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      Differential Privacy

      Differential Privacy

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      Language:
      Engleza
      Publishing Date:
      2025
      Publisher:
      Cover Type:
      Paperback
      Page Count:
      256
      ISBN:
      9780262551656
      Dimensions: l: 13cm | H: 18cm | 368g
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      11500
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      Publisher's Synopsis

      A robust yet accessible introduction to the idea, history, and key applications of differential privacy-the gold standard of algorithmic privacy protection. Differential privacy (DP) is an increasingly popular, though controversial, approach to protecting personal data.

      DP protects confidential data by introducing carefully calibrated random numbers, called statistical noise, when the data is used. Google, Apple, and Microsoft have all integrated the technology into their software, and the US Census Bureau used DP to protect data collected in the 2020 census. In this book, Simson Garfinkel presents the underlying ideas of DP, and helps explain why DP is needed in today's information-rich environment, why it was used as the privacy protection mechanism for the 2020 census, and why it is so controversial in some communities.

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