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用于社区居住的老年人跌倒风险评估和预防的动态性能-暴露算法。

Dynamic performance-exposure algorithm for falling risk assessment and prevention of falls in community-dwelling older adults.

机构信息

Departamento de Desporto e Saúde, Escola de Saúde e Desenvolvimento Humano, Universidade de Évora, Évora, Portugal; Comprehensive Health Research Centre (CHRC), Universidade de Évora, Évora, Portugal.

Departamento de Desporto e Saúde, Escola de Saúde e Desenvolvimento Humano, Universidade de Évora, Évora, Portugal; Comprehensive Health Research Centre (CHRC), Universidade de Évora, Évora, Portugal.

出版信息

Geriatr Nurs. 2022 Sep-Oct;47:135-144. doi: 10.1016/j.gerinurse.2022.07.004. Epub 2022 Jul 30.

Abstract

This study aimed to design a dynamic performance-exposure algorithm for falling risk assessment and prevention of falls in community-dwelling older adults. It involved a cross-sectional and follow-up survey assessing retrospective and prospective falls and respective performance-related, exposure and performance-exposure risk factors. In total, 500 Portuguese community-dwelling adults participated. Data modelling showed significant (p<0.05) relationships between the above risk factors and selected nine key ordered outcomes explaining falls to include in the algorithm: previous falls; health conditions; balance; lower strength; perceiving action boundaries; fat mass; environmental hazards; rest periods; and physical activity. Respective high-, moderate- and low-risk cutoffs were established. The results demonstrated a dynamic relationship between older adults' performance capacity and the exposure to fall opportunity, counterbalanced by the action boundary perception, supporting the build algorithm's conceptual framework. Fall prevention measures should consider the factors contributing most to the individual risk of falling and their distance from low-risk safe values.

摘要

本研究旨在设计一种动态的性能-暴露算法,用于评估社区居住的老年人的跌倒风险和预防跌倒。这涉及到一项横断面和随访调查,评估回顾性和前瞻性跌倒以及各自与性能相关、暴露和性能-暴露风险因素。共有 500 名葡萄牙社区居住的成年人参与。数据分析表明,上述风险因素与选择的九个关键有序结果之间存在显著(p<0.05)关系,这些结果可以解释算法中的跌倒事件,包括:既往跌倒史;健康状况;平衡能力;下肢力量;感知行动边界;体脂肪量;环境危险;休息时间;以及身体活动。分别建立了高、中、低风险的截断值。结果表明,老年人的身体表现能力和跌倒机会的暴露之间存在动态关系,由感知行动边界来平衡,这支持了算法构建的概念框架。跌倒预防措施应考虑导致个体跌倒风险最大的因素,以及这些因素与低风险安全值的距离。

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