Privacy Preservation in Distributed Systems

£129.99

Privacy Preservation in Distributed Systems

Algorithms and Applications

Communications engineering / telecommunications Artificial intelligence Machine learning

Authors: Guanglin Zhang, Ping Zhao, Anqi Zhang

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Collection: Signals and Communication Technology

Language: English

Published by: Springer

Published on: 30th May 2024

Format: LCP-protected ePub

ISBN: 9783031580130


Privacy Issues in Data Aggregation

This book provides a discussion of privacy in the following three parts: Privacy Issues in Data Aggregation; Privacy Issues in Indoor Localization; and Privacy-Preserving Offloading in MEC. In Part 1, the book proposes LocMIA, which shifts from membership inference attacks against aggregated location data to a binary classification problem, synthesizing privacy preserving traces by enhancing the plausibility of synthetic traces with social networks.

Privacy Issues in Indoor Localization

In Part 2, the book highlights Indoor Localization to propose a lightweight scheme that can protect both location privacy and data privacy of LS.

Privacy-Preserving Offloading in MEC

In Part 3, it investigates the tradeoff between computation rate and privacy protection for task offloading a multi-user MEC system, and verifies that the proposed load balancing strategy improves the computing service capability of the MEC system. In summary, all the algorithms discussed in this book are of great significance in demonstrating the importance of privacy.

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