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Goodness-of-Fit Testing for Hölder Continuous Densities Under Local Differential Privacy

  • ENSAI Ecole Nationale de la Statistique et de l’Analyse de l’Information
  • University of Warwick

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Résumé

We address the problem of goodness-of-fit testing for Hölder continuous densities under local differential privacy constraints. We study minimax separation rates when only non-interactive privacy mechanisms are allowed to be used and when both non-interactive and sequentially interactive can be used for privatisation. We propose privacy mechanisms and associated testing procedures whose analysis enables us to obtain upper bounds on the minimax rates. These results are complemented with lower bounds. By comparing these bounds, we show that the proposed privacy mechanisms and tests are optimal up to at most a logarithmic factor for several choices of f0 including densities from uniform, normal, Beta, Cauchy, Pareto, exponential distributions. In particular, we observe that the results are deteriorated in the private setting compared to the non-private one. Moreover, we show that sequentially interactive mechanisms improve upon the results obtained when considering only non-interactive privacy mechanisms.

langue originaleAnglais
titreFoundations of Modern Statistics - Festschrift in Honor of Vladimir Spokoiny
rédacteurs en chefDenis Belomestny, Cristina Butucea, Enno Mammen, Eric Moulines, Markus Reiß, Vladimir V. Ulyanov
EditeurSpringer
Pages53-119
Nombre de pages67
ISBN (imprimé)9783031301131
Les DOIs
étatPublié - 1 janv. 2023
EvénementInternational conference on Foundations of Modern Statistics, FMS 2019 - Berlin, Allemagne
Durée: 6 nov. 20198 nov. 2019

Série de publications

NomSpringer Proceedings in Mathematics and Statistics
Volume425
ISSN (imprimé)2194-1009
ISSN (Electronique)2194-1017

Une conférence

Une conférenceInternational conference on Foundations of Modern Statistics, FMS 2019
Pays/TerritoireAllemagne
La villeBerlin
période6/11/198/11/19

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