Convergence of Deep Learning in Cyber-IoT Systems and Security

Convergence of Deep Learning in Cyber-IoT Systems and Security
Title Convergence of Deep Learning in Cyber-IoT Systems and Security PDF eBook
Author Rajdeep Chakraborty
Publisher John Wiley & Sons
Total Pages 485
Release 2022-12-08
Genre Computers
ISBN 111985721X

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CONVERGENCE OF DEEP LEARNING IN CYBER-IOT SYSTEMS AND SECURITY In-depth analysis of Deep Learning-based cyber-IoT systems and security which will be the industry leader for the next ten years. The main goal of this book is to bring to the fore unconventional cryptographic methods to provide cyber security, including cyber-physical system security and IoT security through deep learning techniques and analytics with the study of all these systems. This book provides innovative solutions and implementation of deep learning-based models in cyber-IoT systems, as well as the exposed security issues in these systems. The 20 chapters are organized into four parts. Part I gives the various approaches that have evolved from machine learning to deep learning. Part II presents many innovative solutions, algorithms, models, and implementations based on deep learning. Part III covers security and safety aspects with deep learning. Part IV details cyber-physical systems as well as a discussion on the security and threats in cyber-physical systems with probable solutions. Audience Researchers and industry engineers in computer science, information technology, electronics and communication, cybersecurity and cryptography.

Convergence of Deep Learning in Cyber-IoT Systems and Security

Convergence of Deep Learning in Cyber-IoT Systems and Security
Title Convergence of Deep Learning in Cyber-IoT Systems and Security PDF eBook
Author Rajdeep Chakraborty
Publisher John Wiley & Sons
Total Pages 485
Release 2022-11-08
Genre Computers
ISBN 111985766X

Download Convergence of Deep Learning in Cyber-IoT Systems and Security Book in PDF, Epub and Kindle

CONVERGENCE OF DEEP LEARNING IN CYBER-IOT SYSTEMS AND SECURITY In-depth analysis of Deep Learning-based cyber-IoT systems and security which will be the industry leader for the next ten years. The main goal of this book is to bring to the fore unconventional cryptographic methods to provide cyber security, including cyber-physical system security and IoT security through deep learning techniques and analytics with the study of all these systems. This book provides innovative solutions and implementation of deep learning-based models in cyber-IoT systems, as well as the exposed security issues in these systems. The 20 chapters are organized into four parts. Part I gives the various approaches that have evolved from machine learning to deep learning. Part II presents many innovative solutions, algorithms, models, and implementations based on deep learning. Part III covers security and safety aspects with deep learning. Part IV details cyber-physical systems as well as a discussion on the security and threats in cyber-physical systems with probable solutions. Audience Researchers and industry engineers in computer science, information technology, electronics and communication, cybersecurity and cryptography.

Deep Learning for Security and Privacy Preservation in IoT

Deep Learning for Security and Privacy Preservation in IoT
Title Deep Learning for Security and Privacy Preservation in IoT PDF eBook
Author Aaisha Makkar
Publisher Springer Nature
Total Pages 186
Release 2022-04-03
Genre Computers
ISBN 9811661863

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This book addresses the issues with privacy and security in Internet of things (IoT) networks which are susceptible to cyber-attacks and proposes deep learning-based approaches using artificial neural networks models to achieve a safer and more secured IoT environment. Due to the inadequacy of existing solutions to cover the entire IoT network security spectrum, the book utilizes artificial neural network models, which are used to classify, recognize, and model complex data including images, voice, and text, to enhance the level of security and privacy of IoT. This is applied to several IoT applications which include wireless sensor networks (WSN), meter reading transmission in smart grid, vehicular ad hoc networks (VANET), industrial IoT and connected networks. The book serves as a reference for researchers, academics, and network engineers who want to develop enhanced security and privacy features in the design of IoT systems.

Convergence of Blockchain, AI, and IoT

Convergence of Blockchain, AI, and IoT
Title Convergence of Blockchain, AI, and IoT PDF eBook
Author R. Indrakumari
Publisher CRC Press
Total Pages 216
Release 2021-12-23
Genre Technology & Engineering
ISBN 1000519406

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Convergence of Blockchain, AI, and IoT: Concepts and Challenges discusses the convergence of three powerful technologies that play into the digital revolution and blur the lines between biological, digital, and physical objects. This book covers novel algorithms, solutions for addressing issues in applications, security, authentication, and privacy. The book provides an overview of the clinical scientific research enabling smart diagnosis equipment through AI. It presents the role these technologies play in augmented reality and blockchain, covers digital currency managed with bitcoin, and discusses deep learning and how it can enhance human thoughts and behaviors. Targeted audiences range from those interested in the technical revolution of blockchain, big data and the Internet of Things, to research scholars and the professional market.

Convergence of Deep Learning and Artificial Intelligence in Internet of Things

Convergence of Deep Learning and Artificial Intelligence in Internet of Things
Title Convergence of Deep Learning and Artificial Intelligence in Internet of Things PDF eBook
Author Ajay Rana
Publisher
Total Pages 0
Release 2023
Genre Convergence (Telecommunication)
ISBN 9781032410425

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"The text emphasizes the importance of innovation and improving the profitability of manufacturing plants using smart technologies such as artificial intelligence, deep learning, and the internet of things. It further discusses applications of smart technologies in diverse sectors such as production, manufacturing, transport, and healthcare"--

Deep Learning Approaches for Security Threats in IoT Environments

Deep Learning Approaches for Security Threats in IoT Environments
Title Deep Learning Approaches for Security Threats in IoT Environments PDF eBook
Author Mohamed Abdel-Basset
Publisher John Wiley & Sons
Total Pages 388
Release 2022-11-22
Genre Computers
ISBN 1119884160

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Deep Learning Approaches for Security Threats in IoT Environments An expert discussion of the application of deep learning methods in the IoT security environment In Deep Learning Approaches for Security Threats in IoT Environments, a team of distinguished cybersecurity educators deliver an insightful and robust exploration of how to approach and measure the security of Internet-of-Things (IoT) systems and networks. In this book, readers will examine critical concepts in artificial intelligence (AI) and IoT, and apply effective strategies to help secure and protect IoT networks. The authors discuss supervised, semi-supervised, and unsupervised deep learning techniques, as well as reinforcement and federated learning methods for privacy preservation. This book applies deep learning approaches to IoT networks and solves the security problems that professionals frequently encounter when working in the field of IoT, as well as providing ways in which smart devices can solve cybersecurity issues. Readers will also get access to a companion website with PowerPoint presentations, links to supporting videos, and additional resources. They’ll also find: A thorough introduction to artificial intelligence and the Internet of Things, including key concepts like deep learning, security, and privacy Comprehensive discussions of the architectures, protocols, and standards that form the foundation of deep learning for securing modern IoT systems and networks In-depth examinations of the architectural design of cloud, fog, and edge computing networks Fulsome presentations of the security requirements, threats, and countermeasures relevant to IoT networks Perfect for professionals working in the AI, cybersecurity, and IoT industries, Deep Learning Approaches for Security Threats in IoT Environments will also earn a place in the libraries of undergraduate and graduate students studying deep learning, cybersecurity, privacy preservation, and the security of IoT networks.

Deep Learning Techniques for IoT Security and Privacy

Deep Learning Techniques for IoT Security and Privacy
Title Deep Learning Techniques for IoT Security and Privacy PDF eBook
Author Mohamed Abdel-Basset
Publisher Springer Nature
Total Pages 273
Release 2021-12-05
Genre Computers
ISBN 3030890252

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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.