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Grote: Group Testing for Privacy-Preserving Face Identification

Alberto Ibarrondo, Hervé Chabanne, Vincent Despiegel, Melek Önen

202315 citationsDOIOpen Access PDF

Abstract

This paper proposes a novel method to perform privacy-preserving face identification based on the notion of group testing, and applies it to a solution using the Cheon-Kim-Kim-Song (CKKS) homomorphic encryption scheme. Securely computing the closest reference template to a given live template requires K comparisons, as many as there are identities in a biometric database. Our solution, named Grote, replaces element-wise testing by group testing to drastically reduce the number of such costly, non-linear operations in the encrypted domain from K to up to 2\sqrtK . More specifically, we approximate the max of the coordinates of a large vector by raising to the α-th power and cumulative sum in a 2D layout, incurring a small impact in the accuracy of the system while greatly speeding up its execution. We implement Grote and evaluate its performance.

Topics & Concepts

Homomorphic encryptionComputer scienceEncryptionIdentification (biology)Face (sociological concept)BiometricsGroup (periodic table)Scheme (mathematics)Theoretical computer scienceDomain (mathematical analysis)Facial recognition systemTest vectorComputer engineeringAlgorithmComputer securityArtificial intelligenceFeature extractionMathematicsSocial scienceBotanyOrganic chemistryChemistryBiologyMathematical analysisTest setSociologySecurity in Wireless Sensor NetworksCryptography and Data SecuritySARS-CoV-2 detection and testing
Grote: Group Testing for Privacy-Preserving Face Identification | Litcius