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A method to deal with installation errors of wearable accelerometers for human activity recognition

机译:一种用于人类活动识别的可穿戴式加速度计安装错误的处理方法

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摘要

Human activity recognition (HAR) by using wearable accelerometers has gained significant interest in recent years in a range of healthcare areas, including inferring metabolic energy expenditure, predicting falls, measuring gait parameters and monitoring daily activities. The implementation of HAR relies heavily on the correctness of sensor fixation. The installation errors of wearable accelerometers may dramatically decrease the accuracy of HAR. In this paper, a method is proposed to improve the robustness of HAR to the installation errors of accelerometers. The method first calculates a transformation matrix by using Gram-Schmidt orthonormalization in order to eliminate the sensor's orientation error and then employs a low-pass filter with a cut-off frequency of 10 Hz to eliminate the main effect of the sensor's misplacement. The experimental results showed that the proposed method obtained a satisfactory performance for HAR. The average accuracy rate from ten subjects was 95.1% when there were no installation errors, and was 91.9% when installation errors were involved in wearable accelerometers.
机译:近年来,通过使用可穿戴式加速度计进行的人类活动识别(HAR)在医疗保健领域引起了广泛兴趣,包括推断新陈代谢的能量消耗,预测跌倒,测量步态参数和监控日常活动。 HAR的实施很大程度上取决于传感器固定的正确性。穿戴式加速度计的安装错误可能会大大降低HAR的准确性。本文提出了一种提高HAR对加速度计安装误差的鲁棒性的方法。该方法首先通过使用Gram-Schmidt正交归一化来计算变换矩阵,以消除传感器的方向误差,然后使用截止频率为10 Hz的低通滤波器消除传感器错位的主要影响。实验结果表明,所提出的方法获得了令人满意的HAR性能。当没有安装错误时,来自十个对象的平均准确率是95.1%,而在可穿戴式加速度计中涉及安装错误时,则是91.9%。

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