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Analysis of unique myoelectric characteristics in lower-extremity musculature during locomotive state transitions.

机译:机车状态转换过程中下肢肌肉的独特肌电特性分析。

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摘要

Lower-extremity amputees face numerous challenges when returning to daily activities. Amongst these challenges is the ability to safely and dynamically transition from one locomotor state to another. Switching between level-ground, ramp, and stair locomotion poses an increased risk as lower-extremity functionality is compromised. Powered prosthetics have been proposed as a solution to this problem. Hypothetically, powered prosthetics would be able to return full functional to the amputated limb. The most common and successful source of information used in algorithms for lower-extremity prosthetics has been electromyography. However, in practice, amputees remain unable to easily actuate the mechanized joints of powered prostheses. Therefore, the current project aimed to identify myoelectric activation differences in lower-extremity musculature during the gait cycles preceding locomotor transition in able-bodied, trans-tibial, and trans-femoral subjects to assist efforts in developing robust classification algorithms for locomotor transitions. Analysis of electromyography was completed to determine if there were periods of activation where classification algorithms could utilize differences in myoelectric activation to appropriately control joint actuation in a subset of eight transitions that included level-ground locomotion and switching to either ramp or stair locomotion and vice versa. Ramp transitions were fundamentally similar to level-ground locomotion and elicited no differences in myoelectric activation. Stair transitions were found to alter muscle activation patterns in able-body and trans-tibial subjects. Trans-femoral subjects differentiated from able-bodied and trans-tibial subjects due to increased recruitment pattern variability. These patterns are distinct and may suggest individual learning patterns within the trans-femoral amputee population. Further investigation of these patterns may be warranted. Findings within able-bodied and trans-tibial subjects suggest common transition based differences within each respective population. Trans-tibial classification algorithms may be developed to utilize this information, using schemes that are focused on important areas during the gait cycle.
机译:下肢截肢者在返回日常活动时面临许多挑战。在这些挑战中,包括安全而动态地从一种运动状态过渡到另一种运动状态的能力。由于降低了下肢功能,在地面,坡道和楼梯的移动之间切换会增加风险。已经提出了动力假体作为该问题的解决方案。假设,动力假肢将能够使功能完全恢复到截肢。下肢假肢算法中最常用,最成功的信息来源是肌电图。然而,实际上,截肢者仍然不能容易地致动动力假体的机械化关节。因此,当前项目旨在确定身体强健,跨胫骨和跨股骨受试者在运动转换之前的步态周期中下肢肌肉的肌电激活差异,以协助开发针对运动转换的可靠分类算法。对肌电图的分析已完成,以确定分类算法是否可以利用肌电激活的差异来控制激活的周期,以适当地控制八个过渡的子集中的关节致动,包括水平-地面运动和切换为斜坡或楼梯运动,反之亦然。斜坡过渡从根本上类似于水平地面的运动,并没有引起肌电激活的差异。发现楼梯过渡会改变身体和跨胫骨受试者的肌肉激活模式。由于增加的征募模式变异性,跨股受试者与身体强壮和跨胫骨受试者有所区别。这些模式是截然不同的,可能暗示跨股截肢者人群中的个体学习模式。可能需要进一步研究这些模式。体格健壮和跨胫类受试者的发现表明,每个人群中都存在基于共同过渡的差异。可以开发出跨胫骨分类算法,以利用在步态周期中关注重要区域的方案来利用此信息。

著录项

  • 作者

    Nakamura, Bryson H.;

  • 作者单位

    University of Oregon.;

  • 授予单位 University of Oregon.;
  • 学科 Biomechanics.;Computer science.
  • 学位 Ph.D.
  • 年度 2016
  • 页码 92 p.
  • 总页数 92
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

  • 入库时间 2022-08-17 11:48:50

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