Additional information
Full Title | Adversary-Aware Learning Techniques and Trends in Cybersecurity |
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Author(s) | |
Edition | |
ISBN | 9783030556921, 9783030556914 |
Publisher | Springer |
Format | PDF and EPUB |
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Full Title | Adversary-Aware Learning Techniques and Trends in Cybersecurity |
---|---|
Author(s) | |
Edition | |
ISBN | 9783030556921, 9783030556914 |
Publisher | Springer |
Format | PDF and EPUB |
This book is intended to give researchers and practitioners in the cross-cutting fields of artificial intelligence, machine learning (AI/ML) and cyber security up-to-date and in-depth knowledge of recent techniques for improving the vulnerabilities of AI/ML systems against attacks from malicious adversaries. The ten chapters in this book, written by eminent researchers in AI/ML and cyber-security, span diverse, yet inter-related topics including game playing AI and game theory as defenses against attacks on AI/ML systems, methods for effectively addressing vulnerabilities of AI/ML operating in large, distributed environments like Internet of Things (IoT) with diverse data modalities, and, techniques to enable AI/ML systems to intelligently interact with humans that could be malicious adversaries and/or benign teammates. Readers of this book will be equipped with definitive information on recent developments suitable for countering adversarial threats in AI/ML systems towards making them operate in a safe, reliable and seamless manner.