for further expansion of the database to improve the generalization of the classifiers.

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Metadata
Title
A New Matrix Feature Selection Strategy in Machine Learning Models for Certain Krylov Solver Prediction
Authors
Hai-Bing Sun
Yan-Fei Jing
Xiao-Wen Xu
Publication date
06-07-2024
Publisher
Springer US
Published in
Journal of Classification / Issue 1/2025
Print ISSN: 0176-4268
Electronic ISSN: 1432-1343
DOI
https://doi.org/10.1007/s00357-024-09484-0

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