Federated Learning for Smart Mobility
Towards Secure, Efficient, and Sustainable Transportation system
Springer
ISBN 9789819561599
Standardpreis
Bibliografische Daten
Fachbuch
Buch. Softcover
2026
25 s/w-Abbildungen.
Umfang: xii, 100 S.
Format (B x L): 15,5 x 23,5 cm
Verlag: Springer
ISBN: 9789819561599
Weiterführende bibliografische Daten
Das Werk ist Teil der Reihe: SpringerBriefs in Computer Science
Produktbeschreibung
This SpringerBrief provides a concise yet comprehensive overview of FL’s role in building next-generation smart mobility systems. It covers the fundamentals of FL and IoT infrastructures, introduces emerging applications in autonomous driving, traffic prediction, and vehicular networks, and presents selected case studies from academia and industry. The book also discusses key technical challenges—including data heterogeneity, system scalability, and privacy protection—and highlights future directions integrating FL with edge intelligence, 6G communication, and blockchain technologies.
Written by active researchers in the fields of federated learning, wireless communication, and intelligent transportation, this book serves as a valuable reference for scientists, graduate students, and professionals in AI, IoT, and smart city development. It bridges theoretical advances with practical insights, guiding readers toward secure, efficient, and sustainable mobility solutions.
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