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首页> 外文期刊>Experimental Brain Research >Cerebellum as a forward but not inverse model in visuomotor adaptation task: a tDCS-based and modeling study
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Cerebellum as a forward but not inverse model in visuomotor adaptation task: a tDCS-based and modeling study

机译:小脑作为视觉运动适应任务的正向而非反向模型:基于tDCS的建模研究

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Despite several pieces of evidence, which suggest that the human brain employs internal models for motor control and learning, the location of these models in the brain is not yet clear. In this study, we used transcranial direct current stimulation (tDCS) to manipulate right cerebellar function, while subjects adapt to a visuomotor task. We investigated the effect of this manipulation on the internal forward and inverse models by measuring two kinds of behavior: generalization of training in one direction to neighboring directions (as a proxy for inverse models) and localization of the hand position after movement without visual feedback (as a proxy for forward model). The experimental results showed no effect of cerebellar tDCS on generalization, but significant effect on localization. These observations support the idea that the cerebellum is a possible brain region for internal forward, but not inverse model formation. We also used a realistic human head model to calculate current density distribution in the brain. The result of this model confirmed the passage of current through the cerebellum. Moreover, to further explain some observed experimental results, we modeled the visuomotor adaptation process with the help of a biologically inspired method known as population coding. The effect of tDCS was also incorporated in the model. The results of this modeling study closely match our experimental data and provide further evidence in line with the idea that tDCS manipulates FM's function in the cerebellum.
机译:尽管有几项证据表明人脑采用内部模型进行运动控制和学习,但这些模型在大脑中的位置尚不清楚。在这项研究中,我们使用经颅直流电刺激(tDCS)来操纵右小脑功能,而受试者则适应了视觉运动任务。我们通过测量两种行为来研究这种操作对内部正向和反向模型的影响:在一个方向上训练到相邻方向(作为反向模型的代理)的一般化以及运动后没有视觉反馈的手位置的定位(作为前进模型的代理)。实验结果表明小脑tDCS对泛化没有影响,但对局限性有显着影响。这些观察结果支持小脑是内部向前但可能不是反向模型形成的可能大脑区域的想法。我们还使用了逼真的人头模型来计算大脑中的电流密度分布。该模型的结果证实了电流通过小脑。此外,为了进一步解释一些观察到的实验结果,我们借助一种称为种群编码的生物学启发方法,对可见运动适应过程进行了建模。 tDCS的影响也被纳入模型。建模研究的结果与我们的实验数据非常吻合,并提供了进一步的证据,与tDCS操纵FM在小脑中的功能的想法相符。

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