Enriching Real-world Data with Social Determinants of Health for Health Outcomes and Health Equity: Successes, Challenges, and Opportunities.

Yearbook of medical informatics Pub Date : 2023-08-01 Epub Date: 2023-12-26 DOI:10.1055/s-0043-1768732
Zhe He, Emily Pfaff, Serena Jingchuan Guo, Yi Guo, Yonghui Wu, Cui Tao, Gregor Stiglic, Jiang Bian
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引用次数: 0

Abstract

Objective: To summarize the recent methods and applications that leverage real-world data such as electronic health records (EHRs) with social determinants of health (SDoH) for public and population health and health equity and identify successes, challenges, and possible solutions.

Methods: In this opinion review, grounded on a social-ecological-model-based conceptual framework, we surveyed data sources and recent informatics approaches that enable leveraging SDoH along with real-world data to support public health and clinical health applications including helping design public health intervention, enhancing risk stratification, and enabling the prediction of unmet social needs.

Results: Besides summarizing data sources, we identified gaps in capturing SDoH data in existing EHR systems and opportunities to leverage informatics approaches to collect SDoH information either from structured and unstructured EHR data or through linking with public surveys and environmental data. We also surveyed recently developed ontologies for standardizing SDoH information and approaches that incorporate SDoH for disease risk stratification, public health crisis prediction, and development of tailored interventions.

Conclusions: To enable effective public health and clinical applications using real-world data with SDoH, it is necessary to develop both non-technical solutions involving incentives, policies, and training as well as technical solutions such as novel social risk management tools that are integrated into clinical workflow. Ultimately, SDoH-powered social risk management, disease risk prediction, and development of SDoH tailored interventions for disease prevention and management have the potential to improve population health, reduce disparities, and improve health equity.

利用健康的社会决定因素丰富现实世界数据,促进健康成果和健康公平:成功、挑战和机遇。
目的总结近期利用真实世界数据(如电子健康记录(EHR))和健康的社会决定因素(SDoH)促进公共卫生、人口健康和健康公平的方法和应用,并确定成功案例、挑战和可能的解决方案:在这篇观点综述中,我们以基于社会生态模型的概念框架为基础,调查了数据来源和最新的信息学方法,这些方法能够利用 SDoH 以及真实世界的数据来支持公共卫生和临床卫生应用,包括帮助设计公共卫生干预措施、加强风险分层以及预测未满足的社会需求:除了总结数据来源外,我们还发现了现有电子病历系统在收集 SDoH 数据方面存在的不足,以及利用信息学方法从结构化和非结构化电子病历数据或通过与公众调查和环境数据连接收集 SDoH 信息的机会。我们还调查了近期开发的 SDoH 信息标准化本体以及将 SDoH 用于疾病风险分层、公共卫生危机预测和制定有针对性的干预措施的方法:要想利用真实世界的 SDoH 数据实现有效的公共卫生和临床应用,就必须开发涉及激励、政策和培训的非技术解决方案,以及技术解决方案,如集成到临床工作流程中的新型社会风险管理工具。最终,由 SDoH 驱动的社会风险管理、疾病风险预测以及针对疾病预防和管理的 SDoH 定制干预措施的开发有可能改善人口健康、减少差异并提高健康公平性。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
Yearbook of medical informatics
Yearbook of medical informatics Medicine-Medicine (all)
CiteScore
4.10
自引率
0.00%
发文量
20
期刊介绍: Published by the International Medical Informatics Association, this annual publication includes the best papers in medical informatics from around the world.
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