株式会社極東書店トップ商品一覧Graph Learning Techniques.

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Graph Learning Techniques.

Graph Learning Techniques.

・ISBN 978-1-032-85112-9 paper GB£ 54.99

¥17,420.- (税込) (※)価格はご注文時の参考価格となります。
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お気に入り
電子版あり 大学・学術機関向け電子ブック(eBook)ISBN 9781003516613
著者・編者Shan, Baoling / Yuan, Xin / Ni, Wei / Liu, Ren Ping / Dutkiewicz, Eryk,
出版社 (CRC Press, UK)
出版年月2025
ページ数162 pp.
言語ENG
ニュース番号<A03-66780>

解説

This comprehensive guide addresses key challenges at the intersection of data science, graph learning, and privacy preservation.

It begins with foundational graph theory, covering essential definitions, concepts, and various types of graphs. The book bridges the gap between theory and application, equipping readers with the skills to translate theoretical knowledge into actionable solutions for complex problems. It includes practical insights into brain network analysis and the dynamics of COVID-19 spread. The guide provides a solid understanding of graphs by exploring different graph representations and the latest advancements in graph learning techniques. It focuses on diverse graph signals and offers a detailed review of state-of-the-art methodologies for analyzing these signals. A major emphasis is placed on privacy preservation, with comprehensive discussions on safeguarding sensitive information within graph structures. The book also looks forward, offering insights into emerging trends, potential challenges, and the evolving landscape of privacy-preserving graph learning.

This resource is a valuable reference for advance undergraduate and postgraduate students in courses related to Network Analysis, Privacy and Security in Data Analytics, and Graph Theory and Applications in Healthcare.