Privacy and ownership preserving of outsourced medical data

E. Bertino, B. Ooi, Yanjiang Yang, R. Deng
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引用次数: 159

Abstract

The demand for the secondary use of medical data is increasing steadily to allow for the provision of better quality health care. Two important issues pertaining to this sharing of data have to be addressed: one is the privacy protection for individuals referred to in the data; the other is copyright protection over the data. In this paper, we present a unified framework that seamlessly combines techniques of binning and digital watermarking to attain the dual goals of privacy and copyright protection. Our binning method is built upon an earlier approach of generalization and suppression by allowing a broader concept of generalization. To ensure data usefulness, we propose constraining binning by usage metrics that define maximal allowable information loss, and the metrics can be enforced off-line. Our watermarking algorithm watermarks the binned data in a hierarchical manner by leveraging on the very nature of the data. The method is resilient to the generalization attack that is specific to the binned data, as well as other attacks intended to destroy the inserted mark. We prove that watermarking could not adversely interfere with binning, and implemented the framework. Experiments were conducted, and the results show the robustness of the proposed framework.
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外包医疗数据的隐私和所有权保护
对医疗数据二次使用的需求正在稳步增长,以便提供更优质的保健服务。必须解决与这种数据共享有关的两个重要问题:一是数据中提到的个人隐私保护;另一个是数据的版权保护。在本文中,我们提出了一个统一的框架,无缝地结合了分码和数字水印技术,以实现隐私和版权保护的双重目标。我们的分箱方法建立在早期的泛化和抑制方法的基础上,允许更广泛的泛化概念。为了确保数据的有用性,我们提出了使用指标来约束分组,这些指标定义了最大允许的信息丢失,并且这些指标可以离线执行。我们的水印算法利用数据的本质,以分层的方式对分组数据进行水印。该方法对特定于分组数据的泛化攻击以及旨在破坏插入标记的其他攻击具有弹性。证明了水印不会对分帧产生不利干扰,并实现了该框架。实验结果表明,该框架具有较好的鲁棒性。
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