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Artificial Intelligence for Cyber-Physical Systems Hardening 2023 ed. [Mīkstie vāki]

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  • Formāts: Paperback / softback, 233 pages, height x width: 235x155 mm, weight: 385 g, 49 Illustrations, color; 17 Illustrations, black and white; XIV, 233 p. 66 illus., 49 illus. in color., 1 Paperback / softback
  • Sērija : Engineering Cyber-Physical Systems and Critical Infrastructures 2
  • Izdošanas datums: 24-Nov-2023
  • Izdevniecība: Springer International Publishing AG
  • ISBN-10: 3031162390
  • ISBN-13: 9783031162398
Citas grāmatas par šo tēmu:
  • Mīkstie vāki
  • Cena: 154,01 €*
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  • Formāts: Paperback / softback, 233 pages, height x width: 235x155 mm, weight: 385 g, 49 Illustrations, color; 17 Illustrations, black and white; XIV, 233 p. 66 illus., 49 illus. in color., 1 Paperback / softback
  • Sērija : Engineering Cyber-Physical Systems and Critical Infrastructures 2
  • Izdošanas datums: 24-Nov-2023
  • Izdevniecība: Springer International Publishing AG
  • ISBN-10: 3031162390
  • ISBN-13: 9783031162398
Citas grāmatas par šo tēmu:
This book presents advances in security assurance for cyber-physical systems (CPS) and report on new machine learning (ML) and artificial intelligence (AI) approaches and technologies developed by the research community and the industry to address the challenges faced by this emerging field.





Cyber-physical systems bridge the divide between cyber and physical-mechanical systems by combining seamlessly software systems, sensors, and actuators connected over computer networks. Through these sensors, data about the physical world can be captured and used for smart autonomous decision-making.





This book introduces fundamental AI/ML principles and concepts applied in developing secure and trustworthy CPS, disseminates recent research and development efforts in this fascinating area, and presents relevant case studies, examples, and datasets. We believe that it is a valuable reference for students, instructors, researchers, industry practitioners, and related government agencies staff.
Introduction.- Machine Learning Construction: implications to cybersecurity.- Machine Learning Assessment: implications to cybersecurity.- A Collection of Datasets for Intrusion Detection in MIL-STD-1553 Platforms.- Unsupervised Anomaly Detection for MIL-STD-1553 Avionic Platforms using CUSUM.- Secure Design of Cyber-Physical Systems at the Radio Frequency Level: Machine and Deep Learning-Driven Approaches, Challenges and Opportunities.- Attack Detection by Using Deep Learning for Cyber-Physical System.- Security and privacy of IoT devices for ageing in place.- Detecting Malicious Attacks Using Principal Component Analysis in Medical Cyber-Physical Systems.- Activity and Event Network Graph and Application to Cyberphysical Security.