Federated Learning Systems

Federated Learning Systems Towards Next-Generation AI - Studies in Computational Intelligence

1st Edition 2021

Hardback (12 Jun 2021)

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Publisher's Synopsis

This book covers the research area from multiple viewpoints including bibliometric analysis, reviews, empirical analysis, platforms, and future applications. The centralized training of deep learning and machine learning models not only incurs a high communication cost of data transfer into the cloud systems but also raises the privacy protection concerns of data providers. This book aims at targeting researchers and practitioners to delve deep into core issues in federated learning research to transform next-generation artificial intelligence applications. Federated learning enables the distribution of the learning models across the devices and systems which perform initial training and report the updated model attributes to the centralized cloud servers for secure and privacy-preserving attribute aggregation and global model development. Federated learning benefits in terms of privacy, communication efficiency, data security, and contributors' control of their critical data.

Book information

ISBN: 9783030706036
Publisher: Springer International Publishing
Imprint: Springer
Pub date:
Edition: 1st Edition 2021
Language: English
Number of pages: 196
Weight: 489g
Height: 235mm
Width: 155mm
Spine width: 13mm