首页> 美国卫生研究院文献>Entropy >Multiscale Entropy Analysis of Postural Stability for Estimating Fall Risk via Domain Knowledge of Timed-Up-And-Go Accelerometer Data for Elderly People Living in a Community
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Multiscale Entropy Analysis of Postural Stability for Estimating Fall Risk via Domain Knowledge of Timed-Up-And-Go Accelerometer Data for Elderly People Living in a Community

机译:多尺度熵分析历史稳定性通过域名知识估算落下风险通过域名居住在社区中的老年人的年长人民数据

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摘要

As people in developed countries live longer, assessing the fall risk becomes more important. A major contributor to the risk of elderly people falling is postural instability. This study aimed to use the multiscale entropy (MSE) analysis to evaluate postural stability during a timed-up-and-go (TUG) test. This test was deemed a promising method for evaluating fall risk among the elderly in a community. The MSE analysis of postural instability can identify the elderly prone to falling, whereupon early medical rehabilitation can prevent falls. Herein, an objective approach is developed for assessing the postural stability of 85 community-dwelling elderly people (aged 76.12 ± 6.99 years) using the short-form Berg balance scale. Signals were collected from the TUG test using a triaxial accelerometer. A segment-based TUG (sTUG) test was designed, which can be obtained according to domain knowledge, including “Sit-to-Walk (STW),” “Walk,” “Turning,” and “Walk-to-Sit (WTS)” segments. Employing the complexity index (CI) of sTUG can reveal information about the physiological dynamics’ signal for postural stability assessment. Logistic regression was used to assess the fall risk based on significant features of CI related to sTUG. MSE curves for subjects at risk of falling (n = 19) exhibited different trends from those not at risk of falling (n = 66). Additionally, the CI values were lower for subjects at risk of falling than those not at risk of falling. Results show that the area under the curve for predicting fall risk among the elderly subjects with complexity index features from the overall TUG test is 0.797, which improves to 0.853 with the sTUG test. For the elderly living in a community, early assessment of the CI for sTUG using MSE can help predict the fall risk.
机译:随着发达国家的人寿更长时间,评估跌倒风险变得更加重要。落下老年人风险的主要贡献者是灾难性的不稳定。本研究旨在使用多尺度熵(MSE)分析来评估时间上升和去(Tug)测试期间的姿势稳定性。该测试被认为是一种有希望的方法,用于评估社区中老年人的危险风险。姿势不稳定性的MSE分析可以识别老年人倾向于下降,而早期的医疗康复可以预防跌倒。在此,开发了一种客观方法,用于评估使用短型Berg平衡规模的85名社区住宅老年人(年龄76.12±6.9​​9岁)的姿势稳定性。使用三轴加速度计从拖船试验收集信号。设计了一种基于段的拖扣(刺耳)测试,可以根据领域知识获得,包括“坐在步行(STW)”,“走路”,“转动”和“走路”(WTS )“细分。采用洞穴的复杂性指数(CI)可以透露有关姿势稳定性评估的生理动态信号的信息。 Logistic回归用于基于与刺痛相关的CI的显着特征来评估秋季风险。落下风险的受试者的MSE曲线(n = 19)表现出与跌倒风险的不同趋势(n = 66)。另外,对于有可能跌倒的受试者的受试者的CI值比没有落下的风险的风险降低。结果表明,曲线下的面积预测来自整体拖轮试验的复杂性指数特征的老年人患者的落下风险为0.797,其具有尖锐试验的0.853。对于居住在社区的老年人来说,使用MSE的CI的早期评估可以帮助预测坠落风险。

著录项

  • 期刊名称 Entropy
  • 作者单位
  • 年(卷),期 2019(21),11
  • 年度 2019
  • 页码 1076
  • 总页数 15
  • 原文格式 PDF
  • 正文语种
  • 中图分类
  • 关键词

    机译:多尺度熵;复杂性指数(CI);定时和去(拖船);基于分段的拖船(塔子);坐在步行(stw);走路;转动;走路;步行;步行;坐在地上(WTS);
  • 入库时间 2022-08-21 12:21:02

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