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151,29 €
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Privacy-Preserving Machine Learning
Privacy-Preserving Machine Learning
136,16
151,29 €
  • We will send in 10–14 business days.
This book provides a thorough overview of the evolution of privacy-preserving machine learning schemes over the last ten years, after discussing the importance of privacy-preserving techniques. In response to the diversity of Internet services, data services based on machine learning are now available for various applications, including risk assessment and image recognition. In light of open access to datasets and not fully trusted environments, machine learning-based applications face enormous…
151.29
  • Publisher:
  • ISBN-10: 981169138X
  • ISBN-13: 9789811691386
  • Format: 15.6 x 23.4 x 0.5 cm, minkšti viršeliai
  • Language: English
  • SAVE -10% with code: EXTRA

Privacy-Preserving Machine Learning (e-book) (used book) | bookbook.eu

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This book provides a thorough overview of the evolution of privacy-preserving machine learning schemes over the last ten years, after discussing the importance of privacy-preserving techniques. In response to the diversity of Internet services, data services based on machine learning are now available for various applications, including risk assessment and image recognition. In light of open access to datasets and not fully trusted environments, machine learning-based applications face enormous security and privacy risks. In turn, it presents studies conducted to address privacy issues and a series of proposed solutions for ensuring privacy protection in machine learning tasks involving multiple parties. In closing, the book reviews state-of-the-art privacy-preserving techniques and examines the security threats they face.

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  • Author: Jin Li
  • Publisher:
  • ISBN-10: 981169138X
  • ISBN-13: 9789811691386
  • Format: 15.6 x 23.4 x 0.5 cm, minkšti viršeliai
  • Language: English English

This book provides a thorough overview of the evolution of privacy-preserving machine learning schemes over the last ten years, after discussing the importance of privacy-preserving techniques. In response to the diversity of Internet services, data services based on machine learning are now available for various applications, including risk assessment and image recognition. In light of open access to datasets and not fully trusted environments, machine learning-based applications face enormous security and privacy risks. In turn, it presents studies conducted to address privacy issues and a series of proposed solutions for ensuring privacy protection in machine learning tasks involving multiple parties. In closing, the book reviews state-of-the-art privacy-preserving techniques and examines the security threats they face.

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