Recommender Systems: A Multi-Disciplinary Approach presents a multi-disciplinary approach for the development of recommender systems. It explains different types of pertinent algorithms with their comparative analysis and their role for different applications. This book explains the big data behind recommender systems, the marketing benefits, how to make good decision support systems, the role of machine learning and artificial networks, and the statistical models with two case studies. It shows how to design attack resistant and trust-centric recommender systems for applications dealing with sensitive data. Features of this book: Identifies and describes recommender systems for practical uses Describes how to design, train, and evaluate a recommendation algorithm Explains migration from a recommendation model to a live system with users Describes utilization of the data collected from a recommender system to understand the user preferences Addresses the security aspects and ways to deal with possible attacks to build a robust system This book is aimed at researchers and graduate students in computer science, electronics and communication engineering, mathematical science, and data science.
Sujoy Datta & Pushpendu Kar
Recommender Systems [PDF ebook]
A Multi-Disciplinary Approach
Recommender Systems [PDF ebook]
A Multi-Disciplinary Approach
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Limba Engleză ● Format PDF ● Pagini 278 ● ISBN 9781000886269 ● Editor Sujoy Datta & Pushpendu Kar ● Editura CRC Press ● Publicat 2023 ● Descărcabil 3 ori ● Valută EUR ● ID 8975856 ● Protecție împotriva copiilor Adobe DRM
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