Security and Resilience in Distributed Machine Learning

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This book offers a comprehensive exploration of federated learning (FL), a novel approach to decentralized, privacy-preserving machine learning. This book delves into the resilience and security challenges inherent to FL, such as model poisoning and malicious attacks, that jeopardize system integrity. Through cutting-edge research and practical insights, the book introduces defense mechanisms like...
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This book offers a comprehensive exploration of federated learning (FL), a novel approach to decentralized, privacy-preserving machine learning. This book delves into the resilience and security challenges inherent to FL, such as model poisoning and malicious attacks, that jeopardize system integrity. Through cutting-edge research and practical insights, the book introduces defense mechanisms like...
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  • Formats: pdf
  • ISBN: 9783032239594
  • Publication Date: 16 May 2026
  • Publisher: Springer Nature Switzerland
  • Product language: English
  • Drm Setting: DRM