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Physical Activity Recognition of Elderly People and People with Parkinson's (PwP) during Standard Mobility Tests using Wearable Sensors

机译:使用可穿戴传感器的标准移动测试期间,在帕金森(PWP)的身体活动识别

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Physical activity recognition plays a vital role in the application of wearable sensors in healthcare. This paper explores the capability of machine learning algorithms to recognise activities of healthy elderly adults and people with Parkinson's (PwP) using wearable sensor data. We examined the potential of triaxial accelerometer alone and with gyroscope for activity recognition. We employed a comprehensive study of several features and classifiers for recognising different activities. The random forest algorithm identified physical activities among elderly people and PwP with an accuracy of 92.29% when both accelerometer and gyroscope sensors used at the same time.
机译:身体活动识别在医疗保健中的可穿戴传感器的应用中起着至关重要的作用。本文探讨了机器学习算法的能力,识别使用可穿戴传感器数据的帕金森(PWP)的健康老年成人和人们的活动。我们检查了三轴加速度计的潜力单独和陀螺仪进行活动识别。我们雇用了对识别不同活动的若干特征和分类器的全面研究。随机森林算法在同时使用的加速度计和陀螺仪传感器时,鉴定了老年人和PWP的体育活动,精度为92.29%。

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