Data Driven Approach to the Compositional Design of Metallic Glasses

Data Driven Approach to the Compositional Design of Metallic Glasses

EnglishPaperback / softbackPrint on demand
Tripathi, Manwendra Kumar
LAP Lambert Academic Publishing
EAN: 9786202196697
Print on demand
Delivery on Monday, 27. of January 2025
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Detailed information

There have been many compositional design methodologies developed for metallic glasses, which exhibit many attractive engineering properties, since past six decades. However, these methodologies have yielded marginal success and are constrained by their own limitations. The data driven models, harnessing the benefits of machine learning, has been proven useful to solve complex engineering problems. The researcher in the domain of metallic glasses have produced enough experimental data to mine knowledge and build a reliable model to predict promising compositions. This book intends to address the need of those researchers, who have been in search of a case study of application of machine learning based techniques, for design of materials composition. The authors believe that this book will be useful to the researchers in the domain of Compositional Design of Metallic Glasses in particular, and Materials Engineers in general.
EAN 9786202196697
ISBN 6202196696
Binding Paperback / softback
Publisher LAP Lambert Academic Publishing
Pages 256
Language English
Dimensions 220 x 150
Authors Ganguly, Subhas; Tripathi, Manwendra Kumar