Differential Privacy and Applications

Nonfiction, Computers, Networking & Communications, Computer Security, Database Management, General Computing
Cover of the book Differential Privacy and Applications by Tianqing Zhu, Gang Li, Wanlei Zhou, Philip S. Yu, Springer International Publishing
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Author: Tianqing Zhu, Gang Li, Wanlei Zhou, Philip S. Yu ISBN: 9783319620046
Publisher: Springer International Publishing Publication: August 22, 2017
Imprint: Springer Language: English
Author: Tianqing Zhu, Gang Li, Wanlei Zhou, Philip S. Yu
ISBN: 9783319620046
Publisher: Springer International Publishing
Publication: August 22, 2017
Imprint: Springer
Language: English

This book focuses on differential privacy and its application with an emphasis on technical and application aspects. This book also presents the most recent research on differential privacy with a theory perspective. It provides an approachable strategy for researchers and engineers to implement differential privacy in real world applications.

Early chapters are focused on two major directions, differentially private data publishing and differentially private data analysis. Data publishing focuses on how to modify the original dataset or the queries with the guarantee of differential privacy. Privacy data analysis concentrates on how to modify the data analysis algorithm to satisfy differential privacy, while retaining a high mining accuracy. The authors also introduce several applications in real world applications, including recommender systems and location privacy

Advanced level students in computer science and engineering, as well as researchers and professionals working in privacy preserving, data mining, machine learning and data analysis will find this book useful as a reference. Engineers in database, network security, social networks and web services will also find this book useful.

View on Amazon View on AbeBooks View on Kobo View on B.Depository View on eBay View on Walmart

This book focuses on differential privacy and its application with an emphasis on technical and application aspects. This book also presents the most recent research on differential privacy with a theory perspective. It provides an approachable strategy for researchers and engineers to implement differential privacy in real world applications.

Early chapters are focused on two major directions, differentially private data publishing and differentially private data analysis. Data publishing focuses on how to modify the original dataset or the queries with the guarantee of differential privacy. Privacy data analysis concentrates on how to modify the data analysis algorithm to satisfy differential privacy, while retaining a high mining accuracy. The authors also introduce several applications in real world applications, including recommender systems and location privacy

Advanced level students in computer science and engineering, as well as researchers and professionals working in privacy preserving, data mining, machine learning and data analysis will find this book useful as a reference. Engineers in database, network security, social networks and web services will also find this book useful.

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