Lebel Karina, Hamel Mathieu, Duval Christian, Nguyen Hung, Boissy Patrick
Université de Sherbrooke, Faculty of Medicine and Health Sciences, Orthopedic Service, Department of Surgery, 3001, 12e Avenue Nord, Sherbrooke, Québec J1H 5N4, Canada; Research Center on Aging, 1036, Belvédère Sud, Sherbrooke, Quebec J1H 4C4, Canada; Interdisciplinary Institute for Technological Innovation (3IT), Université de Sherbrooke, Faculty of Engineering, 3000 Université Blvd., Sherbrooke, Quebec J1K 0A5, Canada.
Research Center on Aging, 1036, Belvédère Sud, Sherbrooke, Quebec J1H 4C4, Canada.
Gait Posture. 2018 Jan;59:199-205. doi: 10.1016/j.gaitpost.2017.10.016. Epub 2017 Oct 16.
Joint kinematics can be assessed using orientation estimates from Attitude and Heading Reference Systems (AHRS). However, magnetically-perturbed environments affect the accuracy of the estimated orientations. This study investigates, both in controlled and human mobility conditions, a trial calibration technic based on a 2D photograph with a pose estimation algorithm to correct initial difference in AHRS Inertial reference frames and improve joint angle accuracy. In controlled conditions, two AHRS were solidly affixed onto a wooden stick and a series of static and dynamic trials were performed in varying environments. Mean accuracy of relative orientation between the two AHRS was improved from 24.4° to 2.9° using the proposed correction method. In human conditions, AHRS were placed on the shank and the foot of a participant who performed repeated trials of straight walking and walking while turning, varying the level of magnetic perturbation in the starting environment and the walking speed. Mean joint orientation accuracy went from 6.7° to 2.8° using the correction algorithm. The impact of starting environment was also greatly reduced, up to a point where one could consider it as non-significant from a clinical point of view (maximum mean difference went from 8° to 0.6°). The results obtained demonstrate that the proposed method improves significantly the mean accuracy of AHRS joint orientation estimations in magnetically-perturbed environments and can be implemented in post processing of AHRS data collected during biomechanical evaluation of motion.
关节运动学可以通过姿态和航向参考系统(AHRS)的方向估计来评估。然而,存在磁场干扰的环境会影响估计方向的准确性。本研究在受控条件和人体运动条件下,研究了一种基于二维照片和姿态估计算法的试验校准技术,以校正AHRS惯性参考系中的初始差异并提高关节角度精度。在受控条件下,将两个AHRS牢固地固定在一根木棍上,并在不同环境中进行了一系列静态和动态试验。使用所提出的校正方法,两个AHRS之间相对方向的平均精度从24.4°提高到了2.9°。在人体条件下,将AHRS放置在一名参与者的小腿和足部,该参与者进行了直线行走和转弯行走的重复试验,改变了起始环境中的磁场干扰水平和行走速度。使用校正算法后,关节方向的平均精度从6.7°提高到了2.8°。起始环境的影响也大大降低,从临床角度来看,甚至可以认为其影响不显著(最大平均差异从8°降至0.6°)。所获得的结果表明,所提出的方法在存在磁场干扰的环境中显著提高了AHRS关节方向估计的平均精度,并且可以在运动生物力学评估期间收集的AHRS数据的后处理中实施。