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运动模块负责主动感知力量。

Motor modules account for active perception of force.

机构信息

Laboratory of Neuromotor Physiology, Santa Lucia Foundation, Rome, 00179, Italy.

School of Biological and Health Systems Engineering, Arizona State University, Tempe, AZ, 85287-9709, USA.

出版信息

Sci Rep. 2019 Jun 20;9(1):8983. doi: 10.1038/s41598-019-45480-w.

Abstract

Despite longstanding evidence suggesting a relation between action and perception, the mechanisms underlying their integration are still unclear. It has been proposed that to simplify the sensorimotor integration processes underlying active perception, the central nervous system (CNS) selects patterns of movements aimed at maximizing sampling of task-related sensory input. While previous studies investigated the action-perception loop focusing on the role of higher-level features of motor behavior (e.g., kinematic invariants, effort), the present study explored and quantified the contribution of lower-level organization of motor control. We tested the hypothesis that the coordinated recruitment of group of muscles (i.e., motor modules) engaged to counteract an external force contributes to participants' perception of the same force. We found that: 1) a model describing the modulation of a subset of motor modules involved in the motor task accounted for about 70% of participants' perceptual variance; 2) an alternative model, incompatible with the motor modules hypothesis, accounted for significantly lower variance of participants' detection performance. Our results provide empirical evidence of the potential role played by muscle activation patterns in active perception of force. They also suggest that a modular organization of motor control may mediate not only coordination of multiple muscles, but also perceptual inference.

摘要

尽管长期以来有证据表明动作和感知之间存在关系,但它们整合的机制仍不清楚。有人提出,为了简化主动感知中感知运动整合过程,中枢神经系统 (CNS) 会选择旨在最大限度地对与任务相关的感官输入进行采样的运动模式。虽然之前的研究集中在运动行为的更高层次特征(例如运动不变量、努力)在动作感知循环中的作用,但本研究探索并量化了运动控制的较低层次组织的贡献。我们假设,对抗外力的一组肌肉(即运动模块)的协调募集有助于参与者感知相同的力。我们发现:1) 描述参与运动任务的一组运动模块的调制的模型解释了参与者感知方差的约 70%;2) 与运动模块假设不兼容的替代模型,解释了参与者检测性能的方差显著降低。我们的结果提供了肌肉活动模式在力的主动感知中可能发挥作用的经验证据。它们还表明,运动控制的模块化组织不仅可以协调多个肌肉,还可以进行感知推断。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/b8a9/6586614/561ce9d53f6e/41598_2019_45480_Fig1_HTML.jpg

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