Privacy Preserving Computing

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Algorithms for Data and Computation Privacy

Algorithms for Data and Computation Privacy
Author :
Publisher : Springer
Total Pages : 404
Release :
ISBN-10 : 303058898X
ISBN-13 : 9783030588984
Rating : 4/5 (984 Downloads)

Book Synopsis Algorithms for Data and Computation Privacy by : Alex X. Liu

Download or read book Algorithms for Data and Computation Privacy written by Alex X. Liu and published by Springer. This book was released on 2021-11-30 with total page 404 pages. Available in PDF, EPUB and Kindle. Book excerpt: This book introduces the state-of-the-art algorithms for data and computation privacy. It mainly focuses on searchable symmetric encryption algorithms and privacy preserving multi-party computation algorithms. This book also introduces algorithms for breaking privacy, and gives intuition on how to design algorithm to counter privacy attacks. Some well-designed differential privacy algorithms are also included in this book. Driven by lower cost, higher reliability, better performance, and faster deployment, data and computing services are increasingly outsourced to clouds. In this computing paradigm, one often has to store privacy sensitive data at parties, that cannot fully trust and perform privacy sensitive computation with parties that again cannot fully trust. For both scenarios, preserving data privacy and computation privacy is extremely important. After the Facebook–Cambridge Analytical data scandal and the implementation of the General Data Protection Regulation by European Union, users are becoming more privacy aware and more concerned with their privacy in this digital world. This book targets database engineers, cloud computing engineers and researchers working in this field. Advanced-level students studying computer science and electrical engineering will also find this book useful as a reference or secondary text.


Algorithms for Data and Computation Privacy Related Books

Algorithms for Data and Computation Privacy
Language: en
Pages: 404
Authors: Alex X. Liu
Categories: Computers
Type: BOOK - Published: 2021-11-30 - Publisher: Springer

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This book introduces the state-of-the-art algorithms for data and computation privacy. It mainly focuses on searchable symmetric encryption algorithms and priva
Privacy Preserving Data Mining
Language: en
Pages: 124
Authors: Jaideep Vaidya
Categories: Computers
Type: BOOK - Published: 2006-09-28 - Publisher: Springer Science & Business Media

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Privacy preserving data mining implies the "mining" of knowledge from distributed data without violating the privacy of the individual/corporations involved in
Privacy-Preserving Deep Learning
Language: en
Pages: 81
Authors: Kwangjo Kim
Categories: Computers
Type: BOOK - Published: 2021-07-22 - Publisher: Springer Nature

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This book discusses the state-of-the-art in privacy-preserving deep learning (PPDL), especially as a tool for machine learning as a service (MLaaS), which serve
Federal Statistics, Multiple Data Sources, and Privacy Protection
Language: en
Pages: 195
Authors: National Academies of Sciences, Engineering, and Medicine
Categories: Social Science
Type: BOOK - Published: 2018-01-27 - Publisher: National Academies Press

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The environment for obtaining information and providing statistical data for policy makers and the public has changed significantly in the past decade, raising
The Ethics of Cybersecurity
Language: en
Pages: 388
Authors: Markus Christen
Categories: Philosophy
Type: BOOK - Published: 2020-02-10 - Publisher: Springer Nature

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This open access book provides the first comprehensive collection of papers that provide an integrative view on cybersecurity. It discusses theories, problems a