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AI Agents for Secure and Software-Defined Networking : Harnessing AI and SDN to Revolutionize Modern Work Environments - Het Mehta

AI Agents for Secure and Software-Defined Networking

Harnessing AI and SDN to Revolutionize Modern Work Environments

By: Het Mehta

eText | 19 February 2026

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This book explores how Artificial Intelligence (AI) and Software-Defined Networking (SDN) can transform the way modern networks are designed, secured, and operated. In an era shaped by cloud computing, IoT, 5G, and edge computing, traditional network management is no longer enough—this book reveals how AI agents bring autonomy, intelligence, and adaptability to meet these challenges.

The book starts with the foundational concepts in AI and SDN, guiding readers toward advanced architectures and real-world applications. It examines urgent needs such as scalable, self-healing networks and proactive cybersecurity, showing how AI techniques—including reinforcement learning, graph neural networks, and explainable AI—can achieve intent-based networking, cognitive healing, federated learning, and intelligent automation. Each chapter combines conceptual overviews with detailed discussions, case studies, and actionable insights, making it accessible to students, researchers, engineers, and decision-makers alike. It bridges technical depth with broader considerations such as ethics, governance, energy efficiency, and disaster recovery. It unifies AI and networking into a single, practical framework rather than treating them as separate fields. The inclusion of curated resources, from books and blogs to courses and glossaries, supports ongoing learning beyond the text itself.

This book serves as a roadmap, guiding readers in designing intelligent, secure, and adaptive network ecosystems—essential for those aiming to lead the next generation of decentralized, resilient, and AI-driven digital infrastructure.

What you will learn:

  • Understand core AI-agent architectures and their integration with Software-Defined Networking for scalable, adaptive environments.
  • How to use ML, deep learning, reinforcement learning, and graph neural networks to optimize, automate, and secure networks.
  • How to develop AI-enabled networks with real-world case studies from telecom, smart cities, and enterprise IT.
  • Explore trends like federated learning, edge AI, programmable optical networks, and AI-driven disaster recovery

Who this book is for:

This book serves network architects and engineers using AI-driven automation to solve scalability and complexity challenges. It guides AI researchers and data scientists applying advanced methods for smarter, more efficient networks. Security professionals will also find value in AI-driven threat detection, incident response, and collaborative defense.

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