Personalized Privacy Protection in Big Data

£54.99

Personalized Privacy Protection in Big Data

Information theory Coding theory and cryptology Databases Data mining Computer security Privacy and data protection Expert systems / knowledge-based systems

Authors: Youyang Qu, Mohammad Reza Nosouhi, Lei Cui, Shui Yu

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Collection: Data Analytics

Language: English

Published by: Springer

Published on: 23rd July 2021

Format: LCP-protected ePub

Size: 14 Mb

ISBN: 9789811637506


Overview

This book presents the data privacy protection which has been extensively applied in our current era of big data. However, research into big data privacy is still in its infancy. Given the fact that existing protection methods can result in low data utility and unbalanced trade-offs, personalized privacy protection has become a rapidly expanding research topic.

Content and Approach

In this book, the authors explore emerging threats and existing privacy protection methods, and discuss in detail both the advantages and disadvantages of personalized privacy protection. Traditional methods, such as differential privacy and cryptography, are discussed using a comparative and intersectional approach, and are contrasted with emerging methods like federated learning and generative adversarial nets.

Applications and Audience

The advances discussed cover various applications, e.g. cyber-physical systems, social networks, and location-based services. Given its scope, the book is of interest to scientists, policy-makers, researchers, and postgraduates alike.

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