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Unlocking Data with Generative AI and RAG

You're reading from   Unlocking Data with Generative AI and RAG Enhance generative AI systems by integrating internal data with large language models using RAG

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Product type Paperback
Published in Sep 2024
Publisher Packt
ISBN-13 9781835887905
Length 346 pages
Edition 1st Edition
Concepts
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Author (1):
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Keith Bourne Keith Bourne
Author Profile Icon Keith Bourne
Keith Bourne
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Table of Contents (20) Chapters Close

Preface 1. Part 1 – Introduction to Retrieval-Augmented Generation (RAG) FREE CHAPTER
2. Chapter 1: What Is Retrieval-Augmented Generation (RAG) 3. Chapter 2: Code Lab – An Entire RAG Pipeline 4. Chapter 3: Practical Applications of RAG 5. Chapter 4: Components of a RAG System 6. Chapter 5: Managing Security in RAG Applications 7. Part 2 – Components of RAG
8. Chapter 6: Interfacing with RAG and Gradio 9. Chapter 7: The Key Role Vectors and Vector Stores Play in RAG 10. Chapter 8: Similarity Searching with Vectors 11. Chapter 9: Evaluating RAG Quantitatively and with Visualizations 12. Chapter 10: Key RAG Components in LangChain 13. Chapter 11: Using LangChain to Get More from RAG 14. Part 3 – Implementing Advanced RAG
15. Chapter 12: Combining RAG with the Power of AI Agents and LangGraph 16. Chapter 13: Using Prompt Engineering to Improve RAG Efforts 17. Chapter 14: Advanced RAG-Related Techniques for Improving Results 18. Index 19. Other Books You May Enjoy

E-commerce support

E-commerce is a key area that can benefit significantly from RAG applications. Let’s review a couple of areas where RAG can be applied, starting with product descriptions.

Dynamic online product descriptions

RAG’s ability to generate personalized product descriptions is a game-changer for e-commerce businesses. By leveraging the power of RAG, companies can create highly targeted and persuasive product descriptions that resonate with individual customers, ultimately driving sales and fostering brand loyalty. RAG can produce personalized product descriptions or highlight features that are specifically tailored to the user’s past behavior and preferences, taking into account RAG’s ability to analyze vast amounts of customer data, including browsing history, past purchases, and even social media interactions.

For instance, let’s say Rylee is a user who frequently purchases eco-friendly products. RAG can be used to emphasize...

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