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Technical Perspective on 'R2T: Instance-optimal Truncation for Differentially Private Query Evaluation with Foreign Keys

Published: 08 June 2023 Publication History

Abstract

Increased use of data to inform decision making has brought with it a rising awareness of the importance of privacy, and the need for appropriate mitigations to be put in place to protect the interests of individuals whose data is being processed. From the demographic statistics that are produced by national censuses, to the complex predictive models built by "big tech" companies, data is the fuel that powers these applications. A majority of such uses rely on data that is derived from the properties and actions of individual people. This data is therefore considered sensitive, and in need of protections to prevent inappropriate use or disclosure. Some protections come from enforcing policies, access control, and contractual agreements. But in addition, we also seek technical interventions: definitions and algorithms that can be applied by computer systems in order to protect the private information while still enabling the intended use.

References

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M. Abadi, A. Chu, I. J. Goodfellow, H. B. McMahan, I. Mironov, K. Talwar, and L. Zhang. Deep learning with differential privacy. In ACM CCS, 2016.
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C. Dwork and A. Roth. The algorithmic foundations of differential privacy. Found. Trends Theor. Comput. Sci., 9(3--4):211--407, 2014.
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F. McSherry. Privacy integrated queries: an extensible platform for privacy-preserving data analysis. In ACM SIGMOD, pages 19--30, 2009.
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P. Mohan, A. Thakurta, E. Shi, D. Song, and D. E. Culler. GUPT: privacy preserving data analysis made easy. In ACM SIGMOD, pages 349--360, 2012.

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Published In

cover image ACM SIGMOD Record
ACM SIGMOD Record  Volume 52, Issue 1
March 2023
118 pages
ISSN:0163-5808
DOI:10.1145/3604437
Issue’s Table of Contents
Permission to make digital or hard copies of part or all of this work for personal or classroom use is granted without fee provided that copies are not made or distributed for profit or commercial advantage and that copies bear this notice and the full citation on the first page. Copyrights for third-party components of this work must be honored. For all other uses, contact the Owner/Author.

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Association for Computing Machinery

New York, NY, United States

Publication History

Published: 08 June 2023
Published in SIGMOD Volume 52, Issue 1

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