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Design and implementation of a privacy preserving electronic health record linkage tool in Chicago

机译:芝加哥隐私保护电子病历链接工具的设计和实现

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摘要

>Objective To design and implement a tool that creates a secure, privacy preserving linkage of electronic health record (EHR) data across multiple sites in a large metropolitan area in the United States (Chicago, IL), for use in clinical research.>Methods The authors developed and distributed a software application that performs standardized data cleaning, preprocessing, and hashing of patient identifiers to remove all protected health information. The application creates seeded hash code combinations of patient identifiers using a Health Insurance Portability and Accountability Act compliant SHA-512 algorithm that minimizes re-identification risk. The authors subsequently linked individual records using a central honest broker with an algorithm that assigns weights to hash combinations in order to generate high specificity matches.>Results The software application successfully linked and de-duplicated 7 million records across 6 institutions, resulting in a cohort of 5 million unique records. Using a manually reconciled set of 11 292 patients as a gold standard, the software achieved a sensitivity of 96% and a specificity of 100%, with a majority of the missed matches accounted for by patients with both a missing social security number and last name change. Using 3 disease examples, it is demonstrated that the software can reduce duplication of patient records across sites by as much as 28%.>Conclusions Software that standardizes the assignment of a unique seeded hash identifier merged through an agreed upon third-party honest broker can enable large-scale secure linkage of EHR data for epidemiologic and public health research. The software algorithm can improve future epidemiologic research by providing more comprehensive data given that patients may make use of multiple healthcare systems.
机译:>目标:设计和实施一种工具,该工具可在美国大都市区(伊利诺伊州芝加哥)的多个站点上创建安全,隐私保护的电子健康记录(EHR)数据链接,以供使用>方法。作者开发并分发了一个软件应用程序,该程序执行标准化的数据清理,预处理和患者标识符哈希处理,以删除所有受保护的健康信息。该应用程序使用符合Health Insurance Portability and Accountability Act的SHA-512算法创建患者标识符的种子哈希码组合,该算法可使重新标识的风险降至最低。作者随后使用中央诚实代理将单个记录与一种算法相关联,该算法将权重分配给哈希组合,以生成高特异性匹配。机构,从而产生了500万条唯一记录。该软件使用一组11 292名患者的手动调节数据作为金标准,该软件实现了96%的灵敏度和100%的特异性,大部分遗漏的匹配项由缺少社会保险号和姓氏的患者造成更改。使用3个疾病示例,证明该软件可以减少跨站点的病历重复多达28%。>结论该软件标准化了通过达成共识的合并的唯一种子哈希标识符的分配第三方诚实经纪人可以启用EHR数据的大规模安全链接,以进行流行病学和公共卫生研究。鉴于患者可能使用多种医疗保健系统,该软件算法可以通过提供更全面的数据来改善未来的流行病学研究。

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