Building Neo4j-powered applications with LLMs : create LLM-driven search and recommendations : applications with Haystack, LangChain4j, and Sprin AI / Ravindranatha Anthapu
Material type:
TextSeries: Expert insightPublication details: Birmingham : Packt Publishing Ltd., 2025Description: xxiv, 283 pISBN: - 9781836206231
- 005.74 ANT-B
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| 005.74 AMB-O The object primer: | 005.74 AND-D Data processing: | 005.74 AND-D Data processing: | 005.74 ANT-B Building Neo4j-powered applications with LLMs : create LLM-driven search and recommendations : applications with Haystack, LangChain4j, and Sprin AI / | 005.74 APP- Applying blockchain technology : concepts and trends / | 005.74 ARR-D Data center fundamentals | 005.74 ARS-S Sams teach yourself big data analytics with Microsoft HDInsight in 24 hours / |
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A comprehensive guide to building cutting-edge generative AI applications using Neo4j's knowledge graphs and vector search capabilities Key Features Design vector search and recommendation systems with LLMs using Neo4j GenAI, Haystack, Spring AI, and LangChain4j Apply best practices for graph exploration, modeling, reasoning, and performance optimization Build and consume Neo4j knowledge graphs and deploy your GenAI apps to Google Cloud Purchase of the print or Kindle book includes a free PDF eBook Book Description Embark on an expert-led journey into building LLM-powered applications using Retrieval-Augmented Generation (RAG) and Neo4j knowledge graphs. Written by Ravindranatha Anthapu, Principal Consultant at Neo4j, and Siddhant Agrawal, a Google Developer Expert in GenAI, this comprehensive guide is your starting point for exploring alternatives to LangChain, covering frameworks such as Haystack, Spring AI, and LangChain4j. As LLMs (large language models) reshape how businesses interact with customers, this book helps you develop intelligent applications using RAG architecture and knowledge graphs, with a strong focus on overcoming one of AI's most persistent challenges--mitigating hallucinations.
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