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Packt Publishing
RAG-Driven Generative AI: Build custom retrieval augmented generation pipelines with LlamaIndex, Deep Lake, and Pinecone
RAG-Driven Generative AI: Build custom retrieval augmented generation pipelines with LlamaIndex, Deep Lake, and Pinecone
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$63.99 USD
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$63.99 USD
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Minimize AI hallucinations and build accurate, custom generative AI pipelines with RAG using embedded vector databases and integrated human feedbackGet With Your Book: PDF Copy, AI Assistant, and Next-Gen Reader FreeKey Features
- Implement RAG’s traceable outputs, linking each response to its source document to build reliable multimodal conversational agents
- Deliver accurate generative AI models in pipelines integrating RAG, real-time human feedback improvements, and knowledge graphs
- Balance cost and performance between dynamic retrieval datasets and fine-tuning static data
- Scale RAG pipelines to handle large datasets efficiently
- Employ techniques that minimize hallucinations and ensure accurate responses
- Implement indexing techniques to improve AI accuracy with traceable and transparent outputs
- Customize and scale RAG-driven generative AI systems across domains
- Find out how to use Deep Lake and Pinecone for efficient and fast data retrieval
- Control and build robust generative AI systems grounded in real-world data
- Combine text and image data for richer, more informative AI responses
This book is ideal for data scientists, AI engineers, machine learning engineers, and MLOps engineers. If you are a solutions architect, software developer, product manager, or project manager looking to enhance the decision-making process of building RAG applications, then you’ll find this book useful.
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