Interuniversity Centre of Bioengineering of the Human Neuromusculoskeletal System, University of Rome "Foro Italico", Roma, Italy; Department of Human, Sports, and Health Science, University of Rome "Foro Italico", Roma, Italy.
Interuniversity Centre of Bioengineering of the Human Neuromusculoskeletal System, University of Rome "Foro Italico", Roma, Italy; Department of Electronics and Telecommunications, Polytechnic of Turin, Torino, Italy.
J Biomech. 2022 Aug;141:111202. doi: 10.1016/j.jbiomech.2022.111202. Epub 2022 Jun 20.
The ankle joint complex presents a tangled functional anatomy, which understanding is fundamental to effectively estimate its kinematics on the sagittal plane. Protocols based on the use of magnetic and inertial measurement units (MIMUs) currently do not take in due account this factor. To this aim, a joint coordinate system for the ankle joint complex is proposed, along with a protocol to perform its anatomical calibration using MIMUs, consisting in a combination of anatomical functional calibrations of the tibiotalar axis and static acquisitions. Protocol repeatability and reliability were tested according to the metrics proposed in Schwartz et al. (2004) involving three different operators performing the protocol three times on ten participants, undergoing instrumented gait analysis through both stereophotogrammetry and MIMUs. Instrumental reliability was evaluated comparing the MIMU-derived kinematic traces with the stereophotogrammetric ones, obtained with the same protocol, through the linear fit method. A total of 270 gait cycles were considered. Results showed that the protocol was repeatable and reliable for what concerned the operators (0.4 ± 0.4 deg and 0.8 ± 0.5 deg, respectively). Instrumental reliability analysis showed a mean RMSD of 3.0 ± 1.3 deg, a mean offset of 9.4 ± 8.4 deg and a mean linear relationship strength of R = 0.88 ± 0.08. With due caution, the protocol can be considered both repeatable and reliable. Further studies should pay attention to the other ankle degrees of freedom as well as on the angular convention to compute them.
踝关节复合体呈现出复杂的功能解剖结构,理解这一点对于有效地估计其矢状面运动学至关重要。目前,基于使用磁和惯性测量单元(MIMUs)的协议并没有充分考虑到这一因素。为此,提出了一种踝关节复合体的关节坐标系,以及一种使用 MIMUs 进行解剖校准的协议,该协议由跗骨和静态踝关节轴的解剖功能校准的组合组成。根据 Schwartz 等人(2004 年)提出的指标,测试了协议的重复性和可靠性,其中涉及三个不同的操作人员在十名参与者身上进行三次协议操作,同时通过立体摄影测量法和 MIMUs 进行仪器步态分析。通过线性拟合方法,将 MIMU 得出的运动轨迹与使用相同协议获得的立体摄影测量轨迹进行比较,评估仪器的可靠性。共考虑了 270 个步态周期。结果表明,该协议在操作人员方面具有可重复性和可靠性(分别为 0.4 ± 0.4 度和 0.8 ± 0.5 度)。仪器可靠性分析显示平均 RMSD 为 3.0 ± 1.3 度,平均偏移量为 9.4 ± 8.4 度,平均线性关系强度 R = 0.88 ± 0.08。需要谨慎使用,该协议可以被认为是可重复和可靠的。进一步的研究应该关注其他踝关节自由度以及计算它们的角度约定。