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Differentially Private Aggregation via Imperfect Shuffling

Authors :
Ghazi, Badih
Kumar, Ravi
Manurangsi, Pasin
Nelson, Jelani
Zhou, Samson
Ghazi, Badih
Kumar, Ravi
Manurangsi, Pasin
Nelson, Jelani
Zhou, Samson
Publication Year :
2023

Abstract

In this paper, we introduce the imperfect shuffle differential privacy model, where messages sent from users are shuffled in an almost uniform manner before being observed by a curator for private aggregation. We then consider the private summation problem. We show that the standard split-and-mix protocol by Ishai et. al. [FOCS 2006] can be adapted to achieve near-optimal utility bounds in the imperfect shuffle model. Specifically, we show that surprisingly, there is no additional error overhead necessary in the imperfect shuffle model.

Details

Database :
OAIster
Publication Type :
Electronic Resource
Accession number :
edsoai.on1438475104
Document Type :
Electronic Resource