Methods of artificial intelligence for acoustic emission diagnostics of fracture stages (a review) Part 1: algorithms of unsupervised and supervised machine learning

Based on the analysis of the latest studies, the possibilities of using unsupervised and supervised machine learning algorithms to automate the processing of acoustic emission signals to identify and localize their sources were considered. The accuracy of the results for different approaches was com...

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Published in:Materials science (New York, N.Y.) Vol. 60; no. 3; pp. 255 - 264
Main Authors: Stankevych, O. M., Rebot, D. P.
Format: Journal Article
Language:English
Published: New York Springer US 01.11.2024
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ISSN:1068-820X, 1573-885X
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Abstract Based on the analysis of the latest studies, the possibilities of using unsupervised and supervised machine learning algorithms to automate the processing of acoustic emission signals to identify and localize their sources were considered. The accuracy of the results for different approaches was compared, and directions for improvement were described. The importance of further research regarding the adaptation and optimization of the latest techniques for various materials and structures was confirmed.
AbstractList Based on the analysis of the latest studies, the possibilities of using unsupervised and supervised machine learning algorithms to automate the processing of acoustic emission signals to identify and localize their sources were considered. The accuracy of the results for different approaches was compared, and directions for improvement were described. The importance of further research regarding the adaptation and optimization of the latest techniques for various materials and structures was confirmed.
Author Rebot, D. P.
Stankevych, O. M.
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Keywords Acoustic emission
Identification of defects
Machine unsupervised and supervised learning
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Chemistry and Materials Science
Materials Science
Solid Mechanics
Structural Materials
Subtitle Part 1: algorithms of unsupervised and supervised machine learning
Title Methods of artificial intelligence for acoustic emission diagnostics of fracture stages (a review)
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