Card | Table | RUSMARC | |
Advances in information security, privacy, and ethics (AISPE) book series.
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Annotation
"This book describes some of the recent notable advances in threat-detection using machine-learning and artificial-intelligence with a focus on malwares, covering the current trends in ML/statistical approaches to detecting, clustering or classification of cyber-threats extensively"--.
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Table of Contents
- Cover
- Title Page
- Copyright Page
- Book Series
- Dedication
- Editorial Advisory Board
- Table of Contents
- Detailed Table of Contents
- Preface
- Acknowledgment
- Chapter 1: Machine Learning for Malware Analysis
- Chapter 2: Research Trends for Malware and Intrusion Detection on Network Systems
- Chapter 3: Deep-Learning and Machine-Learning-Based Techniques for Malware Detection and Data-Driven Network Security
- Chapter 4: The Era of Advanced Machine Learning and Deep Learning Algorithms for Malware Detection
- Chapter 5: Malware Detection in Industrial Scenarios Using Machine Learning and Deep Learning Techniques
- Chapter 6: Malicious Node Detection Using Convolution Technique
- Chapter 7: Scalable Rekeying Using Linked LKH Algorithm for Secure Multicast Communication
- Chapter 8: Botnet Defense System and White-Hat Worm Launch Strategy in IoT Network
- Chapter 9: A Survey on Emerging Security Issues, Challenges, and Solutions for Internet of Things (IoTs)
- Chapter 10: SecBrain
- Chapter 11: A Study on Data Sharing Using Blockchain System and Its Challenges and Applications
- Chapter 12: Fruit Fly Optimization-Based Adversarial Modeling for Securing Wireless Sensor Networks (WSN)
- Chapter 13: Cybersecurity Risks Associated With Brain-Computer Interface Classifications
- Compilation of References
- About the Contributors
- Index
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