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Activity Recognition by Classification Method for Weight Variation Measurement with an Insole Device for Monitoring Frail People

机译:通过用于监测虚弱人员的鞋垫装置的体重变化测量方法的活动识别

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Healthcare has become a major field of scientific research and is beginning to merge with new technologies to become connected. Measurement of motor activity provides physicians with indicators in order to improve patient follow up. One important health parameter is weight variation. Measuring these variations is not obvious when a person is walking. This paper highlights the difficulty of providing reliable weight variation values with good accuracy. To reach this objective, the paper presents ways to classify the activity of walking, in order to propose a method to measure weight variation at the right time and in a good position. Many methods were studied and compared, using Matlab. We propose a classification tree that uses the standard deviation of acceleration magnitude to define normal walking. The algorithm was embedded in an insole equipped with two force-sensing resistors and tested in laboratory.
机译:医疗保健已成为科学研究的主要领域,并开始与新技术合并。电机活动的测量为医生提供了指标,以改善患者的跟进。一个重要的健康参数是体重变化。当一个人走路时,测量这些变化并不明显。本文突出了具有良好精度提供可靠的重量变化值的难度。为了达到这个目标,本文提出了分类行走活动的方法,以提出一种测量正确时间和良好位置的方法来测量体重变化。使用MATLAB研究并比较了许多方法。我们提出了一种分类树,该树使用加速度的标准偏差来定义正常行走。该算法嵌入有配备两个力传感电阻的鞋垫中并在实验室进行测试。

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