MVG Mechanism: Differential Privacy under Matrix-Valued Query

被引:20
作者
Chanyaswad, Thee [1 ,2 ]
Dytso, Alex [1 ]
Poor, H. Vincent [1 ]
Mittal, Prateek [1 ]
机构
[1] Princeton Univ, Princeton, NJ 08544 USA
[2] KBTG Machine Learning Team, Nonthaburi, Thailand
来源
PROCEEDINGS OF THE 2018 ACM SIGSAC CONFERENCE ON COMPUTER AND COMMUNICATIONS SECURITY (CCS'18) | 2018年
基金
美国国家科学基金会;
关键词
differential privacy; matrix-valued query; matrix-variate Gaussian; directional noise; MVG mechanism;
D O I
10.1145/3243734.3243750
中图分类号
TP301 [理论、方法];
学科分类号
081202 ;
摘要
Differential privacy mechanism design has traditionally been tailored for a scalar-valued query function. Although many mechanisms such as the Laplace and Gaussian mechanisms can be extended to a matrix-valued query function by adding i.i.d. noise to each element of the matrix, this method is often suboptimal as it forfeits an opportunity to exploit the structural characteristics typically associated with matrix analysis. To address this challenge, we propose a novel differential privacy mechanism called the Matrix-Variate Gaussian (MVG) mechanism, which adds a matrix-valued noise drawn from a matrix-variate Gaussian distribution, andwe rigorously prove that the MVG mechanism preserves (is an element of,delta)-differential privacy. Furthermore, we introduce the concept of directional noise made possible by the design of the MVG mechanism. Directional noise allows the impact of the noise on the utility of the matrixvalued query function to be moderated. Finally, we experimentally demonstrate the performance of our mechanism using three matrix-valued queries on three privacy-sensitive datasets. We find that the MVG mechanism can notably outperforms four previous state-of-the-art approaches, and provides comparable utility to the non-private baseline.
引用
收藏
页码:230 / 246
页数:17
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