Big Data Recommender Systems - Volume 1: Algorithms, Architectures, Big Data, Security and Trust

Автор: literator от 10-07-2020, 20:51, Коментариев: 0

Категория: КНИГИ » ПРОГРАММИРОВАНИЕ

Название: Big Data Recommender Systems - Volume 1: Algorithms, Architectures, Big Data, Security and Trust
Автор: Osman Khalid, Samee U. Khan, Albert Y. Zomaya
Издательство: The Institution of Engineering and Technology
Год: 2019
Страниц: 367
Язык: английский
Формат: pdf (true)
Размер: 10.1 MB

First designed to generate personalized recommendations to users in the 90s, recommender systems apply knowledge discovery techniques to users' data to suggest information, products, and services that best match their preferences. In recent decades, we have seen an exponential increase in the volumes of data, which has introduced many new challenges.

Divided into two volumes, this comprehensive set covers recent advances, challenges, novel solutions, and applications in big data recommender systems. Volume 1 contains 14 chapters addressing foundations, algorithms and architectures, approaches for big data, and trust and security measures. Volume 2 covers a broad range of application paradigms for recommender systems over 23 chapters.

Volume 1 is aimed to cover the recent advances, issues, novel solutions, and theoretical research on big data recommender systems. The book encompasses original scientific contributions in the form of theoretical foundations, comparative analysis, surveys, case studies, techniques, and tools for recommender systems. A specific focus is devoted to emerging trends and the industry needs associated with utilizing recommender systems. Some of the topics covered in the Volume 1 include benchmarking of recommendation algorithms using Map Reduce, social recommendations, hybrid approaches (HAs), deep learning-based techniques, unstructured big data recommendations, machine learning (ML)-based models, and geo-social recommendations. A special section is included to cover the security and privacy concerns, cyberattacks on recommender systems, and their defensive measures.

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