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Next-Generation Enterprise Security and Governance (Hardcover): Mohiuddin Ahmed, Nour Moustafa, Abu Barkat, Paul Haskell-Dowland Next-Generation Enterprise Security and Governance (Hardcover)
Mohiuddin Ahmed, Nour Moustafa, Abu Barkat, Paul Haskell-Dowland
R2,581 Discovery Miles 25 810 Ships in 9 - 15 working days

The Internet is making our daily lives as digital as possible, and this new era is called the Internet of Everything (IoE). The key force behind the rapid growth of the Internet is the technological advancement of enterprises. The digital world we live in is facilitated by these enterprises' advances and business intelligence. These enterprises need to deal with gazillions of bytes of data, and in today's age of General Data Protection Regulation, enterprises are required to ensure privacy and security of large-scale data collections. However, the increased connectivity and devices used to facilitate IoE are continually creating more room for cybercriminals to find vulnerabilities in enterprise systems and flaws in their corporate governance. Ensuring cybersecurity and corporate governance for enterprises should not be an afterthought or present a huge challenge. In recent times, the complex diversity of cyber-attacks has been skyrocketing, and zero-day attacks, such as ransomware, botnet, and telecommunication attacks, are happening more frequently than before. New hacking strategies would easily bypass existing enterprise security and governance platforms using advanced, persistent threats. For example, in 2020, the Toll Group firm was exploited by a new crypto-attack family for violating its data privacy, where an advanced ransomware technique was launched to exploit the corporation and request a huge figure of monetary ransom. Even after applying rational governance hygiene, cybersecurity configuration and software updates are often overlooked when they are most needed to fight cyber-crime and ensure data privacy. Therefore, the threat landscape in the context of enterprises has become wider and far more challenging. There is a clear need for collaborative work throughout the entire value chain of this network. In this context, this book addresses the cybersecurity and cooperate governance challenges associated with enterprises, which will provide a bigger picture of the concepts, intelligent techniques, practices, and open research directions in this area. This book serves as a single source of reference for acquiring the knowledge on the technology, process, and people involved in next-generation privacy and security.

Responsible Graph Neural Networks (Paperback): Nour Moustafa, Mohamed Abdel-Basset, Zahir Tari, Hossam Hawash Responsible Graph Neural Networks (Paperback)
Nour Moustafa, Mohamed Abdel-Basset, Zahir Tari, Hossam Hawash
R1,453 Discovery Miles 14 530 Ships in 12 - 17 working days

More frequent and complex cyber threats require robust, automated and rapid responses from cyber security specialists. This book offers a complete study in the area of graph learning in cyber, emphasising graph neural networks (GNNs) and their cyber security applications. Three parts examine the basics; methods and practices; and advanced topics. The first part presents a grounding in graph data structures and graph embedding and gives a taxonomic view of GNNs and cyber security applications. Part two explains three different categories of graph learning including deterministic, generative and reinforcement learning and how they can be used for developing cyber defence models. The discussion of each category covers the applicability of simple and complex graphs, scalability, representative algorithms and technical details. Undergraduate students, graduate students, researchers, cyber analysts, and AI engineers looking to understand practical deep learning methods will find this book an invaluable resource.

Responsible Graph Neural Networks (Hardcover): Nour Moustafa, Mohamed Abdel-Basset, Zahir Tari, Hossam Hawash Responsible Graph Neural Networks (Hardcover)
Nour Moustafa, Mohamed Abdel-Basset, Zahir Tari, Hossam Hawash
R2,513 Discovery Miles 25 130 Ships in 12 - 17 working days

More frequent and complex cyber threats require robust, automated and rapid responses from cyber security specialists. This book offers a complete study in the area of graph learning in cyber, emphasising graph neural networks (GNNs) and their cyber security applications. Three parts examine the basics; methods and practices; and advanced topics. The first part presents a grounding in graph data structures and graph embedding and gives a taxonomic view of GNNs and cyber security applications. Part two explains three different categories of graph learning including deterministic, generative and reinforcement learning and how they can be used for developing cyber defence models. The discussion of each category covers the applicability of simple and complex graphs, scalability, representative algorithms and technical details. Undergraduate students, graduate students, researchers, cyber analysts, and AI engineers looking to understand practical deep learning methods will find this book an invaluable resource.

Explainable Artificial Intelligence for Cyber Security - Next Generation Artificial Intelligence (Hardcover, 1st ed. 2022):... Explainable Artificial Intelligence for Cyber Security - Next Generation Artificial Intelligence (Hardcover, 1st ed. 2022)
Mohiuddin Ahmed, Sheikh Rabiul Islam, Adnan Anwar, Nour Moustafa, Al-Sakib Khan Pathan
R3,223 R2,292 Discovery Miles 22 920 Save R931 (29%) Ships in 12 - 17 working days

This book presents that explainable artificial intelligence (XAI) is going to replace the traditional artificial, machine learning, deep learning algorithms which work as a black box as of today. To understand the algorithms better and interpret the complex networks of these algorithms, XAI plays a vital role. In last few decades, we have embraced AI in our daily life to solve a plethora of problems, one of the notable problems is cyber security. In coming years, the traditional AI algorithms are not able to address the zero-day cyber attacks, and hence, to capitalize on the AI algorithms, it is absolutely important to focus more on XAI. Hence, this book serves as an excellent reference for those who are working in cyber security and artificial intelligence.

