Correcting Finite Sampling Issues in Entropy l-diversity View Full Text


Ontology type: schema:Chapter     


Chapter Info

DATE

2016

AUTHORS

Sebastian Stammler , Stefan Katzenbeisser , Kay Hamacher

ABSTRACT

In statistical disclosure control (SDC) anonymized versions of a database table are obtained via generalization and suppression to reduce de-anonymization attacks, ideally with minimal utility loss. This amounts to an optimization problem in which a measure of remaining diversity needs to be improved. The feasible solutions are those that fulfill some privacy criteria, e.g., the entropy l-diversity. In the statistics it is known that the naive computation of an entropy via the Shannon formula systematically underestimates the (real) entropy and thus influences the resulting equivalence classes. In this contribution we implement an asymptotically unbiased estimator for the Shannon entropy and apply it to three test databases. Our results show previously performed systematic miscalculations; we show that by an unbiased estimator one can increase the utility of the data without compromising privacy. More... »

PAGES

135-146

References to SciGraph publications

Book

TITLE

Privacy in Statistical Databases

ISBN

978-3-319-45380-4
978-3-319-45381-1

Author Affiliations

Identifiers

URI

http://scigraph.springernature.com/pub.10.1007/978-3-319-45381-1_11

DOI

http://dx.doi.org/10.1007/978-3-319-45381-1_11

DIMENSIONS

https://app.dimensions.ai/details/publication/pub.1017710561


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