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A novel algorithm for activity state recognition using smartwatch data

机译:一种使用智能手表数据进行活动状态识别的新算法

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This work presents a novel algorithm for recognizing activity states which are of interest for assessing the general well-being of cancer, frail and elderly patients. Using the novel idea of two-level classification, misclassification due to unwanted hand motion noise, which is a common source of error in wrist-worn sensing systems, is mitigated. The algorithm is verified using data from 20 subjects performing a sequence of related activities. It is shown that the proposed algorithm improves the accuracy value for the “activity state” which includes “sit”, “stand” and “move” by up to 8%.
机译:这项工作提出了一种识别活动状态的新颖算法,该算法对于评估癌症,体弱和老年患者的总体健康状况非常重要。使用两级分类的新思想,可以减轻由于不必要的手部运动噪声而导致的误分类,这是腕戴式传感系统中常见的错误来源。使用来自执行一系列相关活动的20位受试者的数据验证了该算法。结果表明,该算法将包括“坐着”,“站立”和“移动”在内的“活动状态”的准确度提高了8%。

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