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Conceptualizing a Dynamic Fall Risk Model Including Intrinsic Risks and Exposures

机译:概念化动态秋季风险模型,包括内在风险和曝光

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摘要

Abstract Falls are a major cause of injury and disability in older people, leading to serious health and social consequences including fractures, poor quality of life, loss of independence, and institutionalization. To design and provide adequate prevention measures, accurate understanding and identification of person's individual fall risk is important. However, to date, the performance of fall risk models is weak compared with models estimating, for example, cardiovascular risk. This deficiency may result from 2 factors. First, current models consider risk factors to be stable for each person and not change over time, an assumption that does not reflect real-life experience. Second, current models do not consider the interplay of individual exposure including type of activity (eg, walking, undertaking transfers) and environmental risks (eg, lighting, floor conditions) in which activity is performed. Therefore, we posit a dynamic fall risk model consisting of intrinsic risk factors that vary over time and exposure (activity in context). eHealth sensor technology (eg, smartphones) begins to enable the continuous measurement of both the above factors. We illustrate our model with examples of real-world falls from the FARSEEING database. This dynamic framework for fall risk adds important aspects that may improve understanding of fall mechanisms, fall risk models, and the development of fall prevention interventions.
机译:摘要瀑布是老年人受伤和残疾的主要原因,导致严重的健康和社会后果,包括骨折,生活质量差,独立丧失和制度化。设计和提供充足的预防措施,准确的理解和识别人的个人坠落风险很重要。然而,迄今为止,与估计的模型相比,秋季风险模型的性能较弱,例如,心血管风险。这种缺陷可能由2个因素产生。首先,目前的模型认为风险因素对于每个人来说是稳定的,而不会随时间变化,这是一个不反映现实生活经验的假设。其次,当前模型不考虑个体曝光的相互作用,包括活动类型(例如,行走,承诺)和环境风险(例如,照明,地板条件),在其中进行活动。因此,我们提供了一种动态秋季风险模型,包括内在的风险因素,这些危险因素随时间和暴露(上下文中的活动)。 eHealth传感器技术(例如,智能手机)开始持续测量上述因素。我们说明了我们的模型,与远游数据库的实际情况。这种秋季风险的动态框架增加了可能改善对秋季机制,秋季风险模型以及坠落预防干预措施的发展的理解的重要方面。

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