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A model-based exploration of the role of pattern generating circuits during locomotor adaptation

机译:基于模型的模式生成电路在运动过程中的作用探讨

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In this study, we used a model-based approach to explore the potential contributions of central pattern generating circuits (CPGs) during adaptation to external perturbations during locomotion. We constructed a neuromechanical modeled of locomotion using a reduced-phase CPG controller and an inverted pendulum mechanical model. Two different forms of locomotor adaptation were examined in this study: split-belt treadmill adaptation and adaptation to a unilateral, elastic force field. For each simulation, we first examined the effects of phase resetting and varying the model's initial conditions on the resulting adaptation. After evaluating the effect of phase resetting on the adaptation of step length symmetry, we examined the extent to which the results from these simple models could explain previous experimental observations. We found that adaptation of step length symmetry during split-belt treadmill walking could be reproduced using our model, but this model failed to replicate patterns of adaptation observed in response to force field perturbations. Given that spinal animal models can adapt to both of these types of perturbations, our findings suggest that there may be distinct features of pattern generating circuits that mediate each form of adaptation.
机译:在这项研究中,我们使用了基于模型的方法在运动适应外界扰动期间探索中央图案生成电路(日用消费品)的潜在贡献。我们构建使用降低相CPG控制器和倒立摆的力学模型的运动建模的neuromechanical。两种不同形式的运动适应的检查在本研究:分割带跑步机适应和适应单方面,弹力场。对于每个模拟,我们首先检查了相复位和对所得到的适应变化的模型的初始条件的影响。评价对步长对称适应阶段复位的影响后,我们检测到从这些简单的模型的结果可以解释以前的实验观察结果的程度。我们发现步长对称分裂带跑步机行走过程中,适应可以用我们的模式被复制,但这种模式未能复制响应力场扰动观察适应的模式。鉴于脊椎动物模型能适应这两种类型的扰动的,我们的研究结果表明,有可能是介导适应的每个形式图案生成电路的显着特征。

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