Structural Health Monitoring Based on Data Science Techniques

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160,49 

Structural Integrity 21

ISBN: 3030817180
ISBN 13: 9783030817183
Herausgeber: Alexandre Cury/Diogo Ribeiro/Filippo Ubertini et al
Verlag: Springer Verlag GmbH
Umfang: xv, 484 S., 45 s/w Illustr., 268 farbige Illustr., 484 p. 313 illus., 268 illus. in color.
Erscheinungsdatum: 25.10.2022
Auflage: 1/2022
Produktform: Kartoniert
Einband: KT

The modern structural health monitoring (SHM) paradigm of transforming in situ, real-time data acquisition into actionable decisions regarding structural performance, health state, maintenance, or life cycle assessment has been accelerated by the rapid growth of „big data“ availability and advanced data science. Such data availability coupled with a wide variety of machine learning and data analytics techniques have led to rapid advancement of how SHM is executed, enabling increased transformation from research to practice. This book intends to present a representative collection of such data science advancements used for SHM applications, providing an important contribution for civil engineers, researchers, and practitioners around the world.

Artikelnummer: 7141387 Kategorie:

Beschreibung

The modern structural health monitoring (SHM) paradigm of transforming in situ, real-time data acquisition into actionable decisions regarding structural performance, health state, maintenance, or life cycle assessment has been accelerated by the rapid growth of "big data" availability and advanced data science. Such data availability coupled with a wide variety of machine learning and data analytics techniques have led to rapid advancement of how SHM is executed, enabling increased transformation from research to practice. This book intends to present a representative collection of such data science advancements used for SHM applications, providing an important contribution for civil engineers, researchers, and practitioners around the world.

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