Publication | Closed Access
No free lunch in data privacy
617
Citations
24
References
2011
Year
Unknown Venue
Privacy ProtectionEngineeringInformation SecurityPopularized ClaimsPrivacy ProtectionsData ScienceData AnonymizationManagementPrivacy SystemPrivacy EngineeringData IntegrationData ManagementStatisticsFree LunchPrivacy ServiceData PrivacyComputer ScienceDifferential PrivacyPrivacyData SecurityCryptographyData Privacy Law
Differential privacy is a powerful tool for providing privacy-preserving noisy query answers over statistical databases. It guarantees that the distribution of noisy query answers changes very little with the addition or deletion of any tuple. It is frequently accompanied by popularized claims that it provides privacy without any assumptions about the data and that it protects against attackers who know all but one record. In this paper we critically analyze the privacy protections offered by differential privacy.
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