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Fall Risk Evaluation by Electromyography Solutions

机译:抗电核景解决方案的风险评估

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Falls are very dangerous events among elderly people. Several automatic fall detectors have been developed to reduce the time of the medical intervention, but they cannot avoid the injures due to the fall. The purpose of this study has been to identify a computational framework for the real-time and automatic detection of the fall risk, allowing the fast adoption of properly intervention strategies, to reduce injuries and traumas due to falls. A wearable, wireless and minimally invasive surface Electromyography (EMG)-based system has been used to measure four lower-limb muscles activities. Eleven young healthy subjects have simulated several fall events (through a movable platform) and normal Activities of Daily Living (ADLs) and their patterns have been analyzed. Highly discriminative features extracted within the EMG signals for the pre impact fall evaluation have been explored and a threshold-based approach has been adopted, assuring the real-time functioning. The threshold level for each feature has been set to distinguish an instability condition from normal activities. The proposed system seems able to recognize all falls with an average lead-time of 840 ms before the impact, in simulated and controlled fall conditions.
机译:瀑布是老年人之间的危险事件。已经开发了几种自动秋季探测器来减少医疗干预的时间,但由于秋季,他们无法避免损害。本研究的目的是确定用于实时和自动检测落下风险的计算框架,允许快速采用适当的干预策略,以减少由于跌倒导致的伤害和创伤。可穿戴的无线和微创表面肌电图(EMG)被用于测量四个下肢肌肉活动。 11年轻的健康受试者已经模拟了几个秋季事件(通过可移动平台)和日常生活(ADL)的正常活动,并分析了它们的图案。已经探索了在EMG信号中提取的高度辨别特征,并已经探索了预先影响评估,并采用了基于阈值的方法,确保了实时运行。已经设置了每个特征的阈值水平以区分从正常活动中的不稳定条件。拟议的系统似乎能够在模拟和控制的落下条件下识别出在撞击前的平均拨入时间的平均绳索。

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