Artificial Intelligence Using Federated Learning

£52.99

Artificial Intelligence Using Federated Learning

Fundamentals, Challenges, and Applications

Coding theory and cryptology Engineering: general Production and industrial engineering Electrical engineering Automatic control engineering Digital and information technologies: Legal aspects Data mining Privacy and data protection Systems analysis and design Computer architecture and logic design Artificial intelligence

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Collection: Intelligent Manufacturing and Industrial Engineering

Language: English

Published by: CRC Press

Published on: 30th December 2024

Format: LCP-protected ePub

ISBN: 9781040266717


Federated Machine Learning

Federated machine learning is a novel approach to combining distributed machine learning, cryptography, security, and incentive mechanism design. It allows organizations to keep sensitive and private data on users or customers decentralized and secure, helping them comply with stringent data protection regulations like GDPR and CCPA.

Artificial Intelligence Using Federated Learning

Artificial Intelligence Using Federated Learning: Fundamentals, Challenges, and Applications enables training AI models on a large number of decentralized devices or servers, making it a scalable and efficient solution. It also allows organizations to create more versatile AI models by training them on data from diverse sources or domains. This approach can unlock innovative use cases in fields like healthcare, finance, and IoT, where data privacy is paramount.

Target Audience

The book is designed for researchers working in Intelligent Federated Learning and its related applications, as well as technology development, and is also of interest to academicians, data scientists, industrial professionals, researchers, and students.

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