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Studies in Computational Intelligence

Studies in Computational Intelligence: Towards Privacy-Preserving Distributed AI

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Studies in Computational Intelligence: Towards Privacy-Preserving Distributed AI

Rehman, Muhammad Habib ur; Gaber, Mohamed Medhat

This book dives deep into both industry implementations and cutting-edge research driving the Federated Learning (FL) landscape forward. FL enables decentralized model training, preserves data privacy, and enhances security without relying on centralized datasets. Industry pioneers like NVIDIA have spearheaded the development of general-purpose FL platforms, revolutionizing how companies harness distributed data. Alternately, for medical AI, FL platforms, such as FedBioMed, enable collaborative model development across healthcare institutions to unlock massive value.

Research advances in PETs highlight ongoing efforts to ensure that FL is robust, secure, and scalable. Looking ahead, federated learning could transform public health by enabling global collaboration on disease prevention while safeguarding individual privacy. From recommendation systems to cybersecurity applications, FL is poised to reshape multiple domains, driving a future where collaboration and privacy coexist seamlessly.

Details

Published by: Springer

Publication Date: 2025-04-27

Format: Hardcover

ISBN-13: 9783031788406

DOI: 10.1007/978-3-031-78841-3

Dimensions: 235cm x155cm

Pages: 165

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