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A Novel Approach for Toe Off Estimation During Locomotion and Transitions on Ramps and Level Ground

机译:一种在坡道和水平地面上的运动和过渡过程中脚趾估计的新方法

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摘要

Identification of the toe off event is critical in many gait applications. Accelerometer threshold-based algorithms lack adaptability and have not been tested for transitions between locomotion states. We describe a new approach for toe off identification using one accelerometer in over ground and ramp walking, including transitions. The method uses invariant foot acceleration features in the segment of gait, where toe off is probable. Wavelet analysis of foot acceleration is used to derive a unique feature in a particular frequency band, yielding estimated toe off occurrence. We tested the new method for five conditions: over ground walking (W), ramp ascending (RA), ramp descending (RD); transitions between states (W-RA, W-RD). Mean absolute estimation error was 17.4 ± 12.5, 13.8 ± 8.5, and 22.0 ± 16.4 ms for steady states W, RA, and RD, 20.1 ± 15.5, and 17.1 ± 13.7 ms for transitions W-RA and W-RD, respectively. Algorithm performance was equivalent across all pairs of transition and locomotion state except between RA and RD (), demonstrating adaptability. The db1 wavelet outperformed db2 across states and transitions . The presented algorithm is a simple, robust approach for toe off detection.
机译:在许多步态应用中,识别脚趾脱发事件至关重要。基于加速度计阈值的算法缺乏适应性,尚未针对运动状态之间的转换进行过测试。我们描述了一种使用地面上的加速度计和坡道行走(包括过渡)进行脚趾识别的新方法。该方法在步态可能会脱脚的步态中使用不变的脚加速度特征。脚加速度的小波分析用于导出特定频带中的独特特征,从而产生估计的脚趾脱垂现象。我们在五个条件下测试了新方法:地面行走(W),坡道上升(RA),坡道下降(RD);状态之间的转换(W-RA,W-RD)。对于稳态W,RA和RD,平均绝对估计误差分别为17.4±12.5、13.8±8.5和22.0±16.4 ms,对于过渡W-RA和W-RD分别为20.1±15.5和17.1±13.7 ms。在RA和RD()之间的所有过渡和运动状态对中,算法性能均相同,这证明了其适应性。 db1小波在状态和转换方面的性能优于db2。提出的算法是一种简单,鲁棒的脚趾检测方法。

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