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An Electronic Health Record Data-driven Model for Identifying Older Adults at Risk of Unintentional Falls

机译:电子病历数据驱动模型用于识别处于意外跌倒风险中的老年人

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摘要

Screening for risk of unintentional falls remains low in the primary care setting because of the time constraints of brief office visits. National studies suggest that physicians caring for older adults provide recommended fall risk screening only 30 to 37 percent of the time. Given prior success in developing methods for repurposing electronic health record data for the identification of fall risk, this study involves building a model in which electronic health record data could be applied for use in clinical decision support to bolster screening by proactively identifying patients for whom screening would be beneficial and targeting efforts specifically to those patients. The final model, consisting of priority and extended measures, demonstrates moderate discriminatory power, indicating that it could prove useful in a clinical setting for identifying patients at risk of falls. Focus group discussions reveal important contextual issues involving the use of fall-related data and provide direction for the development of health systems–level innovations for the use of electronic health record data for fall risk identification.
机译:由于短暂就诊的时间限制,在初级保健机构中对意外跌倒风险的筛查仍然很低。国家研究表明,护理老年人的医生仅在30%到37%的时间内提供建议的跌倒风险筛查。鉴于先前在开发用于重新定位电子健康记录数据以识别跌倒风险的方法方面的成功,本研究涉及建立一个模型,在该模型中,电子健康记录数据可用于临床决策支持,以通过主动识别进行筛查的患者来支持筛查这将是有益的,并专门针对这些患者进行努力。最终模型由优先级和扩展措施组成,显示出中等的歧视能力,表明该模型在临床上可用于识别有跌倒危险的患者。焦点小组的讨论揭示了涉及跌倒相关数据使用的重要背景问题,并为卫生系统的发展提供了指导-使用电子健康记录数据进行跌倒风险识别的创新水平。

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