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Machine Learning in 2D Materials Science /
紀錄類型:
書目-語言資料,印刷品 : Monograph/item
正題名/作者:
Machine Learning in 2D Materials Science // edited by Parvathi Chundi ... [et al.]
其他作者:
Chundi, Parvathi.
出版者:
Boca Raton, FL :CRC Press, : c2024.,
面頁冊數:
x, 237 p. :ill. ; : 24 cm.;
標題:
Machine learning. -
ISBN:
9780367678203 (hbk.) :
Machine Learning in 2D Materials Science /
Machine Learning in 2D Materials Science /
edited by Parvathi Chundi ... [et al.] - 1st ed. - Boca Raton, FL :CRC Press,c2024. - x, 237 p. :ill. ;24 cm.
Includes bibliographical references and index.
"Data science and machine learning (ML) methods are increasingly being used to transform the way research is being conducted in materials science to enable new discoveries and design new materials. For any materials science researcher or student, it may be daunting to figure out if ML techniques are useful for them or if so, which ones are applicable in their individual contexts, and how to study the effectiveness of these methods systematically. Machine Learning in 2D Materials Science provides broad coverage of data science and ML fundamentals to 2D materials science researchers so that they can confidently leverage these techniques in their research projects. Offers introductory material in topics such as ML, data integration, and 2D materials. Provides in-depth coverage of current ML methods for validating 2D materials using both experimental and simulation data, researching and discovering new 2D materials, and enhancing ML methods with physical properties of materials. Discusses customized ML methods for 2D materials data and applications and high throughput data acquisition. Describes several case studies illustrating how ML approaches are currently leading innovations in the discovery, development, manufacturing, and deployment of 2D materials needed for strengthening industrial products. Gives future trends in ML for 2D materials, explainable AI, and dealing with extremely large and small diverse datasets. Offers Jupyter Notebooks and datasets for download. Aimed at materials science researchers, this book allows readers to quickly, yet thoroughly learn the ML and AI concepts needed to ascertain the applicability of 2D ML methods in their research"--
ISBN: 9780367678203 (hbk.) :NT4814 Subjects--Topical Terms:
561253
Machine learning.
LC Class. No.: Q325.5 / .C486 2023
Dewey Class. No.: 006.31 / M149
Machine Learning in 2D Materials Science /
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"Data science and machine learning (ML) methods are increasingly being used to transform the way research is being conducted in materials science to enable new discoveries and design new materials. For any materials science researcher or student, it may be daunting to figure out if ML techniques are useful for them or if so, which ones are applicable in their individual contexts, and how to study the effectiveness of these methods systematically. Machine Learning in 2D Materials Science provides broad coverage of data science and ML fundamentals to 2D materials science researchers so that they can confidently leverage these techniques in their research projects. Offers introductory material in topics such as ML, data integration, and 2D materials. Provides in-depth coverage of current ML methods for validating 2D materials using both experimental and simulation data, researching and discovering new 2D materials, and enhancing ML methods with physical properties of materials. Discusses customized ML methods for 2D materials data and applications and high throughput data acquisition. Describes several case studies illustrating how ML approaches are currently leading innovations in the discovery, development, manufacturing, and deployment of 2D materials needed for strengthening industrial products. Gives future trends in ML for 2D materials, explainable AI, and dealing with extremely large and small diverse datasets. Offers Jupyter Notebooks and datasets for download. Aimed at materials science researchers, this book allows readers to quickly, yet thoroughly learn the ML and AI concepts needed to ascertain the applicability of 2D ML methods in their research"--
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