Adversarial AI and Data Poisoning in Federated Learning, (Hardcover)

★★★★★ 4.6 54 reviews

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Management number 238743055 Release Date 2026/07/11 List Price US$110.00 Model Number 238743055
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With the growing security challenges at the intersection of distributed machine learning and malicious interference, there are growing challenges that federated learning can address. Federated learning enables collaborative model training across devices while preserving data privacy. However, this decentralized nature also opens new vulnerabilities, particularly to adversarial attacks and data poisoning, where malicious actors can inject corrupted data or manipulate updates to degrade models or extract sensitive information. As the adoption of federated learning accelerates, understanding and these threats are essential to ensure model integrity and resilience in real-world situations. Adversarial AI and Data Poisoning in Federated Learning provides a comprehensive examination of emerging threats, attack vectors, and defense mechanisms within federal learning systems. This book highlights vulnerabilities of federated learning architectures, explores strategies for detection and mitigation of adversarial threats, and presents real-world case studies.

  • Adversarial AI and Data Poisoning in Federated Learning, (Hardcover)
  • Author: Igi Global Scientific Publishing
  • ISBN: 9798337362243
  • Format: Hardcover
  • Publication Date: 2026-02-20
  • Page Count: 400
Book format Hardcover
Fiction/nonfiction Non-Fiction
Genre Computing & Internet
Publication date February, 2026
Pages 400
Subgenre Artificial Intelligence
Series title No Series
Number in series 0
Edition 1
Publisher IGI Global
Original languages English
Language English
Is collectible N
Editor Vipul Jain, Shikha Khullar, Manju Lata Joshi
Binding type Case Binding
Recording time 0 min
Retail packaging Single Piece
Assembled product dimensions (l x w x h) 8.50 x 1.25 x 11.00 in
Assembled product weight 3.54 lb
Bisac subject heading Computers

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