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使用加速度计和陀螺仪对足下垂患者进行步态事件识别的可靠性。

The reliability of using accelerometer and gyroscope for gait event identification on persons with dropped foot.

作者信息

Lau Hongyin, Tong Kaiyu

机构信息

Department of Health Technology and Informatics, The Hong Kong Polytechnic University, Hong Kong SAR, China.

出版信息

Gait Posture. 2008 Feb;27(2):248-57. doi: 10.1016/j.gaitpost.2007.03.018. Epub 2007 May 21.

DOI:10.1016/j.gaitpost.2007.03.018
PMID:17513111
Abstract

Identification of gait events using an optimal sensor set and a reliable algorithm would be useful in the clinical evaluation of patients with dropped foot. This article describes a threshold detection method for identifying gait events and evaluating the reliability of a system on ten subjects with dropped foot and three non-impaired controls. The system comprised three sensor units of accelerometers and gyroscopes attached at the thigh, shank and foot of the impaired leg in subjects with dropped foot, and the dominant leg in the controls. A performance index was devised to compare the values of different measuring directions of the sensor units and evaluate the system's reliability. The performance index, with the ideal value equal to 1, depended on the classification accuracy and timing variation of the turning points. These were obtained from the threshold detection method that distinguished the absolute maximum and minimum turning points from local maximum and minimum turning points. It was found that some specific turning points could effectively identify gait events with a high median value in the performance index. These turning points included: the minimum turning point in superior-inferior acceleration on the thigh at loading response (0.972); the minimum turning point in anterior-posterior angular velocity on the shank at pre-swing (0.955) and the maximum turning point in superior-inferior acceleration on the foot at initial swing (0.954). Combining the results of sensor measurements in different orientations and attachment locations could be used for gait event identification. It was shown that the threshold detection method is reliable. Portable gait-monitoring devices can be used for monitoring of daily activities and functional control.

摘要

使用最佳传感器组和可靠算法识别步态事件,对于足下垂患者的临床评估将很有帮助。本文描述了一种阈值检测方法,用于识别步态事件并评估一个系统在十名足下垂患者和三名非损伤对照者身上的可靠性。该系统包括三个加速度计和陀螺仪传感器单元,分别附着在足下垂患者患侧腿的大腿、小腿和足部,以及对照者的优势腿上。设计了一个性能指标来比较传感器单元不同测量方向的值,并评估系统的可靠性。该性能指标的理想值等于1,它取决于转折点的分类准确率和时间变化。这些是通过阈值检测方法获得的,该方法将绝对最大和最小转折点与局部最大和最小转折点区分开来。结果发现,一些特定的转折点能够有效地识别步态事件,且性能指标的中位数较高。这些转折点包括:负重反应时大腿上下加速度的最小转折点(0.972);摆动前期小腿前后角速度的最小转折点(0.955)以及初始摆动时足部上下加速度的最大转折点(0.954)。结合不同方向和附着位置的传感器测量结果可用于步态事件识别。结果表明,阈值检测方法是可靠的。便携式步态监测设备可用于日常活动监测和功能控制。

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