Machine Learning for Data-Centric Geotechnics Machine Learning for Data-Centric Geotechnics
Challenges in Geotechnical and Rock Engineering

Machine Learning for Data-Centric Geotechnics

Kok-Kwang Phoon und andere
    • 209,99 €
    • 209,99 €

Beschreibung des Verlags

Machine learning and other digital technologies fed with large datasets offer a major set of tools for practical geotechnical design. Large language models and other generative AIs can perform cognitive tasks currently undertaken by humans -- and might even predict the next event based on some time series. This depends on a balance of data centricity, fit-for (and transform) practice, and geotechnical context, and can be achieved by the integration of information, data, techniques, tools, perspectives, concepts, theories, along with experience from both geotechnical engineering and machine learning in computer science. And yet good engineering and research outcomes are still dependent on how practice (which includes the workforce) is improved or even transformed in the longer term to better serve end-users. This collection of focused chapters from a group of specialists presents principles and broad up to date practice of machine learning, along with a number of example areas of site characterization, design and construction in geotechnics.

This book is essential for sophisticated practitioners as well as graduate students.

GENRE
Gewerbe und Technik
ERSCHIENEN
2026
25. August
SPRACHE
EN
Englisch
UMFANG
498
Seiten
VERLAG
CRC Press
GRÖSSE
50,9
 MB
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