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Federated Learning for Smart Communication using IoT Application

2026, Pocket, Engelsk

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The effectiveness of federated learning in high-performance information systems and informatics-based solutions for addressing current information support requirements is demonstrated in this book. To address heterogeneity challenges in Internet of Things (IoT) contexts, Federated Learning for Smart Communication using IoT Application analyses the development of personalized federated learning algorithms capable of mitigating the detrimental consequences of heterogeneity in several dimensions. It includes case studies of IoT-based human activity recognition to show the efficacy of personalized federated learning for intelligent IoT applications. Features:Demonstrates how federated learning offers a novel approach to building personalized models from data without invading users’ privacyDescribes how federated learning may assist in understanding and learning from user behavior in IoT applications while safeguarding user privacyPresents a detailed analysis of current research on federated learning, providing the reader with a broad understanding of the areaAnalyses the need for a personalized federated learning framework in cloud-edge and wireless-edge architecture for intelligent IoT applicationsComprises real-life case illustrations and examples to help consolidate understanding of topics presented in each chapterThis book is recommended for anyone interested in federated learning-based intelligent algorithms for smart communications.

Produktegenskaper

  • Bidragsyter

    Gaurav Agarwal (Redaktør) ; Vishal Jain (Redaktør) ; Rani Astya (Redaktør) ; Parma Nand (Redaktør) ; Neetesh Saxena (Redaktør) ; Kaushal Kishor (Redaktør)
  • Forlag/utgiver

    Chapman & Hall/CRC
  • Format

    Pocket
  • Språk

    Engelsk
  • Utgivelsesår

    2026
  • Antall sider

    260
  • Serienavn

    Chapman & Hall/CRC Cyber-Physical Systems
  • Utgivelsesdato

    19.07.2026
  • Varenummer

    9781032788135

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