Publication | Closed Access
Distance makes the types grow stronger
220
Citations
25
References
2010
Year
Unknown Venue
Privacy ProtectionEngineeringFitnessInformation SecurityNatural SelectionFunctional LanguageFormal VerificationData SciencePrivacy SystemPrivacy EngineeringData ManagementScaling AnalysisData PrivacyPrivate Information RetrievalComputer ScienceType SystemDifferential PrivacyPrivacyData SecurityCryptographyPattern FormationEvolutionary BiologyFormal MethodsEvolutionary TheoryMedicine
We want assurances that sensitive information will not be disclosed when aggregate data derived from a database is published. Differential privacy offers a strong statistical guarantee that the effect of the presence of any individual in a database will be negligible, even when an adversary has auxiliary knowledge. Much of the prior work in this area consists of proving algorithms to be differentially private one at a time; we propose to streamline this process with a functional language whose type system automatically guarantees differential privacy, allowing the programmer to write complex privacy-safe query programs in a flexible and compositional way.
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