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首页> 外文期刊>Biomedical Engineering, IEEE Transactions on >The Effects of Electrode Size and Orientation on the Sensitivity of Myoelectric Pattern Recognition Systems to Electrode Shift
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The Effects of Electrode Size and Orientation on the Sensitivity of Myoelectric Pattern Recognition Systems to Electrode Shift

机译:电极尺寸和方向对肌电模式识别系统对电极移位敏感性的影响

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摘要

Myoelectric pattern recognition systems for prosthesis control are often studied in controlled laboratory settings, but obstacles remain to be addressed before they are clinically viable. One important obstacle is the difficulty of maintaining system usability with socket misalignment. Misalignment inevitably occurs during prosthesis donning and doffing, producing a shift in electrode contact locations. We investigated how the size of the electrode detection surface and the placement of electrode poles (electrode orientation) affected system robustness with electrode shift. Electrodes oriented parallel to muscle fibers outperformed electrodes oriented perpendicular to muscle fibers in both shift and no-shift conditions (p < 0.01). Another finding was the significant difference (p < 0.01) in performance for the direction of electrode shift. Shifts perpendicular to the muscle fibers reduced classification accuracy and real-time controllability much more than shifts parallel to the muscle fibers. Increasing the size of the electrode detection surface was found to help reduce classification accuracy sensitivity to electrode shifts in a direction perpendicular to the muscle fibers but did not improve the real-time controllability of the pattern recognition system. One clinically important result was that a combination of longitudinal and transverse electrodes yielded high controllability with and without electrode shift using only four physical electrode pole locations.
机译:用于假体控制的肌电模式识别系统通常在受控的实验室环境中进行研究,但是在临床可行之前,仍需要解决障碍。一个重要的障碍是由于插槽未对准而难以保持系统可用性。假体穿脱过程中不可避免地会发生错位,从而导致电极接触位置发生偏移。我们研究了电极检测表面的大小和电极极的位置(电极方向)如何随着电极移位而影响系统的鲁棒性。在移位和无移位条件下,平行于肌纤维定向的电极的性能均优于垂直于肌纤维定向的电极(p <0.01)。另一个发现是电极移位方向的性能存在显着差异(p <0.01)。垂直于肌纤维的位移比平行于肌纤维的位移降低了分类准确性和实时可控性。发现增加电极检测表面的尺寸有助于降低分类精度对在垂直于肌纤维的方向上电极移位的敏感性,但是并没有改善模式识别系统的实时可控性。一个临床上重要的结果是,纵向电极和横向电极的组合在仅使用四个物理电极极位置的情况下,无论有无电极移位,都能产生高可控性。

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