Privacy and Security for Large Language Models : Hands-On Privacy-Preserving Techniques for Personalized AI
by
Baihan Lin
Book Details
Format
Paperback / Softback
ISBN-10
1098160843
ISBN-13
9781098160845
Publisher
O'Reilly Media
Imprint
O'Reilly Media
Country of Manufacture
GB
Country of Publication
GB
Publication Date
Jan 30th, 2026
Print length
300 Pages
Weight
558 grams
Dimensions
17.70 x 23.40 x 2.00 cms
Ksh 11,500.00
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Dr. Baihan Lin offers a comprehensive exploration of privacy-preserving and security techniques like differential privacy, federated learning, and homomorphic encryption, applied specifically to LLMs.
As the deployment of AI technologies surges, the need to safeguard privacy and security in the use of large language models (LLMs) is more crucial than ever. Professionals face the challenge of leveraging the immense power of LLMs for personalized applications while ensuring stringent data privacy and security. The stakes are high, as privacy breaches and data leaks can lead to significant reputational and financial repercussions.This book serves as a much-needed guide to addressing these pressing concerns. Dr. Baihan Lin offers a comprehensive exploration of privacy-preserving and security techniques like differential privacy, federated learning, and homomorphic encryption, applied specifically to LLMs. With its hands-on code examples, real-world case studies, and robust fine-tuning methodologies in domain-specific applications, this book is a vital resource for developing secure, ethical, and personalized AI solutions in today's privacy-conscious landscape. By reading this book, you'll:Discover privacy-preserving techniques for LLMsLearn secure fine-tuning methodologies for personalizing LLMsUnderstand secure deployment strategies and protection against attacksExplore ethical considerations like bias and transparencyGain insights from real-world case studies across healthcare, finance, and more
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