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On the (Im)Possibility of Estimating Various Notions of Differential Privacy (short paper)

  • University of Rome
  • Ecole Normale Supérieure de Lyon
  • INRIA
  • L2S, CNRS, Univ Paris-Sud

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1 Citation (Scopus)

Résumé

We analyze to what extent final users can infer information about the level of protection of their data when the data obfuscation mechanism is a priori unknown to them (the so-called;black-box; scenario). In particular, we delve into the investigation of two notions of local differential privacy (LDP), namely -LDP and Rényi LDP. On one hand, we prove that, without any assumption on the underlying distributions, it is not possible to have an algorithm able to infer the level of data protection with provable guarantees. On the other hand, we demonstrate that, under reasonable assumptions (namely, Lipschitzness of the involved densities on a closed interval), such guarantees exist and can be achieved by a simple histogram-based estimator.

langue originaleAnglais
Pages (de - à)219-224
Nombre de pages6
journalCEUR Workshop Proceedings
Volume3587
étatPublié - 1 janv. 2023
Modification externeOui
Evénement24th Italian Conference on Theoretical Computer Science, ICTCS 2023 - Palermo, Italie
Durée: 13 sept. 202315 sept. 2023

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