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Stochastic optimal feedforward-feedback control determines timing and variability of arm movements with or without vision

机译:随机最佳的前馈 - 反馈控制确定有或没有视觉的臂运动的定时和可变性

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Human movements with or without vision exhibit timing (i.e. speed and duration) and variability characteristics which are not well captured by existing computational models. Here, we introduce a stochastic optimal feedforward-feedback control (SFFC) model that can predict the nominal timing and trial-by-trial variability of self-paced arm reaching movements carried out with or without online visual feedback of the hand. In SFFC, movement timing results from the minimization of the intrinsic factors of effort and variance due to constant and signal-dependent motor noise, and movement variability depends on the integration of visual feedback. Reaching arm movements data are used to examine the effect of online vision on movement timing and variability, and test the model. This modelling suggests that the central nervous system predicts the effects of sensorimotor noise to generate an optimal feedforward motor command, and triggers optimal feedback corrections to task-related errors based on the available limb state estimate.
机译:具有或无视野的人类运动表现出时序(即速度和持续时间)和不受现有计算模型捕获的可变性特性。在这里,我们介绍了一种随机最佳的前馈 - 反馈控制(SFFC)模型,可以预测自花枢臂的标称时序和试验变异,从而达到或没有手机的在线视觉反馈。在SFFC中,由于恒定和信号依赖的电动机噪声而最小化的努力和方差的最小化因素的运动定时,并且运动可变性取决于视觉反馈的集成。到达ARM运动数据用于检查在线视觉对运动时序和可变性的影响,并测试模型。该建模表明中枢神经系统预测了感觉电流噪声的影响,以产生最佳的前馈电机命令,并基于可用的肢体状态估计来触发最佳反馈校正与任务相关的错误。

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