Feedback Gains modulate with Motor Memory Uncertainty

Sae Franklin, D. W. Franklin
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引用次数: 5

Abstract

A sudden change in dynamics produces large errors leading to increases in muscle co-contraction and feedback gains during early adaptation. We previously proposed that internal model uncertainty drives these changes, whereby the sensorimotor system reacts to the change in dynamics by upregulating stiffness and feedback gains to reduce the effect of model errors. However, these feedback gain increases have also been suggested to represent part of the adaptation mechanism. Here, we investigate this by examining changes in visuomotor feedback gains during gradual or abrupt force field adaptation. Participants grasped a robotic manipulandum and reached while a curl force field was introduced gradually or abruptly. Abrupt introduction of dynamics elicited large initial increases in kinematic error, muscle co-contraction and visuomotor feedback gains, while gradual introduction showed little initial change in these measures despite evidence of adaptation. After adaptation had plateaued, there was a change in the co-contraction and visuomotor feedback gains relative to null field movements, but no differences (apart from the final muscle activation pattern) between the abrupt and gradual introduction of dynamics. This suggests that the initial increase in feedback gains is not part of the adaptation process, but instead an automatic reactive response to internal model uncertainty. In contrast, the final level of feedback gains is a predictive tuning of the feedback gains to the external dynamics as part of the internal model adaptation. Together, the reactive and predictive feedback gains explain the wide variety of previous experimental results of feedback changes during adaptation.
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反馈增益与运动记忆不确定性调制
动态的突然变化会产生很大的误差,导致肌肉共同收缩的增加和早期适应过程中的反馈增益。我们之前提出,内部模型的不确定性驱动了这些变化,因此感觉运动系统通过上调刚度和反馈增益来对动态变化做出反应,以减少模型误差的影响。然而,这些反馈增益的增加也被认为是适应机制的一部分。在这里,我们通过检查在逐渐或突然力场适应过程中视觉运动反馈增益的变化来研究这一点。参与者在逐渐或突然引入旋度力场的情况下,抓住一个机器人操纵杆并到达。突然引入动力学引起了运动学误差、肌肉共收缩和视觉运动反馈增益的大量初始增加,而逐渐引入这些措施显示了很少的初始变化,尽管有适应的证据。在适应达到平台期后,相对于零场运动,共收缩和视觉运动反馈增益发生了变化,但突然和逐渐引入动态之间没有差异(除了最终的肌肉激活模式)。这表明反馈增益的初始增加不是适应过程的一部分,而是对内部模型不确定性的自动反应。相反,反馈增益的最终水平是对外部动态反馈增益的预测性调整,作为内部模型适应的一部分。总之,反应性和预测性反馈增益解释了适应过程中反馈变化的各种各样的先前实验结果。
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