DRAPE: optimizing private data release under adjustable privacy-utility equilibrium

被引:0
|
作者
Qingyue Xiong
Qiujun Lan
Jiaqi Ma
Huiling Zhou
Gang Li
Zheng Yang
机构
[1] Hunan University,School of Business
[2] Deakin University,School of Information Technology
[3] Hunan Tianhe Blockchain Research Institute,Tianheguoyun Technology Co., Ltd.
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关键词
Data release; Privacy preserving; Data utility; Variable correlation;
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学科分类号
摘要
Data releasing and sharing between several fields has became inevitable tendency in the context of big data. Unfortunately, this situation has clearly caused enormous exposure of sensitive and private information. Along with massive privacy breaches, privacy-preservation issues were brought into sharp focus and privacy concerns may prevent people from providing their personal data. To meet the requirements of privacy protection, such a problem has been extensively studied. However, privacy protection of sensitive information should not prevent data users from conducting valid analyses of the released data. We propose a novel algorithm in this paper, named Data Release under Adjustable Privacy-utility Equilibrium (DRAPE), to address this problem. We handle the privacy versus utility tradeoff in the data release problem by breaking sensitive associations among variables while maintaining the correlations of nonsensitive variables. Furthermore, we quantify the impact of the proposed privacy-preserving method in terms of correlation preservation and privacy level, and thereby develop an optimization model to fulfil data privacy and data utility constraints. The proposed approach is not only able to provide a better privacy levels control scheme for data publishers, but also provides personalized service for data requesters with different utility requirements. We conduct experiments on one simulated dataset and two real datasets, and the simulation results show that DRAPE efficiently achieves a guaranteed privacy level while simultaneously effectively preserving data utility.
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页码:199 / 217
页数:18
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