Development of a computerized visual feedback system to re-educate functional pinch in patients with motor or sensory deficits

G. Ferland, R. Torres-moreno
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引用次数: 1

Abstract

Precision grip, such as lateral pinching, is an essential component of independent hand function. This apparently simple motor task, relies on a complex interaction of sensory and motor mechanisms. Patients with impaired input from proprioceptors and cutaneous receptors may experience difficulty with timing and scaling motor recruitment during manipulative manoeuvres. To help evaluate and retrain motor control of the hand, an instrumented pinching device with a computerized on-line visual feedback system responding to pinch force variation was designed and constructed. Mechanical testing of the device included step loading, loading-unloading cycles and 4 hours of constant loading to evaluate hysteresis, nonlinearity and signal shift over time. Calibration coefficients were calculated in the active range of 0 to 100 Newtons. A pilot test was then conducted using normal subjects (n=6). The experimental session for each subject consisted of a total of 30 trials: one trial per pinch span (12.3, 31.4 and 51.7 mm) to determine the maximal force (MF), and three repeated measures per force target (FT) level (25, 50 and 75 per cent of MF) per span. Data was filtered (Fc=10 Hz) and then normalized in terms of Ff level. Overall, subjects achieved better pinch force control at lower FT levels and at the thickest span tested. This study provided the basis for a clinical pilot test to determine the effectiveness of this rehabilitation tool in re-educating functional pinch in patients with sensorimotor impairments.
计算机视觉反馈系统的发展,对运动或感觉缺陷患者的功能性捏捏进行再教育
精确握持,如侧捏,是独立手功能的重要组成部分。这项看似简单的运动任务依赖于感觉和运动机制的复杂相互作用。本体感受器和皮肤感受器输入受损的患者在操作过程中可能会遇到运动恢复的时间和规模困难。为了帮助评估和训练手的电机控制,设计并构建了一种具有计算机在线视觉反馈系统的夹紧装置,该装置可以响应夹紧力的变化。该装置的力学测试包括阶跃加载、加载-卸载循环和4小时恒定加载,以评估滞后、非线性和信号随时间的位移。在0到100牛顿的有效范围内计算校准系数。然后使用正常受试者(n=6)进行先导试验。每个受试者的实验阶段共包括30个试验:每个捏幅(12.3、31.4和51.7 mm)一个试验以确定最大力(MF),每个捏幅每个力目标(FT)水平(25%、50%和75% MF)三个重复测量。数据被过滤(Fc=10 Hz),然后根据Ff电平归一化。总体而言,受试者在较低的FT水平和最大的测试跨度下获得了更好的夹紧力控制。本研究为临床试验提供了基础,以确定该康复工具在感觉运动障碍患者功能性捏的再教育中的有效性。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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