Building Generative AI Applications with Open-source Libraries : Practical guide to implementing large language models (English Edition)

Description: Generative AI is revolutionizing how we interact with technology, empowering us to create everything from compelling text to intricate code. This book is your practical guide to harnessing the power of open-source libraries, enabling you to build cutting-edge generative AI applications...

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Bibliographic Details
Main Author: Balakrishnan, Srikannan
Format: Livre numérique
Language:Anglais
Published: New Delhi : BPB Publications 2025.
Paris : Cyberlibris
Online Access:Accès Université d'Orléans et IFPM
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Autres localisations: Voir dans le Sudoc
Edition sous un autre format:• Building Generative AI Applications with Open-source Libraries, Practical guide to implementing large language models (English Edition), Srikannan Balakrishnan, New Delhi, BPB Publications, 2025, 1 vol. (294 p.), 978-93-6589-628-2
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Summary:Description: Generative AI is revolutionizing how we interact with technology, empowering us to create everything from compelling text to intricate code. This book is your practical guide to harnessing the power of open-source libraries, enabling you to build cutting-edge generative AI applications without needing extensive prior experience. In this book, you will journey from foundational concepts like natural language processing and transformers to the practical implementation of large language models. Learn to customize foundational models for specific industries, master text embeddings, and vector databases for efficient information retrieval, and build robust applications using LangChain. Explore open-source models like Llama and Falcon and leverage Hugging Face for seamless implementation. Discover how to deploy scalable AI solutions in the cloud while also understanding crucial aspects of data privacy and ethical AI usage. By the end of this book, you will be equipped with technical skills and practical knowledge, enabling you to confidently develop and deploy your own generative AI applications, leveraging the power of open-source tools to innovate and create. What you will learn: Building AI applications using LangChain and integrating RAG; Implementing large language models like Llama and Falcon; Utilizing Hugging Face for efficient model deployment; Developing scalable AI applications in cloud environments; Addressing ethical considerations and data privacy in AI; Practical application of vector databases for information retrieval. Who this book is for: This book is for aspiring tech professionals, students, and creative minds seeking to build generative AI applications. While a basic understanding of programming and an interest in AI are beneficial, no prior generative AI expertise is required
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