Building Recommender Systems Using Large Language Models
Springer
ISBN 978-3-032-01151-0
Standardpreis
Bibliografische Daten
Fachbuch
Buch. Softcover
2025
21 Farbabbildungen.
Umfang: 236 S.
Format (B x L): 15.5 x 23.5 cm
Gewicht: 365
Verlag: Springer
ISBN: 978-3-032-01151-0
Produktbeschreibung
Structured for progressive learning, the book covers foundational LLM concepts, the evolution from classic to LLM-powered recommendation systems, and advanced topics including end-to-end LLM recommenders, conversational agents, and multi-modal integration. Each chapter blends theoretical insights with practical coding exercises and real-world case studies, such as fashion recommendation and generative content creation. The final chapters discuss emerging challenges, including privacy, fairness, and future trends, offering a forward-looking roadmap for research and application. Readers with a basic understanding of machine learning and NLP will find this resource both accessible and invaluable for building effective, modern recommendation systems enhanced by LLMs.
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