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Measuring and Classifying Land-Based and Water-Based Daily Living Activities Using Inertial Sensors

机译:使用惯性传感器对陆上和水上日常生活活动进行测量和分类

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This study classified motions of typical daily activities in both environments using inertial sensors attached at the chest and thigh to determine the optimal site to attach the sensors. Walking, chair standing and sitting, and step climbing were conducted both in water and on land. A mean, variance and skewness for acceleration data was calculated. A Neural Network and Decision Tree algorithm was applied for classifying each motion in both environments. In total, 126 and 144 samples of thigh and chest data sets were obtained for analysis in each condition. For the chest data, the algorithm correctly classified 80% of the water-based activities, and 90% of the land-based. Whilst the thigh sensor correctly classified 97% of water-based and 100% of land-based activities. The inertial sensor placed on the thigh provided the most appropriate protocol for classifying motions for land-based and water-based typical daily life activities.
机译:这项研究使用安装在胸部和大腿上的惯性传感器对两种环境中典型日常活动的运动进行分类,以确定安装传感器的最佳位置。在水中和陆地上都进行了步行,椅子站立和坐下以及爬坡。计算出加速度数据的平均值,方差和偏度。应用神经网络和决策树算法对两种环境中的每个运动进行分类。在每种情况下,总共获得了126和144个大腿和胸部数据集样本用于分析。对于胸部数据,该算法正确地将80%的水基活动和90%的水基活动分类。大腿传感器正确分类了97%的水上活动和100%的陆上活动。大腿上放置的惯性传感器为对陆基和水基典型日常活动的运动进行分类提供了最合适的协议。

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