Research Institute for Sport and Exercise Sciences, Liverpool John Moores University, Tom Reilly Building, Byrom Street, Liverpool L3 3AF, United Kingdom.
J Neuroeng Rehabil. 2014 Jun 10;11:101. doi: 10.1186/1743-0003-11-101.
A mirror placed in the mid-sagittal plane of the body has been used to reduce phantom limb pain and improve movement function in medical conditions characterised by asymmetrical movement control. The mirrored illusion of unimpaired limb movement during gait might enhance the effect, but a physical mirror is only capable of showing parallel movement of limbs in real time typically while sitting. We aimed to overcome the limitations of physical mirrors by developing and evaluating a Virtual Mirror Box which delays the mirrored image of limbs during gait to ensure temporal congruency with the impaired physical limb.
An application was developed in the CAREN system's D-Flow software which mirrors selected limbs recorded by real-time motion capture to the contralateral side. To achieve phase shifted movement of limbs during gait, the mirrored virtual limbs are also delayed by a continuously calculated amount derived from past gait events. In order to accommodate non-normal proportions and offsets of pathological gait, the movements are morphed so that the physical and virtual contact events match on the mirrored side. Our method was tested with a trans-femoral amputee walking on a treadmill using his artificial limb. Joint angles of the elbow and knee were compared between the intact and mirrored side using cross correlation, root mean squared difference and correlation coefficients.
The time delayed adaptive virtual mirror box produced a symmetrical looking gait of the avatar coupled with a reduction of the difference between the intact and virtual knee and elbow angles (10.86° and 5.34° reduced to 4.99° and 2.54° respectively). Dynamic morphing of the delay caused a non-significant change of toe-off events when compared to delaying by 50% of the previous gait cycle, as opposed to the initial contact events which showed a practically negligible but statistically significant increase (p < 0.05).
Adding an adaptive time delay to the Virtual Mirror Box has extended its use to treadmill gait, for the first time. Dynamic morphing resulted in a compromise between mirrored movement of the intact side and gait events of the virtual limbs matched with physical events of the impaired side. Asymmetrical but repeatable gait is expected to provide even more faithful mirroring.
在身体的中矢状面放置一面镜子,已被用于减少幻肢痛并改善以运动控制不对称为特征的医学病症中的运动功能。在步态中镜像显示未受损肢体运动的错觉可能会增强这种效果,但物理镜子只能实时显示典型坐姿下肢体的平行运动。我们旨在通过开发和评估虚拟镜像箱来克服物理镜子的局限性,该镜像箱在步态期间延迟肢体的镜像图像,以确保与受损的真实肢体的时间一致性。
在 CAREN 系统的 D-Flow 软件中开发了一个应用程序,该程序将实时运动捕捉记录的选定肢体镜像到对侧。为了实现步态中肢体的相位移动,通过从过去的步态事件中连续计算得出的量来延迟镜像虚拟肢体。为了适应病理性步态的非正常比例和偏移,通过变形使物理和虚拟接触事件在镜像侧匹配。我们的方法使用在跑步机上行走的股骨截肢者进行了测试,他使用自己的假肢。使用互相关、均方根差和相关系数比较了完整侧和镜像侧的肘部和膝关节角度。
自适应虚拟镜像箱产生了对称的虚拟角色步态,同时减少了完整侧和虚拟侧的膝盖和肘部角度之间的差异(10.86°和 5.34°减少到 4.99°和 2.54°)。与延迟前一个步态周期的 50%相比,延迟动态变形不会导致趾离地事件发生显著变化,而初始接触事件则表现出实际上微不足道但具有统计学意义的增加(p<0.05)。
为虚拟镜像箱添加自适应时间延迟,首次将其扩展到跑步机步态。动态变形在镜像侧的完整运动和虚拟肢体的步态事件之间取得了平衡,这些事件与受损侧的物理事件匹配。不对称但可重复的步态有望提供更忠实的镜像效果。