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Classifying household and locomotive activities using a triaxial accelerometer.

机译:使用三轴加速度计对家庭和机车活动进行分类。

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The purpose of this study was to develop a new algorithm for classifying physical activity into either locomotive or household activities using a triaxial accelerometer. Sixty-six volunteers (31 men and 35 women) participated in this study and were separated randomly into validation and cross-validation groups. All subjects performed 12 physical activities (personal computer work, laundry, dishwashing, moving a small load, vacuuming, slow walking, normal walking, brisk walking, normal walking while carrying a bag, jogging, ascending stairs and descending stairs) while wearing a triaxial accelerometer in a controlled laboratory setting. Each of the three signals from the triaxial accelerometer was passed through a second-order Butterworth high-pass filter to remove the gravitational acceleration component from the signal. The cut-off frequency was set at 0.7 Hz based on frequency analysis of the movements conducted. The ratios of unfiltered to filtered total acceleration (TAU/TAF) and filtered vertical to horizontal acceleration (VAF/HAF) were calculated to determine the cut-off value for classification of household and locomotive activities. When the TAU/TAF discrimination cut-off value derived from the validation group was applied to the cross-validation group, the average percentage of correct discrimination was 98.7%. When the VAF/HAF value similarly derived was applied to the cross-validation group, there was relatively high accuracy but the lowest percentage of correct discrimination was 63.6% (moving a small load). These findings suggest that our new algorithm using the TAU/TAF cut-off value can accurately classify household and locomotive activities.
机译:这项研究的目的是开发一种使用三轴加速度计将体育活动分类为机车活动或家庭活动的新算法。 66名志愿者(31名男性和35名女性)参加了这项研究,并随机分为验证组和交叉验证组。所有受试者都穿着三轴运动进行了12项体育活动(个人计算机工作,洗衣,洗碗,移动一小块负重物,吸尘,缓慢行走,正常行走,快步行走,提包时正常行走,慢跑,上楼梯和下楼梯)在受控实验室环境中的加速度计。来自三轴加速度计的三个信号中的每个信号都通过一个二阶巴特沃斯高通滤波器,以去除信号中的重力加速度分量。根据对运动进行的频率分析,将截止频率设置为0.7 Hz。计算未过滤与已过滤总加速度(TAU / TAF)和已过滤垂直与水平加速度(VAF / HAF)的比率,以确定用于分类家庭和机车活动的临界值。将来自验证组的TAU / TAF判别截止值应用于交叉验证组时,正确判别的平均百分比为98.7%。将类似推导的VAF / HAF值应用于交叉验证组时,准确性较高,但正确判别的最低百分比为63.6%(负载较小)。这些发现表明,我们使用TAU / TAF临界值的新算法可以准确地分类家庭和机车活动。

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