Cheng Artificial Intelligence for Materials Science

Artificial Intelligence for Materials Science

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Beschreibung

Machine learning methods have lowered the cost of exploring new structures of unknown compounds, and can be used to predict reasonable expectations and subsequently validated by experimental results. As new insights and several elaborative tools have been developed for materials science and engineering in recent years, it is an appropriate time to present a book covering recent progress in this field.

Searchable and interactive databases can promote research on emerging materials. Recently, databases containing a large number of high-quality materials properties for new advanced materials discovery have been developed. These approaches are set to make a significant impact on human life and, with numerous commercial developments emerging, will become a major academic topic in the coming years. 

This authoritative and comprehensive book will be of interest to both existing researchers in this field as well as others in the materials science community who wish to takeadvantage of these powerful techniques. The book offers a global spread of authors, from USA, Canada, UK, Japan, France, Russia, China and Singapore, who are all world recognized experts in their separate areas. With content relevant to both academic and commercial points of view, and offering an accessible overview of recent progress and potential future directions, the book will interest graduate students, postgraduate researchers, and consultants and industrial engineers.


Machine learning methods have lowered the cost of exploring new structures of unknown compounds, and can be used to predict reasonable expectations and subsequently validated by experimental results. As new insights and several elaborative tools have been developed for materials science and engineering in recent years, it is an appropriate time to present a book covering recent progress in this field.

Searchable and interactive databases can promote research on emerging materials. Recently, databases containing a large number of high-quality materials properties for new advanced materials discovery have been developed. These approaches are set to make a significant impact on human life and, with numerous commercial developments emerging, will become a major academic topic in the coming years. 

This authoritative and comprehensive book will be of interest to both existing researchers in this field as well as others in the materials science community who wish to take advantage of these powerful techniques. The book offers a global spread of authors, from USA, Canada, UK, Japan, France, Russia, China and Singapore, who are all world recognized experts in their separate areas. With content relevant to both academic and commercial points of view, and offering an accessible overview of recent progress and potential future directions, the book will interest graduate students, postgraduate researchers, and consultants and industrial engineers.


Presents fundamental information about AI principles and algorithms Describes the most important and commonly adopted analytical methods in computational material science Features applications of machine learning in material design Includes applications of these functional materials in various fields, from electronics, optoelectronics, spintronics, and thermoelectric energy conversion, to rechargeable ion batteries, solar cells, and robotics

Autor*in

Yuan Cheng

Themen in »Artificial Intelligence for Materials Science«

Materials genome initiatives materials informatics Material design Materials optimization machine learning thermoelectric materials rechargeable ion battery solar cell renewable energy materials

Stimmen zu »Artificial Intelligence for Materials Science«

Details

ISBN: 9783030683092
Verlag: Springer International Publishing
Erscheinung: 27.03.2021

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