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Most Influential SIGMOD 2018 Paper · 2026-03 edition

Privacy At Scale: Local Differential Privacy In Practice

Graham Cormode, Somesh Jha, Tejas Kulkarni, Ninghui Li, Divesh Srivastava, Tianhao Wang

Venue
ACM SIGMOD Conference (SIGMOD) 2018
Recognition
Most Influential SIGMOD 2018 Paper (Rank No. 4)
Edition
2026-03
Impact factor
5
Certificate ID
ceb35576cf948119

Abstract

Local differential privacy (LDP), where users randomly perturb their inputs to provide plausible deniability of their data without the need for a trusted party, has been adopted recently by several major technology organizations, including Google, Apple and Microsoft. This tutorial aims to introduce the key technical underpinnings of these deployed systems, to survey current research that addresses related problems within the LDP model, and to identify relevant open problems and research directions for the community.

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