A Real-Time Haptic/Graphic Demonstration of how Error Augmentation can Enhance Learning

Y. Wei, J. Patton, P. Bajaj, R. Scheidt
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引用次数: 55

Abstract

We developed a real-time controller for a 2 degree-of-freedom robotic system using xPC Target. This system was used to investigate how different methods of performance error feedback can lead to faster and more complete motor learning in individuals asked to compensate for a novel visuo-motor transformation (a 30 degree rotation). Four groups of human subjects were asked to reach with their unseen arm to visual targets surrounding a central starting location. A cursor tracking hand motion was provided during each reach. For one group of subjects, deviations from the “ideal” compensatory hand movement (i.e. trajectory errors) were amplified with a gain of 2 whereas another group was provided visual feedback with a gain of 3.1. Yet another group was provided cursor feedback wherein the cursor was rotated by an additional (constant) offset angle. We compared the rates at which the hand paths converged to the steady-state trajectories. Our results demonstrate that error-augmentation can improve the rate and extent of motor learning of visuomotor rotations in healthy subjects. Furthermore, our results suggest that both error amplification and offset-augmentation may facilitate neuro-rehabilitation strategies that restore function in brain injuries such as stroke.
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实时触觉/图形演示错误增强功能如何促进学习
我们利用 xPC Target 为 2 自由度机器人系统开发了一个实时控制器。我们利用该系统研究了不同的性能误差反馈方法如何能够帮助受试者更快、更全面地学习运动,以补偿新的视觉-运动转换(30 度旋转)。四组受试者被要求用看不见的手臂伸向围绕中心起始位置的视觉目标。每次伸手时,都会提供光标跟踪手部动作。对一组受试者来说,与 "理想 "补偿手部运动的偏差(即轨迹误差)被放大了 2 倍增益,而另一组受试者则获得了 3.1 倍增益的视觉反馈。另一组则提供光标反馈,光标以额外的(恒定的)偏移角度旋转。我们比较了手部轨迹向稳态轨迹靠拢的速度。我们的研究结果表明,误差增强可以提高健康受试者视觉运动旋转的学习速度和程度。此外,我们的研究结果还表明,误差放大和偏移增大可促进神经康复策略,从而恢复脑损伤(如中风)患者的功能。
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