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Local Private Hypothesis Testing: Chi-Square Tests

Authors :
Gaboardi, Marco
Rogers, Ryan
Publication Year :
2017

Abstract

The local model for differential privacy is emerging as the reference model for practical applications collecting and sharing sensitive information while satisfying strong privacy guarantees. In the local model, there is no trusted entity which is allowed to have each individual's raw data as is assumed in the traditional curator model for differential privacy. So, individuals' data are usually perturbed before sharing them. We explore the design of private hypothesis tests in the local model, where each data entry is perturbed to ensure the privacy of each participant. Specifically, we analyze locally private chi-square tests for goodness of fit and independence testing, which have been studied in the traditional, curator model for differential privacy.

Details

Database :
arXiv
Publication Type :
Report
Accession number :
edsarx.1709.07155
Document Type :
Working Paper