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Practical data privacy : enhancing privacy and security in data / Katharine Jarmul.

By: Material type: TextTextPublisher: Sebastopol, CA : O'Reilly Media, 2023Edition: First editionDescription: xxviii, 315 pages : illustrations ; 24 cmContent type:
  • text
Media type:
  • unmediated
Carrier type:
  • volume
ISBN:
  • 1098129466
  • 9781098129460
Subject(s): DDC classification:
  • 005.8 23
LOC classification:
  • QA76.9.A25 J375 2023
Contents:
Data governance and simple privacy approaches -- Anonymization -- Building privacy into data pipelines -- Privacy attacks -- Privacy-aware machine learning and data science -- Federated learning and data science -- Encrypted computation -- Navigating the legal side of privacy -- Privacy and practicality considerations -- Frequently asked questions (and their answers!) -- Go forth and engineer privacy!
Summary: Between major privacy regulations like the GDPR and CCPA and expensive and notorious data breaches, there has never been so much pressure to ensure data privacy. Unfortunately, integrating privacy into data systems is still complicated. This essential guide will give you a fundamental understanding of modern privacy building blocks, like differential privacy, federated learning, and encrypted computation. Based on hard-won lessons, this book provides solid advice and best practices for integrating breakthrough privacy-enhancing technologies into production systems.
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Holdings
Item type Current library Call number Status Date due Barcode
Books Books RLKU Library & Information Resource Center 005 JAR (Browse shelf(Opens below)) Available 14235
Books Books RLKU Library & Information Resource Center 005 JAR (Browse shelf(Opens below)) Available 14236
Books Books RLKU Library & Information Resource Center 005 JAR (Browse shelf(Opens below)) Available 14237
Books Books RLKU Library & Information Resource Center 005 JAR (Browse shelf(Opens below)) Available 14238
Books Books RLKU Library & Information Resource Center 005 JAR (Browse shelf(Opens below)) Available 14239
Books Books RLKU Library & Information Resource Center 005 JAR (Browse shelf(Opens below)) Available 14240

Includes index.

Data governance and simple privacy approaches -- Anonymization -- Building privacy into data pipelines -- Privacy attacks -- Privacy-aware machine learning and data science -- Federated learning and data science -- Encrypted computation -- Navigating the legal side of privacy -- Privacy and practicality considerations -- Frequently asked questions (and their answers!) -- Go forth and engineer privacy!

Between major privacy regulations like the GDPR and CCPA and expensive and notorious data breaches, there has never been so much pressure to ensure data privacy. Unfortunately, integrating privacy into data systems is still complicated. This essential guide will give you a fundamental understanding of modern privacy building blocks, like differential privacy, federated learning, and encrypted computation. Based on hard-won lessons, this book provides solid advice and best practices for integrating breakthrough privacy-enhancing technologies into production systems.

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