Please use this identifier to cite or link to this item: https://doi.org/10.1109/TIFS.2019.2924201
Title: PrivateLink: Privacy-Preserving Integration and Sharing of Datasets
Authors: LIM HOON WEI 
POH GEONG SEN 
XU JIA 
VARSHA CHITTAWAR 
Keywords: Privacy-preserving data sharing
Data integration
Oblivious pseudorandom function
Issue Date: 20-Jun-2019
Publisher: IEEE
Citation: LIM HOON WEI, POH GEONG SEN, XU JIA, VARSHA CHITTAWAR (2019-06-20). PrivateLink: Privacy-Preserving Integration and Sharing of Datasets. IEEE TRANSACTIONS ON INFORMATION FORENSICS AND SECURITY 15 (2020) : 564-577. ScholarBank@NUS Repository. https://doi.org/10.1109/TIFS.2019.2924201
Abstract: In privacy-enhancing technology, it has been inevitably challenging to strike a reasonable balance between privacy, efficiency, and usability (utility). To this, we propose a highly practical solution for the privacy-preserving integration and sharing of datasets among a group of participants. At the heart of our solution is a new interactive protocol, PrivateLink. Through PrivateLink, each participant is able to randomize his/her dataset via an independent and untrusted third party, such that the resulting dataset can be merged with other randomized datasets contributed by other participants in a privacy-preserving manner. Our approach does not require key sharing among participants in order to integrate different datasets. This, in turn, leads to a user-friendly and scalable solution. Moreover, the correctness of a randomized dataset returned by the third party can be securely verified by the participant. We further demonstrate PrivateLink’s general utilities: using it to construct a structure-preserving data integration protocol. This is particularly useful for private, fine-grained integration of network traffic data. We state the security of our protocols under the well-established real-ideal simulation paradigm and demonstrate practicality by a prototype implementation on: 1) healthcare datasets and 2) DNS and NetFlow datasets.
Source Title: IEEE TRANSACTIONS ON INFORMATION FORENSICS AND SECURITY
URI: https://scholarbank.nus.edu.sg/handle/10635/168948
ISSN: 15566013
DOI: 10.1109/TIFS.2019.2924201
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