Machine Learning for Materials Discovery
Numerical Recipes and Practical Applications
Springer Nature Switzerland
ISBN 978-3-031-44622-1
Standardpreis
Bibliografische Daten
eBook. PDF
2024
XX, 279 p. 110 illus., 95 illus. in color..
In englischer Sprache
Umfang: 279 S.
Verlag: Springer Nature Switzerland
ISBN: 978-3-031-44622-1
Weiterführende bibliografische Daten
Das Werk ist Teil der Reihe: Machine Intelligence for Materials Science
Produktbeschreibung
Focusing on the fundamentals of machine learning, this book covers broad areas of data-driven modeling, ranging from simple regression to advanced machine learning and optimization methods for applications in materials modeling and discovery. The book explains complex mathematical concepts in a lucid manner to ensure that readers from different materials domains are able to use these techniques successfully. A unique feature of this book is its hands-on aspect-each method presented herein is accompanied by a code that implements the method in open-source platforms such as Python. This book is thus aimed at graduate students, researchers, and engineers to enable the use of data-driven methods for understanding and accelerating the discovery of novel materials.
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