Digital Forensics in the Era of Artificial Intelligence (Paperback): Nour Moustafa Digital Forensics in the Era of Artificial Intelligence (Paperback)
Nour Moustafa
R1,413 Discovery Miles 14 130 Ships in 12 - 17 working days

Digital forensics plays a crucial role in identifying, analysing, and presenting cyber threats as evidence in a court of law. Artificial intelligence, particularly machine learning and deep learning, enables automation of the digital investigation process. This book provides an in-depth look at the fundamental and advanced methods in digital forensics. It also discusses how machine learning and deep learning algorithms can be used to detect and investigate cybercrimes. This book demonstrates digital forensics and cyber-investigating techniques with real-world applications. It examines hard disk analytics and style architectures, including Master Boot Record and GUID Partition Table as part of the investigative process. It also covers cyberattack analysis in Windows, Linux, and network systems using virtual machines in real-world scenarios. Digital Forensics in the Era of Artificial Intelligence will be helpful for those interested in digital forensics and using machine learning techniques in the investigation of cyberattacks and the detection of evidence in cybercrimes.

Digital Forensics in the Era of Artificial Intelligence (Hardcover): Nour Moustafa Digital Forensics in the Era of Artificial Intelligence (Hardcover)
Nour Moustafa
R2,544 Discovery Miles 25 440 Ships in 12 - 17 working days

Digital forensics plays a crucial role in identifying, analysing, and presenting cyber threats as evidence in a court of law. Artificial intelligence, particularly machine learning and deep learning, enables automation of the digital investigation process. This book provides an in-depth look at the fundamental and advanced methods in digital forensics. It also discusses how machine learning and deep learning algorithms can be used to detect and investigate cybercrimes. This book demonstrates digital forensics and cyber-investigating techniques with real-world applications. It examines hard disk analytics and style architectures, including Master Boot Record and GUID Partition Table as part of the investigative process. It also covers cyberattack analysis in Windows, Linux, and network systems using virtual machines in real-world scenarios. Digital Forensics in the Era of Artificial Intelligence will be helpful for those interested in digital forensics and using machine learning techniques in the investigation of cyberattacks and the detection of evidence in cybercrimes.

Deep Learning Techniques for IoT Security and Privacy (Hardcover, 1st ed. 2022): Mohamed Abdel-Basset, Nour Moustafa, Hossam... Deep Learning Techniques for IoT Security and Privacy (Hardcover, 1st ed. 2022)
Mohamed Abdel-Basset, Nour Moustafa, Hossam Hawash, Weiping Ding
R4,476 Discovery Miles 44 760 Ships in 12 - 17 working days

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.

Explainable Artificial Intelligence for Cyber Security - Next Generation Artificial Intelligence (1st ed. 2022): Mohiuddin... Explainable Artificial Intelligence for Cyber Security - Next Generation Artificial Intelligence (1st ed. 2022)
Mohiuddin Ahmed, Sheikh Rabiul Islam, Adnan Anwar, Nour Moustafa, Al-Sakib Khan Pathan
R4,692 Discovery Miles 46 920 Ships in 10 - 15 working days

This book presents that explainable artificial intelligence (XAI) is going to replace the traditional artificial, machine learning, deep learning algorithms which work as a black box as of today. To understand the algorithms better and interpret the complex networks of these algorithms, XAI plays a vital role. In last few decades, we have embraced AI in our daily life to solve a plethora of problems, one of the notable problems is cyber security. In coming years, the traditional AI algorithms are not able to address the zero-day cyber attacks, and hence, to capitalize on the AI algorithms, it is absolutely important to focus more on XAI. Hence, this book serves as an excellent reference for those who are working in cyber security and artificial intelligence.

Deep Learning Techniques for IoT Security and Privacy (Paperback, 1st ed. 2022): Mohamed Abdel-Basset, Nour Moustafa, Hossam... Deep Learning Techniques for IoT Security and Privacy (Paperback, 1st ed. 2022)
Mohamed Abdel-Basset, Nour Moustafa, Hossam Hawash, Weiping Ding
R4,689 Discovery Miles 46 890 Ships in 10 - 15 working days

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.

AI 2020: Advances in Artificial Intelligence - 33rd Australasian Joint Conference, AI 2020, Canberra, ACT, Australia, November... AI 2020: Advances in Artificial Intelligence - 33rd Australasian Joint Conference, AI 2020, Canberra, ACT, Australia, November 29-30, 2020, Proceedings (Paperback, 1st ed. 2020)
Marcus Gallagher, Nour Moustafa, Erandi Lakshika
R2,733 Discovery Miles 27 330 Ships in 10 - 15 working days

This book constitutes the proceedings of the 33rd Australasian Joint Conference on Artificial Intelligence, AI 2020, held in Canberra, ACT, Australia, in November 2020.*The 36 full papers presented in this volume were carefully reviewed and selected from 57 submissions. The paper were organized in topical sections named: applications; evolutionary computation; fairness and ethics; games and swarms; and machine learning. *The conference was held virtually due to the COVID-19 pandemic.

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