Correlated Privacy Mechanisms for Differentially Private Distributed Mean Estimation
Sajani Vithana, Viveck R. Cadambe, Flavio P. Calmon, Haewon Jeong

TL;DR
This paper introduces a new correlated privacy mechanism for distributed mean estimation that balances utility, privacy, and resilience, bridging the gap between local and secure aggregation-based differential privacy methods.
Contribution
It proposes a generalized framework for DP distributed mean estimation and introduces CorDP-DME, a novel mechanism based on correlated Gaussian noise, with theoretical utility and resilience guarantees.
Findings
CorDP-DME improves utility over LDP in mean estimation.
CorDP-DME maintains robustness against dropouts and collusion.
Theoretical analysis confirms favorable privacy-utility trade-offs.
Abstract
Differentially private distributed mean estimation (DP-DME) is a fundamental building block in privacy-preserving federated learning, where a central server estimates the mean of -dimensional vectors held by users while ensuring -DP. Local differential privacy (LDP) and distributed DP with secure aggregation (SA) are the most common notions of DP used in DP-DME settings with an untrusted server. LDP provides strong resilience to dropouts, colluding users, and adversarial attacks, but suffers from poor utility. In contrast, SA-based DP-DME achieves an utility gain over LDP in DME, but requires increased communication and computation overheads and complex multi-round protocols to handle dropouts and attacks. In this work, we present a generalized framework for DP-DME, that captures LDP and SA-based mechanisms as extreme cases. Our framework provides a…
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Taxonomy
TopicsPrivacy-Preserving Technologies in Data · Probability and Risk Models · Distributed Sensor Networks and Detection Algorithms
MethodsDropout
