Advanced Retrieval-Augmented Generation
eBook - ePub

Advanced Retrieval-Augmented Generation

Bridging Large Language Models and Knowledge Graphs

  1. 529 pages
  2. English
  3. ePUB (mobile friendly)
  4. Available on iOS & Android
eBook - ePub

Advanced Retrieval-Augmented Generation

Bridging Large Language Models and Knowledge Graphs

About this book

Build Accurate, Grounded, and Trustworthy AI Systems with Retrieval-Augmented Generation

Large language models are powerful—but they hallucinate. Advanced Retrieval-Augmented Generation offers a complete guide from the foundations of information retrieval (IR) to the cutting-edge frontiers of RAG. Bridging large language models (LLMs) and knowledge graphs (KGs), this book provides the theoretical principles, practical techniques, and hands-on frameworks needed to build reliable AI systems that minimize hallucinations and improve factual correctness. The book covers core concepts of Graph-RAG with applications across search, recommendation, and enterprise AI. Practical chapters demonstrate implementations using LlamaIndex, Neo4j, and leading Graph-RAG frameworks.

Readers will learn:

  • IR and LLM fundamentals — model paradigms, transformer architecture, model families, training techniques, prompt engineering, applications, and limitations
  • RAG pipeline engineering — chunking, indexing, retrieval, ranking, and generation
  • KG construction and analytics — schema design, extraction techniques, graph algorithms, embeddings, and GNNs
  • Graph-RAG architectures and evaluation — graph-based retrieval, graph-assisted generation, hybrid LLM–KG workflows, frameworks, benchmarks, and metrics
  • Emerging directions — multimodal KGs, dynamic graphs, explainable RAG, RL-based traversal, and enterprise-scale implementations

With extensive hands-on examples and production-ready patterns, Advanced Retrieval-Augmented Generation is an indispensable resource for AI practitioners, ML engineers, researchers, and architects building the next generation of reliable, knowledge-grounded AI systems.

Information

Year
2026
Print ISBN
9781394374687
Edition
1
eBook ISBN
9781394374694

Table of contents

  1. Cover
  2. Table of Contents
  3. IEEE Press
  4. Title Page
  5. Copyright
  6. Dedication
  7. Foreword
  8. About the Authors
  9. Preface
  10. Acknowledgments
  11. Introduction
  12. About the Companion Website
  13. Part I: From Traditional Information Retrieval to Modern RAG
  14. Part II: Graphs and Knowledge Graphs
  15. Part III: Integrate RAG with Graph
  16. Part IV: Advanced Implementations and Frontiers
  17. Appendix A: Set Up Experiment Servers
  18. Appendix B: Prepare Synthetic Recommendation Data from WANDS
  19. Index
  20. End User License Agreement

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Yes, you can access Advanced Retrieval-Augmented Generation by Wendy Ran Wei,Huijun Wu in PDF and/or ePUB format, as well as other popular books in Computer Science & Information Technology. We have over 1.5 million books available in our catalogue for you to explore.