Deep Learning Techniques for IoT Security and Privacy / by Mohamed Abdel-Basset, Nour Moustafa, Hossam Hawash, Weiping Ding
By: Abdel-Basset, Mohamed,, autor
Contributor(s): Moustafa, Nour, autor
| Hawash, Hossam, autor
Material type:
E-bookSeries: (Studies in Computational Intelligence, 1860-9503 ; 997).Publisher: Cham : Springer International Publishing, 2022Edition: 1st edition 2022.Description: 1 recurso en línea (XXI, 257 páginas) : 71 ilustraciones, 69 ilustraciones a color.ISBN: 9783030890254.Subject: Aprendizaje automático
| Item type | Current library | Collection | Call number | Status | Date due | Barcode | Item holds | |
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LIBRO-E NO PRÉSTAMO
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Madrid Digital Acceso Electrónico (UEM) | Ciencias e Ingeniería | Q325.5 2022 EB (Browse shelf(Opens below)) | Acceso electrónico | eBook.09012857 |
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| Q325.5 2022 EB Machine Learning and Big Data Analytics (Proceedings of International Conference on Machine Learning and Big Data Analytics (ICMLBDA) 2021) | Q325.5 2022 EB Sentimental Analysis and Deep Learning : Proceedings of ICSADL 2021 | Q325.5 2022 EB Deep Learning Applications, Volume 3 | Q325.5 2022 EB Deep Learning Techniques for IoT Security and Privacy | Q325.5 2022 EB Moving Objects Detection Using Machine Learning | Q325.5 2023 EB Machine Learning and Artificial Intelligence | Q325.5 2023 EB Machine Learning Safety |
Chapter 1, Conceptualization of Security, Forensics, and Privacy of Internet of Things -- Chapter 2, Internet of Things, Preliminaries and Foundations -- Chapter 3, Internet of Things Security Requirements, Threats, Countermeasures -- Chapter 4, Digital Forensics in Internet of Things -- Chapter 5, Supervised Deep Learning for Secure Internet of Things -- Chapter 6, Unsupervised Deep Learning for Secure Internet of Things -- Chapter 7, Semi-supervised Deep Learning for Secure Internet of Things -- Chapter 8, Reinforcement Learning for Secure Internet of Things -- Chapter 9, Federated Learning for Privacy-Preserving Internet of Things -- Chapter 10, Challenges, Opportunities, and Future Prospects.
This book states that the major aim audience are people who have some familiarity with Internet of things (IoT) but interested to get a comprehensive interpretation of the role of deep Learning in maintaining the security and privacy of IoT. A reader should be friendly with Python and the basics of machine learning and deep learning. Interpretation of statistics and probability theory will be a plus but is not certainly vital for identifying most of the book's material.
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