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Integration of intrinsic muscle properties feed-forward and feedback signals for generating and stabilizing hopping

机译:整合固有的肌肉特性前馈和反馈信号以生成和稳定跳跃

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摘要

It was hypothesized that a tight integration of feed-forward and feedback-driven muscle activation with the characteristic intrinsic muscle properties is a key feature of locomotion in challenging environments. In this simulation study it was investigated whether a combination of feed-forward and feedback signals improves hopping stability compared with those simulations with one individual type of activation. In a reduced one-dimensional hopping model with a Hill-type muscle (one contractile element, neither serial nor parallel elastic elements), the level of detail of the muscle's force–length–velocity relation and the type of activation generation (feed-forward, feedback and combination of both) were varied to test their influence on periodic hopping. The stability of the hopping patterns was evaluated by return map analysis. It was found that the combination of feed-forward and proprioceptive feedback improved hopping stability. Furthermore, the nonlinear Hill-type representation of intrinsic muscle properties led to a faster reduction of perturbations than a linear approximation, independent of the type of activation. The results emphasize the ability of organisms to exploit the stabilizing properties of intrinsic muscle characteristics.
机译:据推测,前馈和反馈驱动的肌肉激活与固有的固有肌肉特性的紧密结合是运动在挑战性环境中的关键特征。在此仿真研究中,与使用一种单独类型的激活的仿真相比,前馈和反馈信号的组合是否可以改善跳跃稳定性。在具有希尔型肌肉(一个收缩元素,既没有连续弹性元素又没有平行弹性元素)的简化一维跳变模型中,肌肉的力-长度-速度关系的详细程度以及激活产生的类型(前馈,反馈和两者的组合)进行了测试,以测试它们对周期性跳变的影响。通过返回图分析评估了跳跃模式的稳定性。发现前馈反馈和本体感受反馈的组合改善了跳跃稳定性。此外,固有线性肌肉特性的非线性Hill型表示比线性逼近更快地减少了扰动,而与激活类型无关。结果强调了生物体利用固有肌肉特征的稳定特性的能力。

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