Karimipour AI-Enabled Threat Detection and Security Analysis for Industrial IoT

AI-Enabled Threat Detection and Security Analysis for Industrial IoT

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Beschreibung

This contributed volume provides the state-of-the-art development on security and privacy for cyber-physical systems (CPS) and industrial Internet of Things (IIoT). More specifically, this book discusses the security challenges in CPS and IIoT systems as well as how Artificial Intelligence (AI) and Machine Learning (ML) can be used to address these challenges.  Furthermore, this book proposes various defence strategies, including intelligent cyber-attack and anomaly detection algorithms for different IIoT applications.  
Each chapter corresponds to an important snapshot including an overview of the opportunities and challenges of realizing the AI in IIoT environments, issues related to data security, privacy and application of blockchain technology in the IIoT environment. This book also examines more advanced and specific topics in AI-based solutions developed for efficient anomaly detection in IIoT environments. Different AI/ML tecniques including deep representation learning, Snapshot Ensemble Deep Neural Network (SEDNN), federated learning and multi-stage learning are discussed and analysed as well.  Researchers and professionals working in computer security with an emphasis on the scientific foundations and engineering techniques for securing IIoT systems and their underlying computing and communicating systems will find this book useful as a reference.  The content of this book will be particularly useful for advanced-level students studying computer science, computer technology, cyber security, and information systems.  It also applies to advanced-level students studying electrical engineering and system engineering, who would benefit from the case studies.
This contributed volume provides the state-of-the-art development on security and privacy for cyber-physical systems (CPS) and industrial Internet of Things (IIoT). More specifically, this book discusses the security challenges in CPS and IIoT systems as well as how Artificial Intelligence (AI) and Machine Learning (ML) can be used to address these challenges.  Furthermore, this book proposes various defence strategies, including intelligent cyber-attack and anomaly detection algorithms for different IIoT applications.  
Each chapter corresponds to an important snapshot including an overview of the opportunities and challenges of realizing the AI in IIoT environments, issues related to data security, privacy and application of blockchain technology in the IIoT environment. This book also examines more advanced and specific topics in AI-based solutions developed for efficient anomaly detection in IIoT environments. Different AI/ML techniquesincluding deep representation learning, Snapshot Ensemble Deep Neural Network (SEDNN), federated learning and multi-stage learning are discussed and analysed as well.  Researchers and professionals working in computer security with an emphasis on the scientific foundations and engineering techniques for securing IIoT systems and their underlying computing and communicating systems will find this book useful as a reference.  The content of this book will be particularly useful for advanced-level students studying computer science, computer technology, cyber security, and information systems.  It also applies to advanced-level students studying electrical engineering and system engineering, who would benefit from the case studies.
Discusses anomaly detection, defensive mechanisms in critical IoT-enabled industries and cybersecurity concepts Presents emerging IoT-enabled CPSs such as precision agriculture and investigating their unique cybersecurity challenges and trade-offs between service availability and security Includes real-world problems, case studies and solutions from a wide variety of attack scenarios to provide intelligent automated IoT-enabled CPSs against cyberattack Introduces traditional IoT-enabled CPSs such smart grids

Autor*in

Hadis Karimipour

Themen in »AI-Enabled Threat Detection and Security Analysis for Industrial IoT«

Internet of Things Industry 4.0 Industrial Internet of Things cyber-physical system cybersecurity threat intelligence machine learning intrusion detection anomaly detection attack identification attack prevention artificial intelligent deep learning smart grid

Stimmen zu »AI-Enabled Threat Detection and Security Analysis for Industrial IoT«

Details

ISBN: 9783030766153
Verlag: Springer International Publishing
Erscheinung: 06.08.2022

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