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Practice reduces task relevant variance modulation and forms nominal trajectory

机译:实践减少了任务相关的方差调制并形成了标称轨迹

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摘要

Humans are capable of achieving complex tasks with redundant degrees of freedom. Much attention has been paid to task relevant variance modulation as an indication of online feedback control strategies to cope with motor variability. Meanwhile, it has been discussed that the brain learns internal models of environments to realize feedforward control with nominal trajectories. Here we examined trajectory variance in both spatial and temporal domains to elucidate the relative contribution of these control schemas. We asked subjects to learn reaching movements with multiple via-points, and found that hand trajectories converged to stereotyped trajectories with the reduction of task relevant variance modulation as learning proceeded. Furthermore, variance reduction was not always associated with task constraints but was highly correlated with the velocity profile. A model assuming noise both on the nominal trajectory and motor command was able to reproduce the observed variance modulation, supporting an expression of nominal trajectories in the brain. The learning-related decrease in task-relevant modulation revealed a reduction in the influence of optimal feedback around the task constraints. After practice, the major part of computation seems to be taken over by the feedforward controller around the nominal trajectory with feedback added only when it becomes necessary.
机译:人类能够以多余的自由度完成复杂的任务。人们已经对与任务相关的方差调制给予了极大的关注,以作为在线反馈控制策略的指示,以应对电机的可变性。同时,已经讨论了大脑学习环境的内部模型以实现具有名义轨迹的前馈控制。在这里,我们研究了空间和时间域中的轨迹方差,以阐明这些控制模式的相对贡献。我们要求受试者学习具有多个通孔的到达运动,并发现随着学习过程的进行,与任务相关的方差调制减少,手部轨迹收敛到定型轨迹。此外,方差减少并不总是与任务约束相关,而是与速度分布高度相关。一个在标称轨迹和运动指令上都假设有噪声的模型能够重现观察到的方差调制,从而支持大脑中标称轨迹的表达。与学习相关的与任务相关的调制的减少表明,围绕任务约束的最佳反馈的影响有所减少。在实践之后,计算的主要部分似乎由前馈控制器围绕标称轨迹接管,仅在必要时才添加反馈。

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