Mastering Retrieval-Augmented Generation Workflows with GraphRAG (Paperback)
Language: English
Published by Independently Published, 2025
- Softcover
- New

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Paperback. This book is your complete guide to building next-generation Retrieval-Augmented Generation (RAG) systems powered by knowledge graphs. As LLMs continue to evolve, traditional RAG pipelines struggle with context gaps, shallow retrieval, and limited reasoning. GraphRAG solves these problems by fusing structured knowledge with dynamic retrieval, creating AI systems that are more accurate, explainable, and context-aware.This book gives you a clear, practical, and highly technical foundation for understanding and applying GraphRAG across real-world domains. You'll explore every layer of the modern GraphRAG pipeline-from graph construction and embedding strategies to semantic retrieval, graph reasoning, and generation workflows.Written in a practical, hands-on style, GraphRAG Essentials delivers the tools, patterns, and architectures you need to design, optimize, and deploy knowledge-graph-augmented AI systems at scale.Inside this book, you will learn: - Core GraphRAG principlesHow knowledge graphs enhance retrieval, improve grounding, and deliver richer context to LLMs.- Practical workflows and architecturesStep-by-step pipelines for entity extraction, graph building, retrieval integration, and generation refinement.- Key algorithms and techniquesGraph traversal, semantic similarity search, embeddings, scoring methods, and hybrid retrieval models.- Knowledge graph engineeringSchema design, ontology modeling, graph storage, indexing, and integration with LLM-based systems.- Building GraphRAG applicationsReal-world examples in search, analytics, chat systems, enterprise AI, and domain-specific intelligence.- Performance optimizationHow to improve accuracy, reduce hallucinations, boost retrieval quality, and scale GraphRAG pipelines.- Tooling and frameworksPractical guidance on Neo4j, NetworkX, LangChain, LlamaIndex, and modern graph infrastructure.Who this book is forAI engineers and ML practitionersNLP and knowledge-graph researchersDevelopers building advanced RAG-based applicationsArchitects designing scalable contextual AI systemsAnyone exploring the frontier of AI retrieval and structured reasoningPacked with clear explanations, engineering patterns, and actionable insights, GraphRAG Essentials gives you everything you need to build intelligent, structured, and deeply context-aware retrieval systems.Whether you're enhancing enterprise search, building domain-expert chatbots, or developing custom generative AI applications, this book will help you unlock the full power of GraphRAG. This item is printed on demand. Shipping may be from our UK warehouse or from our Australian or US warehouses, depending on stock availability.…
Seller Inventory # 9798277354544
- Title
- Mastering Retrieval-Augmented Generation Workflows with GraphRAG (Paperback)
- Author
- Tyrell Owen
- Publisher
- Independently Published
- Publication year
- 2025
- Condition
- new
- Binding
- Paperback
- Language
- English
- ISBN 13
- 9798277354544
This book gives you a clear, practical, and highly technical foundation for understanding and applying GraphRAG across real-world domains. You’ll explore every layer of the modern GraphRAG pipeline—from graph construction and embedding strategies to semantic retrieval, graph reasoning, and generation workflows.
Written in a practical, hands-on style, GraphRAG Essentials delivers the tools, patterns, and architectures you need to design, optimize, and deploy knowledge-graph-augmented AI systems at scale.
Inside this book, you will learn:
• Core GraphRAG principles
How knowledge graphs enhance retrieval, improve grounding, and deliver richer context to LLMs.
• Practical workflows and architectures
Step-by-step pipelines for entity extraction, graph building, retrieval integration, and generation refinement.
• Key algorithms and techniques
Graph traversal, semantic similarity search, embeddings, scoring methods, and hybrid retrieval models.
• Knowledge graph engineering
Schema design, ontology modeling, graph storage, indexing, and integration with LLM-based systems.
• Building GraphRAG applications
Real-world examples in search, analytics, chat systems, enterprise AI, and domain-specific intelligence.
• Performance optimization
How to improve accuracy, reduce hallucinations, boost retrieval quality, and scale GraphRAG pipelines.
• Tooling and frameworks
Practical guidance on Neo4j, NetworkX, LangChain, LlamaIndex, and modern graph infrastructure.
Who this book is for
- AI engineers and ML practitioners
- NLP and knowledge-graph researchers
- Developers building advanced RAG-based applications
- Architects designing scalable contextual AI systems
- Anyone exploring the frontier of AI retrieval and structured reasoning
Whether you’re enhancing enterprise search, building domain-expert chatbots, or developing custom generative AI applications, this book will help you unlock the full power of GraphRAG.
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CitiRetail
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