运动行为的内部模型方法

C. M. F. Leite, C. E. Campos, C. R. Couto, Herbert Ugrinowitsch
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引用次数: 1

摘要

与环境的互动需要非凡的控制、学习和适应不断变化的条件的运动技能的能力。在控制、学习和适应运动技能的过程中所涉及的有趣的复杂性导致了许多理论方法的发展来解释和研究运动行为。本文将提出一种建立在自上而下的电机控制模式之上的理论方法,该模式显示出实质性的内部一致性,并且具有大量且不断增长的经验证据:内部模型。内部模型是外部世界在中枢神经系统内的表征,它学习预测外部世界,模拟基于感官输入的行为,并将这些预测转化为运动动作。我们介绍了基于两种主要结构的内部模型的背景,逆模型和正演模型,解释了它们是如何工作的,并提出了一些适用性。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
An internal model approach for motor behavior
Interacting with the environment requires a remarkable ability to control, learn, and adapt motor skills to ever-changing conditions. The intriguing complexity involved in the process of controlling, learning, and adapting motor skills has led to the development of many theoretical approaches to explain and investigate motor behavior. This paper will present a theoretical approach built upon the top-down mode of motor control that shows substantial internal coherence and has a large and growing body of empirical evidence: The Internal Models. The Internal Models are representations of the external world within the CNS, which learn to predict this external world, simulate behaviors based on sensory inputs, and transform these predictions into motor actions. We present the Internal Models’ background based on two main structures, Inverse and Forward models, explain how they work, and present some applicability.
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