Secure and Efficient Multi-Party Directory Publication for Privacy-Preserving Data Sharing

被引:2
|
作者
Areekijseree, Katchaguy [1 ]
Tang, Yuzhe [1 ]
Chen, Ju [1 ]
Wang, Shuang [2 ]
Iyengar, Arun [3 ]
Palanisamy, Balaji [4 ]
机构
[1] Syracuse Univ, Dept EECS, Syracuse, NY 13244 USA
[2] Univ Calif San Diego, Dept Biomed Informat DBMI, San Diego, CA USA
[3] IBM TJ Watson Res Ctr, Yorktown Hts, NY USA
[4] Univ Pittsburgh, Sch Comp & Informat, Pittsburgh, PA USA
关键词
NOISE;
D O I
10.1007/978-3-030-01701-9_5
中图分类号
TP [自动化技术、计算机技术];
学科分类号
0812 ;
摘要
In the era of big-data, personal data is produced, collected and consumed at different sites. A public directory connects data producers and consumers over the Internet and should be constructed securely given the privacy-sensitive nature of personal data. This work tackles the research problem of distributed, privacy-preserving directory publication, with strong security and practical efficiency. For proven security, we follow the protocols of secure multiparty computations (MPC). For efficiency, we propose a pre-computation framework that minimizes the private computation and conducts aggressive pre-computation on public data. Several pre-computation policies are proposed with varying degrees of aggressiveness. For systems-level efficiency, the pre-computation is implemented with data parallelism on general-purpose graphics processing units (GPGPU).We apply the proposed scheme to real health-care scenarios for constructing patient-locator services in emerging Health Information Exchange (or HIE) networks. We conduct extensive performance studies on real datasets and with an implementation based on open-source MPC software. With experiments on local and geo-distributed settings, our performance results show that the proposed pre-computation achieves a speedup of more than an order of magnitude without security loss.
引用
收藏
页码:71 / 94
页数:24
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