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(Ebook) Artificial Intelligence-Aided Materials Design: AI-Algorithms and Case Studies on Alloys and Metallurgical Processes by Rajesh Jha, Bimal Kumar Jha ISBN 9780367765279, 0367765276

  • SKU: EBN-38255408
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Instant download (eBook) Artificial Intelligence-Aided Materials Design: AI-Algorithms and Case Studies on Alloys and Metallurgical Processes after payment.
Authors:Rajesh Jha, Bimal Kumar Jha
Pages:280 pages.
Year:2022
Editon:1
Publisher:CRC Press
Language:english
File Size:45.05 MB
Format:pdf
ISBNS:9780367765279, 0367765276
Categories: Ebooks

Product desciption

(Ebook) Artificial Intelligence-Aided Materials Design: AI-Algorithms and Case Studies on Alloys and Metallurgical Processes by Rajesh Jha, Bimal Kumar Jha ISBN 9780367765279, 0367765276

Artificial Intelligence-Aided Materials Design: AI-Algorithms and Case Studies on Alloys and Metallurgical Processes describes the application of artificial intelligence (AI)/machine learning (ML) concepts to develop predictive models that can be used to design alloy materials, including magnetic alloys, nickel-base superalloys, titanium-base alloys, and aluminum-base alloys. Readers new to AI/ML algorithms can use this book as a starting point and use the included MATLAB and Python implementation of AI/ML algorithms through included case studies. Experienced AI/ML researchers who want to try new algorithms can use this book and study the case studies for reference.

  • Offers advantages and limitations of several AI concepts and their proper implementation in various data types generated through experiments and computer simulations and from industries in different file formats
  • Helps readers develop predictive models through AI/ML algorithms by writing their own computer code or using resources where they do not have to write code
  • Provides downloadable resources such as MATLAB GUI/APP and Python implementation that can be used on common mobile devices
  • Discusses the CALPHAD approach and ways to use data generated from it
  • Features a chapter on metallurgical/materials concepts to help readers understand the case studies and thus proper implementation of AI/ML algorithms under the framework of data-driven materials science

This book is written for materials scientists and metallurgists interested in the application of AI, ML, and data science in the development of new materials.

*Free conversion of into popular formats such as PDF, DOCX, DOC, AZW, EPUB, and MOBI after payment.

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