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Communication Between Speech Production and Perception Within the Brain—Observation and Simulation

机译:大脑中语音产生与知觉之间的交流—观察和模拟

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摘要

Realization of an intelligent human-machine interface requires us to investigate human mechanisms and learn from them. This study focuses on communication between speech production and perception within human brain and realizing it in an artificial system. A physiological research study based on electromyographic signals (Honda, 1996) suggested that speech communication in human brain might be based on a topological mapping between speech production and perception, according to an analogous topology between motor and sensory representations. Following this hypothesis, this study first investigated the topologies of the vowel system across the motor, kinematic, and acoustic spaces by means of a model simulation, and then examined the linkage between vowel production and perception in terms of a transformed auditory feedback (TAF) experiment. The model simulation indicated that there exists an invariant mapping from muscle activations (motor space) to articulations (kinematic space) via a coordinate consisting of force-dependent equilibrium positions, and the mapping from the motor space to kinematic space is unique. The motor-kinematic-acoustic deduction in the model simulation showed that the topologies were compatible from one space to another. In the TAF experiment, vowel production exhibited a compensatory response for a perturbation in the feedback sound. This implied that vowel production is controlled in reference to perception monitoring.
机译:智能人机界面的实现要求我们研究人为机制并从中学习。这项研究的重点是在人脑中语音产生和感知之间的交流,并在人工系统中实现。一项基于肌电信号的生理研究(Honda,1996)表明,根据运动和感觉表征之间的类似拓扑结构,人脑中的语音交流可能基于语音产生和感知之间的拓扑映射。根据该假设,本研究首先通过模型仿真研究了元音系统在电机,运动和声学空间上的拓扑,然后根据转换后的听觉反馈(TAF)检验了元音产生与感知之间的联系。实验。模型仿真表明,通过由力相关的平衡位置组成的坐标,存在从肌肉激活(运动空间)到关节(运动空间)的不变映射,并且从运动空间到运动空间的映射是唯一的。模型仿真中的运动学-运动学-声学推论表明,拓扑结构从一个空间到另一个空间是兼容的。在TAF实验中,元音产生对反馈声中的扰动产生补偿性响应。这意味着参考感知监控来控制元音的产生。

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