Pollind Michael L, Soangra Rahul
Annu Int Conf IEEE Eng Med Biol Soc. 2020 Jul;2020:4600-4603. doi: 10.1109/EMBC44109.2020.9175167.
Postural instability assessment is an important tool in fall risk analysis and for timely intervention of falls to reduce or prevent fall injuries. Traditionally fall risk is measured though postural sway assessment and is collected through forceplates by mapping Center of Pressure (COP) excursions or using motion analysis camera system for marker sway trajectories. However, both of these systems are expensive and lack portability to their usage in clinical environments. In this study, we developed a novel wearable low-cost MEMS inertial sensor and validated its usage for human postural sway assessment in standing posture with eyes open/closed, vibration/no vibration, and proprioception /low proprioception conditions. The two objectives of this study were: 1) To develop and validate an Inertial Measurement Unit (IMU) for sway analysis 2) To determine the feasibility of the system in detecting human postural imbalances such as reduced proprioception or presence of stochastic resonance induced through subthreshold vibrations on the feet. The novel IMU was tested for sway against infra-red marker on a specialized platform with 4-degrees of freedom. Many parameters of postural sway such as sway velocity, Root Mean Square (RMS), and sway path length could successfully detect subtle postural changes due to varying proprioceptive and sub-threshold vibration conditions. We found agreement in sway signal determinism from the two methods.Clinical Relevance- This wearable sensor technology has potential to determine balance in reliable, easy and accurate way in clinical environments.
姿势稳定性评估是跌倒风险分析以及对跌倒进行及时干预以减少或预防跌倒伤害的一项重要工具。传统上,跌倒风险是通过姿势摆动评估来衡量的,通过测力板绘制压力中心(COP)偏移或使用运动分析摄像系统记录标记摆动轨迹来收集数据。然而,这两种系统都很昂贵,并且在临床环境中的使用缺乏便携性。在本研究中,我们开发了一种新型的可穿戴低成本微机电系统(MEMS)惯性传感器,并验证了其在睁眼/闭眼、有振动/无振动以及本体感觉/低本体感觉条件下站立姿势时用于人体姿势摆动评估的用途。本研究的两个目标是:1)开发并验证用于摆动分析的惯性测量单元(IMU);2)确定该系统在检测人体姿势失衡方面的可行性,例如本体感觉降低或通过脚底阈下振动诱发的随机共振的存在。新型IMU在一个具有4个自由度的专用平台上针对红外标记进行了摆动测试。许多姿势摆动参数,如摆动速度、均方根(RMS)和摆动路径长度,能够成功检测出由于不同本体感觉和阈下振动条件而引起的细微姿势变化。我们发现两种方法在摆动信号确定性方面具有一致性。临床相关性——这种可穿戴传感器技术有潜力在临床环境中以可靠、简便且准确的方式确定平衡。