Federated Learning

Federated Learning

AngličtinaMěkká vazbaTisk na objednávku
Jin, Yaochu
Springer Verlag, Singapore
EAN: 9789811970856
Tisk na objednávku
Předpokládané dodání v pondělí, 27. ledna 2025
4 213 Kč
Běžná cena: 4 681 Kč
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Podrobné informace

This book introduces readers to the fundamentals of and recent advances in federated learning, focusing on reducing communication costs, improving computational efficiency, and enhancing the security level. Federated learning is a distributed machine learning paradigm which enables model training on a large body of decentralized data. Its goal is to make full use of data across organizations or devices while meeting regulatory, privacy, and security requirements.

The book starts with a self-contained introduction to artificial neural networks, deep learning models, supervised learning algorithms, evolutionary algorithms, and evolutionary learning. Concise information is then presented on multi-party secure computation, differential privacy, and homomorphic encryption, followed by a detailed description of federated learning. In turn, the book addresses the latest advances in federate learning research, especially from the perspectives of communication efficiency, evolutionarylearning, and privacy preservation.

The book is particularly well suited for graduate students, academic researchers, and industrial practitioners in the field of machine learning and artificial intelligence. It can also be used as a self-learning resource for readers with a science or engineering background, or as a reference text for graduate courses.       

EAN 9789811970856
ISBN 9811970858
Typ produktu Měkká vazba
Vydavatel Springer Verlag, Singapore
Datum vydání 1. prosince 2023
Stránky 218
Jazyk English
Rozměry 235 x 155
Země Singapore
Autoři Chen, Yang; Jin, Yaochu; Xu, Jinjin; Zhu, Hangyu
Edice 1st ed. 2023
Série Machine Learning: Foundations, Methodologies, and Applications