AI Trust, Risk, and Security Management: Framework, Principles, and Practices

Author:   R. Karthick Manoj (Academy of Maritime Education and Training, Tamil Nadu, India) ,  S. Senthilnathan (School of Engineering and Technology at Christ University, India) ,  S. Arunmozhi Selvi (Anna University, India) ,  T. Ananth Kumar (IFET College of Engineering, India)
Publisher:   John Wiley & Sons Inc
ISBN:  

9781394392995


Pages:   416
Publication Date:   16 January 2026
Format:   Hardback
Availability:   Out of stock   Availability explained
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AI Trust, Risk, and Security Management: Framework, Principles, and Practices


Overview

For industry practitioners, academic researchers, and governance professionals alike, this book offers both clarity and depth in one of the most important domains of modern technology. As AI matures, trust and risk management will define its success—and this book lays the groundwork for achieving that vision. As AI continues to permeate sectors ranging from healthcare to finance, ensuring that these systems are not only powerful but also accountable, transparent, and secure, is more critical than ever. This book offers a vital exploration into the intersection of trustworthiness, risk mitigation, and security governance in artificial intelligence systems, serving as a definitive guide for professionals, researchers, and policymakers striving to build, deploy, and manage AI responsibly in high-stakes environments. Using a comprehensive approach, it explores how to integrate technical safeguards, organizational practices, and regulatory alignment to manage the unique risks posed by AI, including algorithmic bias, data misuse, adversarial attacks, and opaque decision-making. The result is a strategic approach that not only identifies vulnerabilities, but also promotes resilient, auditable, and trustworthy AI ecosystems. At its core, AI TRiSM is a forward-looking concept that embraces the realities of AI in production environments. The framework moves beyond traditional static models of governance to propose dynamic, adaptive controls that evolve alongside AI systems. Through real-world case studies, the book outlines how tools like model cards, bias audits, and zero-trust architectures can be embedded into the AI development lifecycle. Readers will find the volume: Introduces concepts to stay ahead of regulations and build trustworthy AI systems that customers and stakeholders can rely on; Addresses security threats, bias, and compliance gaps to avoid costly AI failures; Explores proven frameworks and best practices to deploy AI responsibly and strategies to outperform; Provides comprehensive guidance through real-world case studies and contributions from industry and academia. Audience AI and machine learning engineers, data scientists, cybersecurity and risk management specialists, academics, researchers, and policymakers specializing in AI ethics, security, and risk management.

Full Product Details

Author:   R. Karthick Manoj (Academy of Maritime Education and Training, Tamil Nadu, India) ,  S. Senthilnathan (School of Engineering and Technology at Christ University, India) ,  S. Arunmozhi Selvi (Anna University, India) ,  T. Ananth Kumar (IFET College of Engineering, India)
Publisher:   John Wiley & Sons Inc
Imprint:   Wiley-Scrivener
ISBN:  

9781394392995


ISBN 10:   1394392990
Pages:   416
Publication Date:   16 January 2026
Audience:   Professional and scholarly ,  Professional & Vocational
Format:   Hardback
Publisher's Status:   Active
Availability:   Out of stock   Availability explained
The supplier is temporarily out of stock of this item. It will be ordered for you on backorder and shipped when it becomes available.

Table of Contents

Series Preface xix Preface xxi Part I: Fundamentals of Trustworthy and Transparent AI 1 1 Creating Trustworthy AI: A Lifecycle Risk Management Framework 3 Satish Kumar S., Bharathi K., Vinod S., Rudhra S., Balaraman R. and Suresh A. 2 Comprehensibility and Transparency of AI Systems with Applications 19 N. Hemalatha, R. Elavarasi, P. Gajalakshmi, N. Magadevi and D. Kadhiravan 3 Leveraging Correlation Analysis for Effective Feature Selection in AI Model Development 43 Raju Arumugam 4 Fusion-Based CNN Ensemble with Grad-CAM for Trustworthy and Transparent Plant Disease Detection 73 G. Abirami and S. Aasha Nandhini 5 Case Studies and Applications of Explainability and Interpretability in AI Models 99 P. Gajalakshmi, N. Hemalatha, R. Elavarasi, N. Magadevi and D. Kadhiravan Part II: Privacy-Preserving and Secure AI Systems 125 6 Privacy-Preserving AI Techniques: Protecting Data in the Age of AI 127 N. Ram Shankar, S. Suhasini, M. Aravind Adityaa, B. Charan Sai, R. Deekshit, D. Derrick Nathaniel and K. Manikandan 7 Federated Learning for Early Detection of Chronic Diseases: Privacy-Preserving Models in Population Health Management 153 A.V. Sriharsha and Sai Nomitha Yarabolu 8 Secure and Trustworthy AI for Efficient Diabetic Retinopathy Screening with Deep Learning Model 183 S. Sreedevi, K. Sarmila Har Beagam, G. Ezhilarasi and D. Lakshmi 9 Addressing Security Challenges in AI-Driven Cyber Security: Enhancing Resilience While Fostering Sustainable Practices with Green Computing 205 P. Geetha, G. Abirami, T. Padmavathy, S. Sivagami and D. Vinodha Part III: AI in Smart Healthcare, Agriculture and Energy and Power Systems 227 10 Enhancing Breast Cancer Health Care Using Vision Transformer Processing with Dingo Optimization 229 S. Baulkani and Koushalya S. 11 Enhancing Biometric Identification: A Trustworthy Framework for Toddler Iris Recognition through AI Innovations 249 Ramesh S. and V. Krishnaveni 12 AI-Enhanced Reactive Power Compensation in Weak Grids Integrating Wind Energy Systems: A Trustworthy and Risk-Managed Approach 279 R. Rajasree, D. Lakshmi, K. Stalin and R.K. Padmashini 13 AI-Based Frequency Regulation for a Deregulated Two-Area Power System 305 D. Lakshmi, V. Pramila, S. Aasha Nandhini and R. Rajasree Part IV: Real-World AI Applications and Future Opportunities 329 14 Smart Defense Vehicle (Bot) with AI-Assisted Security System 331 V. Sridevi and S. Priya 15 Smart Motor Fault Detection Leveraging LabVIEW and IoT Integration 251 Vinoth Kumar P., Priya S., Prakash S., Gunapriya D. and Sridevi V. References 368 Index 371

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Author Information

R. Karthick Manoj, PhD is an Assistant Professor at the Academy of Maritime Education and Training Tamil Nadu, India, with more than 14 years of experience. His scholarly contributions include six national and twelve international journal articles, four patents, three books, ten book chapters, and more than fifteen conference presentations. S. Senthilnathan, PhD is an Assistant Professor in the Department of Electronics and Communication Engineering in the School of Engineering and Technology at Christ University, Bangalore, India. His research interests include quantum dot cellular automata and quantum computing. S. Arunmozhi Selvi, PhD is a Professor in the Holy Cross Engineering College, Anna University, Tamil Nadu, India with more than 15 years of research and teaching experience. She has published 30 articles in international journals and conference proceedings and written many book chapters. T. Ananth Kumar, PhD is an Associate Professor in the Department of and Computer Science and Engineering, IFET College of Engineering, Tamil Nadu, India. He has authored one book, edited six books and several book chapters, and presented papers in various national and international journals and conferences. S. Balamurugan, PhD is the Director of Research at iRCS, an Indian Technological Research and Consulting, Coimbatore India. He has published 100 books, 300 papers in international journals and conferences, and 300 patents. With 20 years of experience researching various cutting-edge technologies, he provides expert guidance in technology forecasting and decision making for leading companies and startups.

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