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Distinct Timing Mechanisms Produce Discrete and Continuous Movements

机译:不同的计时机制产生离散和连续的运动

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摘要

The differentiation of discrete and continuous movement is one of the pillars of motor behavior classification. Discrete movements have a definite beginning and end, whereas continuous movements do not have such discriminable end points. In the past decade there has been vigorous debate whether this classification implies different control processes. This debate up until the present has been empirically based. Here, we present an unambiguous non-empirical classification based on theorems in dynamical system theory that sets discrete and continuous movements apart. Through computational simulations of representative modes of each class and topological analysis of the flow in state space, we show that distinct control mechanisms underwrite discrete and fast rhythmic movements. In particular, we demonstrate that discrete movements require a time keeper while fast rhythmic movements do not. We validate our computational findings experimentally using a behavioral paradigm in which human participants performed finger flexion-extension movements at various movement paces and under different instructions. Our results demonstrate that the human motor system employs different timing control mechanisms (presumably via differential recruitment of neural subsystems) to accomplish varying behavioral functions such as speed constraints.
机译:离散运动和连续运动的区别是运动行为分类的支柱之一。离散运动具有确定的开始和结束,而连续运动则没有这种可区别的终点。在过去的十年中,一直存在激烈的辩论,这种分类是否意味着不同的控制程序。直到现在,这种辩论都是基于经验的。在这里,我们基于动力系统理论中的定理提出了明确的非经验分类,将离散运动和连续运动分开。通过每个类的代表模式的计算仿真和状态空间中的流的拓扑分析,我们表明不同的控制机制可为离散和快速的节奏运动提供动力。特别是,我们证明了离散运动需要计时员,而快速节奏运动则不需要。我们使用行为范式通过实验验证了我们的计算结果,在行为范式中,人类参与者以不同的运动节奏和不同的指令执行了手指屈伸运动。我们的研究结果表明,人类电机系统采用了不同的时序控制机制(大概是通过神经子系统的差分募集)来完成各种行为功能,例如速度约束。

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