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Developing Privacy Solutions for Sharing and Analyzing Healthcare Data

机译:开发用于共享和分析医疗数据的隐私解决方案

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摘要

The extensive use of electronic health data has increased privacy concerns. While most healthcare organizations are conscientious in protecting their data in their databases, very few organizations take enough precautions to protect data that is shared with third party organizations. Recently the regulatory environment has tightened the laws to enforce privacy protection. The goal of this research is to explore the application of data masking solutions for protecting patient privacy when data is shared with external organizations for research, analysis and other similar purposes. Specifically, this research project develops a system that protects data without removing sensitive attributes. Our application allows high quality data analysis with the masked data. Dataset-level properties and statistics remain approximately the same after data masking; however, individual record-level values are altered to prevent privacy disclosure. A pilot evaluation study on large real-world healthcare data shows the effectiveness of our solution in privacy protection.
机译:电子健康数据的广泛使用增加了对隐私的关注。尽管大多数医疗保健组织都认真保护数据库中的数据,但很少有组织采取足够的预防措施来保护与第三方组织共享的数据。最近,监管环境已收紧法律以加强隐私保护。这项研究的目的是探索数据屏蔽解决方案的应用,以在与外部组织共享数据进行研究,分析和其他类似目的时保护患者隐私。具体来说,该研究项目开发了一种在不删除敏感属性的情况下保护数据的系统。我们的应用程序允许使用屏蔽的数据进行高质量的数据分析。数据屏蔽后,数据集级别的属性和统计信息大致保持不变;但是,将更改各个记录级别的值以防止隐私泄露。一项针对大型现实世界医疗数据的试点评估研究表明,我们的解决方案在保护隐私方面是有效的。

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